Fertirrega_v6.elf: file format elf32-littlearm Sections: Idx Name Size VMA LMA File off Algn 0 .isr_vector 0000010c 08000000 08000000 00001000 2**0 CONTENTS, ALLOC, LOAD, READONLY, DATA 1 .text 00007910 08000110 08000110 00001110 2**3 CONTENTS, ALLOC, LOAD, READONLY, CODE 2 .rodata 00000088 08007a20 08007a20 00008a20 2**2 CONTENTS, ALLOC, LOAD, READONLY, DATA 3 .ARM.extab 00000000 08007aa8 08007aa8 00009080 2**0 CONTENTS, READONLY 4 .ARM 00000008 08007aa8 08007aa8 00008aa8 2**2 CONTENTS, ALLOC, LOAD, READONLY, DATA 5 .preinit_array 00000000 08007ab0 08007ab0 00009080 2**0 CONTENTS, ALLOC, LOAD, DATA 6 .init_array 00000004 08007ab0 08007ab0 00008ab0 2**2 CONTENTS, ALLOC, LOAD, READONLY, DATA 7 .fini_array 00000004 08007ab4 08007ab4 00008ab4 2**2 CONTENTS, ALLOC, LOAD, READONLY, DATA 8 .data 00000080 20000000 08007ab8 00009000 2**2 CONTENTS, ALLOC, LOAD, DATA 9 .bss 00000890 20000080 08007b38 00009080 2**3 ALLOC 10 ._user_heap_stack 00000600 20000910 08007b38 00009910 2**0 ALLOC 11 .ARM.attributes 00000029 00000000 00000000 00009080 2**0 CONTENTS, READONLY 12 .debug_info 000153e7 00000000 00000000 000090a9 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS 13 .debug_abbrev 00003e1d 00000000 00000000 0001e490 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS 14 .debug_aranges 00001418 00000000 00000000 000222b0 2**3 CONTENTS, READONLY, DEBUGGING, OCTETS 15 .debug_rnglists 00000fb2 00000000 00000000 000236c8 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS 16 .debug_macro 0001ae5b 00000000 00000000 0002467a 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS 17 .debug_line 0001b209 00000000 00000000 0003f4d5 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS 18 .debug_str 0009592c 00000000 00000000 0005a6de 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS 19 .comment 00000043 00000000 00000000 000f000a 2**0 CONTENTS, READONLY 20 .debug_frame 00005410 00000000 00000000 000f0050 2**2 CONTENTS, READONLY, DEBUGGING, OCTETS 21 .debug_line_str 00000052 00000000 00000000 000f5460 2**0 CONTENTS, READONLY, DEBUGGING, OCTETS Disassembly of section .text: 08000110 <__do_global_dtors_aux>: 8000110: b510 push {r4, lr} 8000112: 4c05 ldr r4, [pc, #20] @ (8000128 <__do_global_dtors_aux+0x18>) 8000114: 7823 ldrb r3, [r4, #0] 8000116: b933 cbnz r3, 8000126 <__do_global_dtors_aux+0x16> 8000118: 4b04 ldr r3, [pc, #16] @ (800012c <__do_global_dtors_aux+0x1c>) 800011a: b113 cbz r3, 8000122 <__do_global_dtors_aux+0x12> 800011c: 4804 ldr r0, [pc, #16] @ (8000130 <__do_global_dtors_aux+0x20>) 800011e: f3af 8000 nop.w 8000122: 2301 movs r3, #1 8000124: 7023 strb r3, [r4, #0] 8000126: bd10 pop {r4, pc} 8000128: 20000080 .word 0x20000080 800012c: 00000000 .word 0x00000000 8000130: 08007a08 .word 0x08007a08 08000134 : 8000134: b508 push {r3, lr} 8000136: 4b03 ldr r3, [pc, #12] @ (8000144 ) 8000138: b11b cbz r3, 8000142 800013a: 4903 ldr r1, [pc, #12] @ (8000148 ) 800013c: 4803 ldr r0, [pc, #12] @ (800014c ) 800013e: f3af 8000 nop.w 8000142: bd08 pop {r3, pc} 8000144: 00000000 .word 0x00000000 8000148: 20000084 .word 0x20000084 800014c: 08007a08 .word 0x08007a08 08000150 : 8000150: 4603 mov r3, r0 8000152: f813 2b01 ldrb.w r2, [r3], #1 8000156: 2a00 cmp r2, #0 8000158: d1fb bne.n 8000152 800015a: 1a18 subs r0, r3, r0 800015c: 3801 subs r0, #1 800015e: 4770 bx lr 08000160 <__aeabi_drsub>: 8000160: f081 4100 eor.w r1, r1, #2147483648 @ 0x80000000 8000164: e002 b.n 800016c <__adddf3> 8000166: bf00 nop 08000168 <__aeabi_dsub>: 8000168: f083 4300 eor.w r3, r3, #2147483648 @ 0x80000000 0800016c <__adddf3>: 800016c: b530 push {r4, r5, lr} 800016e: ea4f 0441 mov.w r4, r1, lsl #1 8000172: ea4f 0543 mov.w r5, r3, lsl #1 8000176: ea94 0f05 teq r4, r5 800017a: bf08 it eq 800017c: ea90 0f02 teqeq r0, r2 8000180: bf1f itttt ne 8000182: ea54 0c00 orrsne.w ip, r4, r0 8000186: ea55 0c02 orrsne.w ip, r5, r2 800018a: ea7f 5c64 mvnsne.w ip, r4, asr #21 800018e: ea7f 5c65 mvnsne.w ip, r5, asr #21 8000192: f000 80e2 beq.w 800035a <__adddf3+0x1ee> 8000196: ea4f 5454 mov.w r4, r4, lsr #21 800019a: ebd4 5555 rsbs r5, r4, r5, lsr #21 800019e: bfb8 it lt 80001a0: 426d neglt r5, r5 80001a2: dd0c ble.n 80001be <__adddf3+0x52> 80001a4: 442c add r4, r5 80001a6: ea80 0202 eor.w r2, r0, r2 80001aa: ea81 0303 eor.w r3, r1, r3 80001ae: ea82 0000 eor.w r0, r2, r0 80001b2: ea83 0101 eor.w r1, r3, r1 80001b6: ea80 0202 eor.w r2, r0, r2 80001ba: ea81 0303 eor.w r3, r1, r3 80001be: 2d36 cmp r5, #54 @ 0x36 80001c0: bf88 it hi 80001c2: bd30 pophi {r4, r5, pc} 80001c4: f011 4f00 tst.w r1, #2147483648 @ 0x80000000 80001c8: ea4f 3101 mov.w r1, r1, lsl #12 80001cc: f44f 1c80 mov.w ip, #1048576 @ 0x100000 80001d0: ea4c 3111 orr.w r1, ip, r1, lsr #12 80001d4: d002 beq.n 80001dc <__adddf3+0x70> 80001d6: 4240 negs r0, r0 80001d8: eb61 0141 sbc.w r1, r1, r1, lsl #1 80001dc: f013 4f00 tst.w r3, #2147483648 @ 0x80000000 80001e0: ea4f 3303 mov.w r3, r3, lsl #12 80001e4: ea4c 3313 orr.w r3, ip, r3, lsr #12 80001e8: d002 beq.n 80001f0 <__adddf3+0x84> 80001ea: 4252 negs r2, r2 80001ec: eb63 0343 sbc.w r3, r3, r3, lsl #1 80001f0: ea94 0f05 teq r4, r5 80001f4: f000 80a7 beq.w 8000346 <__adddf3+0x1da> 80001f8: f1a4 0401 sub.w r4, r4, #1 80001fc: f1d5 0e20 rsbs lr, r5, #32 8000200: db0d blt.n 800021e <__adddf3+0xb2> 8000202: fa02 fc0e lsl.w ip, r2, lr 8000206: fa22 f205 lsr.w r2, r2, r5 800020a: 1880 adds r0, r0, r2 800020c: f141 0100 adc.w r1, r1, #0 8000210: fa03 f20e lsl.w r2, r3, lr 8000214: 1880 adds r0, r0, r2 8000216: fa43 f305 asr.w r3, r3, r5 800021a: 4159 adcs r1, r3 800021c: e00e b.n 800023c <__adddf3+0xd0> 800021e: f1a5 0520 sub.w r5, r5, #32 8000222: f10e 0e20 add.w lr, lr, #32 8000226: 2a01 cmp r2, #1 8000228: fa03 fc0e lsl.w ip, r3, lr 800022c: bf28 it cs 800022e: f04c 0c02 orrcs.w ip, ip, #2 8000232: fa43 f305 asr.w r3, r3, r5 8000236: 18c0 adds r0, r0, r3 8000238: eb51 71e3 adcs.w r1, r1, r3, asr #31 800023c: f001 4500 and.w r5, r1, #2147483648 @ 0x80000000 8000240: d507 bpl.n 8000252 <__adddf3+0xe6> 8000242: f04f 0e00 mov.w lr, #0 8000246: f1dc 0c00 rsbs ip, ip, #0 800024a: eb7e 0000 sbcs.w r0, lr, r0 800024e: eb6e 0101 sbc.w r1, lr, r1 8000252: f5b1 1f80 cmp.w r1, #1048576 @ 0x100000 8000256: d31b bcc.n 8000290 <__adddf3+0x124> 8000258: f5b1 1f00 cmp.w r1, #2097152 @ 0x200000 800025c: d30c bcc.n 8000278 <__adddf3+0x10c> 800025e: 0849 lsrs r1, r1, #1 8000260: ea5f 0030 movs.w r0, r0, rrx 8000264: ea4f 0c3c mov.w ip, ip, rrx 8000268: f104 0401 add.w r4, r4, #1 800026c: ea4f 5244 mov.w r2, r4, lsl #21 8000270: f512 0f80 cmn.w r2, #4194304 @ 0x400000 8000274: f080 809a bcs.w 80003ac <__adddf3+0x240> 8000278: f1bc 4f00 cmp.w ip, #2147483648 @ 0x80000000 800027c: bf08 it eq 800027e: ea5f 0c50 movseq.w ip, r0, lsr #1 8000282: f150 0000 adcs.w r0, r0, #0 8000286: eb41 5104 adc.w r1, r1, r4, lsl #20 800028a: ea41 0105 orr.w r1, r1, r5 800028e: bd30 pop {r4, r5, pc} 8000290: ea5f 0c4c movs.w ip, ip, lsl #1 8000294: 4140 adcs r0, r0 8000296: eb41 0101 adc.w r1, r1, r1 800029a: 3c01 subs r4, #1 800029c: bf28 it cs 800029e: f5b1 1f80 cmpcs.w r1, #1048576 @ 0x100000 80002a2: d2e9 bcs.n 8000278 <__adddf3+0x10c> 80002a4: f091 0f00 teq r1, #0 80002a8: bf04 itt eq 80002aa: 4601 moveq r1, r0 80002ac: 2000 moveq r0, #0 80002ae: fab1 f381 clz r3, r1 80002b2: bf08 it eq 80002b4: 3320 addeq r3, #32 80002b6: f1a3 030b sub.w r3, r3, #11 80002ba: f1b3 0220 subs.w r2, r3, #32 80002be: da0c bge.n 80002da <__adddf3+0x16e> 80002c0: 320c adds r2, #12 80002c2: dd08 ble.n 80002d6 <__adddf3+0x16a> 80002c4: f102 0c14 add.w ip, r2, #20 80002c8: f1c2 020c rsb r2, r2, #12 80002cc: fa01 f00c lsl.w r0, r1, ip 80002d0: fa21 f102 lsr.w r1, r1, r2 80002d4: e00c b.n 80002f0 <__adddf3+0x184> 80002d6: f102 0214 add.w r2, r2, #20 80002da: bfd8 it le 80002dc: f1c2 0c20 rsble ip, r2, #32 80002e0: fa01 f102 lsl.w r1, r1, r2 80002e4: fa20 fc0c lsr.w ip, r0, ip 80002e8: bfdc itt le 80002ea: ea41 010c orrle.w r1, r1, ip 80002ee: 4090 lslle r0, r2 80002f0: 1ae4 subs r4, r4, r3 80002f2: bfa2 ittt ge 80002f4: eb01 5104 addge.w r1, r1, r4, lsl #20 80002f8: 4329 orrge r1, r5 80002fa: bd30 popge {r4, r5, pc} 80002fc: ea6f 0404 mvn.w r4, r4 8000300: 3c1f subs r4, #31 8000302: da1c bge.n 800033e <__adddf3+0x1d2> 8000304: 340c adds r4, #12 8000306: dc0e bgt.n 8000326 <__adddf3+0x1ba> 8000308: f104 0414 add.w r4, r4, #20 800030c: f1c4 0220 rsb r2, r4, #32 8000310: fa20 f004 lsr.w r0, r0, r4 8000314: fa01 f302 lsl.w r3, r1, r2 8000318: ea40 0003 orr.w r0, r0, r3 800031c: fa21 f304 lsr.w r3, r1, r4 8000320: ea45 0103 orr.w r1, r5, r3 8000324: bd30 pop {r4, r5, pc} 8000326: f1c4 040c rsb r4, r4, #12 800032a: f1c4 0220 rsb r2, r4, #32 800032e: fa20 f002 lsr.w r0, r0, r2 8000332: fa01 f304 lsl.w r3, r1, r4 8000336: ea40 0003 orr.w r0, r0, r3 800033a: 4629 mov r1, r5 800033c: bd30 pop {r4, r5, pc} 800033e: fa21 f004 lsr.w r0, r1, r4 8000342: 4629 mov r1, r5 8000344: bd30 pop {r4, r5, pc} 8000346: f094 0f00 teq r4, #0 800034a: f483 1380 eor.w r3, r3, #1048576 @ 0x100000 800034e: bf06 itte eq 8000350: f481 1180 eoreq.w r1, r1, #1048576 @ 0x100000 8000354: 3401 addeq r4, #1 8000356: 3d01 subne r5, #1 8000358: e74e b.n 80001f8 <__adddf3+0x8c> 800035a: ea7f 5c64 mvns.w ip, r4, asr #21 800035e: bf18 it ne 8000360: ea7f 5c65 mvnsne.w ip, r5, asr #21 8000364: d029 beq.n 80003ba <__adddf3+0x24e> 8000366: ea94 0f05 teq r4, r5 800036a: bf08 it eq 800036c: ea90 0f02 teqeq r0, r2 8000370: d005 beq.n 800037e <__adddf3+0x212> 8000372: ea54 0c00 orrs.w ip, r4, r0 8000376: bf04 itt eq 8000378: 4619 moveq r1, r3 800037a: 4610 moveq r0, r2 800037c: bd30 pop {r4, r5, pc} 800037e: ea91 0f03 teq r1, r3 8000382: bf1e ittt ne 8000384: 2100 movne r1, #0 8000386: 2000 movne r0, #0 8000388: bd30 popne {r4, r5, pc} 800038a: ea5f 5c54 movs.w ip, r4, lsr #21 800038e: d105 bne.n 800039c <__adddf3+0x230> 8000390: 0040 lsls r0, r0, #1 8000392: 4149 adcs r1, r1 8000394: bf28 it cs 8000396: f041 4100 orrcs.w r1, r1, #2147483648 @ 0x80000000 800039a: bd30 pop {r4, r5, pc} 800039c: f514 0480 adds.w r4, r4, #4194304 @ 0x400000 80003a0: bf3c itt cc 80003a2: f501 1180 addcc.w r1, r1, #1048576 @ 0x100000 80003a6: bd30 popcc {r4, r5, pc} 80003a8: f001 4500 and.w r5, r1, #2147483648 @ 0x80000000 80003ac: f045 41fe orr.w r1, r5, #2130706432 @ 0x7f000000 80003b0: f441 0170 orr.w r1, r1, #15728640 @ 0xf00000 80003b4: f04f 0000 mov.w r0, #0 80003b8: bd30 pop {r4, r5, pc} 80003ba: ea7f 5c64 mvns.w ip, r4, asr #21 80003be: bf1a itte ne 80003c0: 4619 movne r1, r3 80003c2: 4610 movne r0, r2 80003c4: ea7f 5c65 mvnseq.w ip, r5, asr #21 80003c8: bf1c itt ne 80003ca: 460b movne r3, r1 80003cc: 4602 movne r2, r0 80003ce: ea50 3401 orrs.w r4, r0, r1, lsl #12 80003d2: bf06 itte eq 80003d4: ea52 3503 orrseq.w r5, r2, r3, lsl #12 80003d8: ea91 0f03 teqeq r1, r3 80003dc: f441 2100 orrne.w r1, r1, #524288 @ 0x80000 80003e0: bd30 pop {r4, r5, pc} 80003e2: bf00 nop 080003e4 <__aeabi_ui2d>: 80003e4: f090 0f00 teq r0, #0 80003e8: bf04 itt eq 80003ea: 2100 moveq r1, #0 80003ec: 4770 bxeq lr 80003ee: b530 push {r4, r5, lr} 80003f0: f44f 6480 mov.w r4, #1024 @ 0x400 80003f4: f104 0432 add.w r4, r4, #50 @ 0x32 80003f8: f04f 0500 mov.w r5, #0 80003fc: f04f 0100 mov.w r1, #0 8000400: e750 b.n 80002a4 <__adddf3+0x138> 8000402: bf00 nop 08000404 <__aeabi_i2d>: 8000404: f090 0f00 teq r0, #0 8000408: bf04 itt eq 800040a: 2100 moveq r1, #0 800040c: 4770 bxeq lr 800040e: b530 push {r4, r5, lr} 8000410: f44f 6480 mov.w r4, #1024 @ 0x400 8000414: f104 0432 add.w r4, r4, #50 @ 0x32 8000418: f010 4500 ands.w r5, r0, #2147483648 @ 0x80000000 800041c: bf48 it mi 800041e: 4240 negmi r0, r0 8000420: f04f 0100 mov.w r1, #0 8000424: e73e b.n 80002a4 <__adddf3+0x138> 8000426: bf00 nop 08000428 <__aeabi_f2d>: 8000428: 0042 lsls r2, r0, #1 800042a: ea4f 01e2 mov.w r1, r2, asr #3 800042e: ea4f 0131 mov.w r1, r1, rrx 8000432: ea4f 7002 mov.w r0, r2, lsl #28 8000436: bf1f itttt ne 8000438: f012 437f andsne.w r3, r2, #4278190080 @ 0xff000000 800043c: f093 4f7f teqne r3, #4278190080 @ 0xff000000 8000440: f081 5160 eorne.w r1, r1, #939524096 @ 0x38000000 8000444: 4770 bxne lr 8000446: f032 427f bics.w r2, r2, #4278190080 @ 0xff000000 800044a: bf08 it eq 800044c: 4770 bxeq lr 800044e: f093 4f7f teq r3, #4278190080 @ 0xff000000 8000452: bf04 itt eq 8000454: f441 2100 orreq.w r1, r1, #524288 @ 0x80000 8000458: 4770 bxeq lr 800045a: b530 push {r4, r5, lr} 800045c: f44f 7460 mov.w r4, #896 @ 0x380 8000460: f001 4500 and.w r5, r1, #2147483648 @ 0x80000000 8000464: f021 4100 bic.w r1, r1, #2147483648 @ 0x80000000 8000468: e71c b.n 80002a4 <__adddf3+0x138> 800046a: bf00 nop 0800046c <__aeabi_ul2d>: 800046c: ea50 0201 orrs.w r2, r0, r1 8000470: bf08 it eq 8000472: 4770 bxeq lr 8000474: b530 push {r4, r5, lr} 8000476: f04f 0500 mov.w r5, #0 800047a: e00a b.n 8000492 <__aeabi_l2d+0x16> 0800047c <__aeabi_l2d>: 800047c: ea50 0201 orrs.w r2, r0, r1 8000480: bf08 it eq 8000482: 4770 bxeq lr 8000484: b530 push {r4, r5, lr} 8000486: f011 4500 ands.w r5, r1, #2147483648 @ 0x80000000 800048a: d502 bpl.n 8000492 <__aeabi_l2d+0x16> 800048c: 4240 negs r0, r0 800048e: eb61 0141 sbc.w r1, r1, r1, lsl #1 8000492: f44f 6480 mov.w r4, #1024 @ 0x400 8000496: f104 0432 add.w r4, r4, #50 @ 0x32 800049a: ea5f 5c91 movs.w ip, r1, lsr #22 800049e: f43f aed8 beq.w 8000252 <__adddf3+0xe6> 80004a2: f04f 0203 mov.w r2, #3 80004a6: ea5f 0cdc movs.w ip, ip, lsr #3 80004aa: bf18 it ne 80004ac: 3203 addne r2, #3 80004ae: ea5f 0cdc movs.w ip, ip, lsr #3 80004b2: bf18 it ne 80004b4: 3203 addne r2, #3 80004b6: eb02 02dc add.w r2, r2, ip, lsr #3 80004ba: f1c2 0320 rsb r3, r2, #32 80004be: fa00 fc03 lsl.w ip, r0, r3 80004c2: fa20 f002 lsr.w r0, r0, r2 80004c6: fa01 fe03 lsl.w lr, r1, r3 80004ca: ea40 000e orr.w r0, r0, lr 80004ce: fa21 f102 lsr.w r1, r1, r2 80004d2: 4414 add r4, r2 80004d4: e6bd b.n 8000252 <__adddf3+0xe6> 80004d6: bf00 nop 080004d8 <__aeabi_dmul>: 80004d8: b570 push {r4, r5, r6, lr} 80004da: f04f 0cff mov.w ip, #255 @ 0xff 80004de: f44c 6ce0 orr.w ip, ip, #1792 @ 0x700 80004e2: ea1c 5411 ands.w r4, ip, r1, lsr #20 80004e6: bf1d ittte ne 80004e8: ea1c 5513 andsne.w r5, ip, r3, lsr #20 80004ec: ea94 0f0c teqne r4, ip 80004f0: ea95 0f0c teqne r5, ip 80004f4: f000 f8de bleq 80006b4 <__aeabi_dmul+0x1dc> 80004f8: 442c add r4, r5 80004fa: ea81 0603 eor.w r6, r1, r3 80004fe: ea21 514c bic.w r1, r1, ip, lsl #21 8000502: ea23 534c bic.w r3, r3, ip, lsl #21 8000506: ea50 3501 orrs.w r5, r0, r1, lsl #12 800050a: bf18 it ne 800050c: ea52 3503 orrsne.w r5, r2, r3, lsl #12 8000510: f441 1180 orr.w r1, r1, #1048576 @ 0x100000 8000514: f443 1380 orr.w r3, r3, #1048576 @ 0x100000 8000518: d038 beq.n 800058c <__aeabi_dmul+0xb4> 800051a: fba0 ce02 umull ip, lr, r0, r2 800051e: f04f 0500 mov.w r5, #0 8000522: fbe1 e502 umlal lr, r5, r1, r2 8000526: f006 4200 and.w r2, r6, #2147483648 @ 0x80000000 800052a: fbe0 e503 umlal lr, r5, r0, r3 800052e: f04f 0600 mov.w r6, #0 8000532: fbe1 5603 umlal r5, r6, r1, r3 8000536: f09c 0f00 teq ip, #0 800053a: bf18 it ne 800053c: f04e 0e01 orrne.w lr, lr, #1 8000540: f1a4 04ff sub.w r4, r4, #255 @ 0xff 8000544: f5b6 7f00 cmp.w r6, #512 @ 0x200 8000548: f564 7440 sbc.w r4, r4, #768 @ 0x300 800054c: d204 bcs.n 8000558 <__aeabi_dmul+0x80> 800054e: ea5f 0e4e movs.w lr, lr, lsl #1 8000552: 416d adcs r5, r5 8000554: eb46 0606 adc.w r6, r6, r6 8000558: ea42 21c6 orr.w r1, r2, r6, lsl #11 800055c: ea41 5155 orr.w r1, r1, r5, lsr #21 8000560: ea4f 20c5 mov.w r0, r5, lsl #11 8000564: ea40 505e orr.w r0, r0, lr, lsr #21 8000568: ea4f 2ece mov.w lr, lr, lsl #11 800056c: f1b4 0cfd subs.w ip, r4, #253 @ 0xfd 8000570: bf88 it hi 8000572: f5bc 6fe0 cmphi.w ip, #1792 @ 0x700 8000576: d81e bhi.n 80005b6 <__aeabi_dmul+0xde> 8000578: f1be 4f00 cmp.w lr, #2147483648 @ 0x80000000 800057c: bf08 it eq 800057e: ea5f 0e50 movseq.w lr, r0, lsr #1 8000582: f150 0000 adcs.w r0, r0, #0 8000586: eb41 5104 adc.w r1, r1, r4, lsl #20 800058a: bd70 pop {r4, r5, r6, pc} 800058c: f006 4600 and.w r6, r6, #2147483648 @ 0x80000000 8000590: ea46 0101 orr.w r1, r6, r1 8000594: ea40 0002 orr.w r0, r0, r2 8000598: ea81 0103 eor.w r1, r1, r3 800059c: ebb4 045c subs.w r4, r4, ip, lsr #1 80005a0: bfc2 ittt gt 80005a2: ebd4 050c rsbsgt r5, r4, ip 80005a6: ea41 5104 orrgt.w r1, r1, r4, lsl #20 80005aa: bd70 popgt {r4, r5, r6, pc} 80005ac: f441 1180 orr.w r1, r1, #1048576 @ 0x100000 80005b0: f04f 0e00 mov.w lr, #0 80005b4: 3c01 subs r4, #1 80005b6: f300 80ab bgt.w 8000710 <__aeabi_dmul+0x238> 80005ba: f114 0f36 cmn.w r4, #54 @ 0x36 80005be: bfde ittt le 80005c0: 2000 movle r0, #0 80005c2: f001 4100 andle.w r1, r1, #2147483648 @ 0x80000000 80005c6: bd70 pople {r4, r5, r6, pc} 80005c8: f1c4 0400 rsb r4, r4, #0 80005cc: 3c20 subs r4, #32 80005ce: da35 bge.n 800063c <__aeabi_dmul+0x164> 80005d0: 340c adds r4, #12 80005d2: dc1b bgt.n 800060c <__aeabi_dmul+0x134> 80005d4: f104 0414 add.w r4, r4, #20 80005d8: f1c4 0520 rsb r5, r4, #32 80005dc: fa00 f305 lsl.w r3, r0, r5 80005e0: fa20 f004 lsr.w r0, r0, r4 80005e4: fa01 f205 lsl.w r2, r1, r5 80005e8: ea40 0002 orr.w r0, r0, r2 80005ec: f001 4200 and.w r2, r1, #2147483648 @ 0x80000000 80005f0: f021 4100 bic.w r1, r1, #2147483648 @ 0x80000000 80005f4: eb10 70d3 adds.w r0, r0, r3, lsr #31 80005f8: fa21 f604 lsr.w r6, r1, r4 80005fc: eb42 0106 adc.w r1, r2, r6 8000600: ea5e 0e43 orrs.w lr, lr, r3, lsl #1 8000604: bf08 it eq 8000606: ea20 70d3 biceq.w r0, r0, r3, lsr #31 800060a: bd70 pop {r4, r5, r6, pc} 800060c: f1c4 040c rsb r4, r4, #12 8000610: f1c4 0520 rsb r5, r4, #32 8000614: fa00 f304 lsl.w r3, r0, r4 8000618: fa20 f005 lsr.w r0, r0, r5 800061c: fa01 f204 lsl.w r2, r1, r4 8000620: ea40 0002 orr.w r0, r0, r2 8000624: f001 4100 and.w r1, r1, #2147483648 @ 0x80000000 8000628: eb10 70d3 adds.w r0, r0, r3, lsr #31 800062c: f141 0100 adc.w r1, r1, #0 8000630: ea5e 0e43 orrs.w lr, lr, r3, lsl #1 8000634: bf08 it eq 8000636: ea20 70d3 biceq.w r0, r0, r3, lsr #31 800063a: bd70 pop {r4, r5, r6, pc} 800063c: f1c4 0520 rsb r5, r4, #32 8000640: fa00 f205 lsl.w r2, r0, r5 8000644: ea4e 0e02 orr.w lr, lr, r2 8000648: fa20 f304 lsr.w r3, r0, r4 800064c: fa01 f205 lsl.w r2, r1, r5 8000650: ea43 0302 orr.w r3, r3, r2 8000654: fa21 f004 lsr.w r0, r1, r4 8000658: f001 4100 and.w r1, r1, #2147483648 @ 0x80000000 800065c: fa21 f204 lsr.w r2, r1, r4 8000660: ea20 0002 bic.w r0, r0, r2 8000664: eb00 70d3 add.w r0, r0, r3, lsr #31 8000668: ea5e 0e43 orrs.w lr, lr, r3, lsl #1 800066c: bf08 it eq 800066e: ea20 70d3 biceq.w r0, r0, r3, lsr #31 8000672: bd70 pop {r4, r5, r6, pc} 8000674: f094 0f00 teq r4, #0 8000678: d10f bne.n 800069a <__aeabi_dmul+0x1c2> 800067a: f001 4600 and.w r6, r1, #2147483648 @ 0x80000000 800067e: 0040 lsls r0, r0, #1 8000680: eb41 0101 adc.w r1, r1, r1 8000684: f411 1f80 tst.w r1, #1048576 @ 0x100000 8000688: bf08 it eq 800068a: 3c01 subeq r4, #1 800068c: d0f7 beq.n 800067e <__aeabi_dmul+0x1a6> 800068e: ea41 0106 orr.w r1, r1, r6 8000692: f095 0f00 teq r5, #0 8000696: bf18 it ne 8000698: 4770 bxne lr 800069a: f003 4600 and.w r6, r3, #2147483648 @ 0x80000000 800069e: 0052 lsls r2, r2, #1 80006a0: eb43 0303 adc.w r3, r3, r3 80006a4: f413 1f80 tst.w r3, #1048576 @ 0x100000 80006a8: bf08 it eq 80006aa: 3d01 subeq r5, #1 80006ac: d0f7 beq.n 800069e <__aeabi_dmul+0x1c6> 80006ae: ea43 0306 orr.w r3, r3, r6 80006b2: 4770 bx lr 80006b4: ea94 0f0c teq r4, ip 80006b8: ea0c 5513 and.w r5, ip, r3, lsr #20 80006bc: bf18 it ne 80006be: ea95 0f0c teqne r5, ip 80006c2: d00c beq.n 80006de <__aeabi_dmul+0x206> 80006c4: ea50 0641 orrs.w r6, r0, r1, lsl #1 80006c8: bf18 it ne 80006ca: ea52 0643 orrsne.w r6, r2, r3, lsl #1 80006ce: d1d1 bne.n 8000674 <__aeabi_dmul+0x19c> 80006d0: ea81 0103 eor.w r1, r1, r3 80006d4: f001 4100 and.w r1, r1, #2147483648 @ 0x80000000 80006d8: f04f 0000 mov.w r0, #0 80006dc: bd70 pop {r4, r5, r6, pc} 80006de: ea50 0641 orrs.w r6, r0, r1, lsl #1 80006e2: bf06 itte eq 80006e4: 4610 moveq r0, r2 80006e6: 4619 moveq r1, r3 80006e8: ea52 0643 orrsne.w r6, r2, r3, lsl #1 80006ec: d019 beq.n 8000722 <__aeabi_dmul+0x24a> 80006ee: ea94 0f0c teq r4, ip 80006f2: d102 bne.n 80006fa <__aeabi_dmul+0x222> 80006f4: ea50 3601 orrs.w r6, r0, r1, lsl #12 80006f8: d113 bne.n 8000722 <__aeabi_dmul+0x24a> 80006fa: ea95 0f0c teq r5, ip 80006fe: d105 bne.n 800070c <__aeabi_dmul+0x234> 8000700: ea52 3603 orrs.w r6, r2, r3, lsl #12 8000704: bf1c itt ne 8000706: 4610 movne r0, r2 8000708: 4619 movne r1, r3 800070a: d10a bne.n 8000722 <__aeabi_dmul+0x24a> 800070c: ea81 0103 eor.w r1, r1, r3 8000710: f001 4100 and.w r1, r1, #2147483648 @ 0x80000000 8000714: f041 41fe orr.w r1, r1, #2130706432 @ 0x7f000000 8000718: f441 0170 orr.w r1, r1, #15728640 @ 0xf00000 800071c: f04f 0000 mov.w r0, #0 8000720: bd70 pop {r4, r5, r6, pc} 8000722: f041 41fe orr.w r1, r1, #2130706432 @ 0x7f000000 8000726: f441 0178 orr.w r1, r1, #16252928 @ 0xf80000 800072a: bd70 pop {r4, r5, r6, pc} 0800072c <__aeabi_ddiv>: 800072c: b570 push {r4, r5, r6, lr} 800072e: f04f 0cff mov.w ip, #255 @ 0xff 8000732: f44c 6ce0 orr.w ip, ip, #1792 @ 0x700 8000736: ea1c 5411 ands.w r4, ip, r1, lsr #20 800073a: bf1d ittte ne 800073c: ea1c 5513 andsne.w r5, ip, r3, lsr #20 8000740: ea94 0f0c teqne r4, ip 8000744: ea95 0f0c teqne r5, ip 8000748: f000 f8a7 bleq 800089a <__aeabi_ddiv+0x16e> 800074c: eba4 0405 sub.w r4, r4, r5 8000750: ea81 0e03 eor.w lr, r1, r3 8000754: ea52 3503 orrs.w r5, r2, r3, lsl #12 8000758: ea4f 3101 mov.w r1, r1, lsl #12 800075c: f000 8088 beq.w 8000870 <__aeabi_ddiv+0x144> 8000760: ea4f 3303 mov.w r3, r3, lsl #12 8000764: f04f 5580 mov.w r5, #268435456 @ 0x10000000 8000768: ea45 1313 orr.w r3, r5, r3, lsr #4 800076c: ea43 6312 orr.w r3, r3, r2, lsr #24 8000770: ea4f 2202 mov.w r2, r2, lsl #8 8000774: ea45 1511 orr.w r5, r5, r1, lsr #4 8000778: ea45 6510 orr.w r5, r5, r0, lsr #24 800077c: ea4f 2600 mov.w r6, r0, lsl #8 8000780: f00e 4100 and.w r1, lr, #2147483648 @ 0x80000000 8000784: 429d cmp r5, r3 8000786: bf08 it eq 8000788: 4296 cmpeq r6, r2 800078a: f144 04fd adc.w r4, r4, #253 @ 0xfd 800078e: f504 7440 add.w r4, r4, #768 @ 0x300 8000792: d202 bcs.n 800079a <__aeabi_ddiv+0x6e> 8000794: 085b lsrs r3, r3, #1 8000796: ea4f 0232 mov.w r2, r2, rrx 800079a: 1ab6 subs r6, r6, r2 800079c: eb65 0503 sbc.w r5, r5, r3 80007a0: 085b lsrs r3, r3, #1 80007a2: ea4f 0232 mov.w r2, r2, rrx 80007a6: f44f 1080 mov.w r0, #1048576 @ 0x100000 80007aa: f44f 2c00 mov.w ip, #524288 @ 0x80000 80007ae: ebb6 0e02 subs.w lr, r6, r2 80007b2: eb75 0e03 sbcs.w lr, r5, r3 80007b6: bf22 ittt cs 80007b8: 1ab6 subcs r6, r6, r2 80007ba: 4675 movcs r5, lr 80007bc: ea40 000c orrcs.w r0, r0, ip 80007c0: 085b lsrs r3, r3, #1 80007c2: ea4f 0232 mov.w r2, r2, rrx 80007c6: ebb6 0e02 subs.w lr, r6, r2 80007ca: eb75 0e03 sbcs.w lr, r5, r3 80007ce: bf22 ittt cs 80007d0: 1ab6 subcs r6, r6, r2 80007d2: 4675 movcs r5, lr 80007d4: ea40 005c orrcs.w r0, r0, ip, lsr #1 80007d8: 085b lsrs r3, r3, #1 80007da: ea4f 0232 mov.w r2, r2, rrx 80007de: ebb6 0e02 subs.w lr, r6, r2 80007e2: eb75 0e03 sbcs.w lr, r5, r3 80007e6: bf22 ittt cs 80007e8: 1ab6 subcs r6, r6, r2 80007ea: 4675 movcs r5, lr 80007ec: ea40 009c orrcs.w r0, r0, ip, lsr #2 80007f0: 085b lsrs r3, r3, #1 80007f2: ea4f 0232 mov.w r2, r2, rrx 80007f6: ebb6 0e02 subs.w lr, r6, r2 80007fa: eb75 0e03 sbcs.w lr, r5, r3 80007fe: bf22 ittt cs 8000800: 1ab6 subcs r6, r6, r2 8000802: 4675 movcs r5, lr 8000804: ea40 00dc orrcs.w r0, r0, ip, lsr #3 8000808: ea55 0e06 orrs.w lr, r5, r6 800080c: d018 beq.n 8000840 <__aeabi_ddiv+0x114> 800080e: ea4f 1505 mov.w r5, r5, lsl #4 8000812: ea45 7516 orr.w r5, r5, r6, lsr #28 8000816: ea4f 1606 mov.w r6, r6, lsl #4 800081a: ea4f 03c3 mov.w r3, r3, lsl #3 800081e: ea43 7352 orr.w r3, r3, r2, lsr #29 8000822: ea4f 02c2 mov.w r2, r2, lsl #3 8000826: ea5f 1c1c movs.w ip, ip, lsr #4 800082a: d1c0 bne.n 80007ae <__aeabi_ddiv+0x82> 800082c: f411 1f80 tst.w r1, #1048576 @ 0x100000 8000830: d10b bne.n 800084a <__aeabi_ddiv+0x11e> 8000832: ea41 0100 orr.w r1, r1, r0 8000836: f04f 0000 mov.w r0, #0 800083a: f04f 4c00 mov.w ip, #2147483648 @ 0x80000000 800083e: e7b6 b.n 80007ae <__aeabi_ddiv+0x82> 8000840: f411 1f80 tst.w r1, #1048576 @ 0x100000 8000844: bf04 itt eq 8000846: 4301 orreq r1, r0 8000848: 2000 moveq r0, #0 800084a: f1b4 0cfd subs.w ip, r4, #253 @ 0xfd 800084e: bf88 it hi 8000850: f5bc 6fe0 cmphi.w ip, #1792 @ 0x700 8000854: f63f aeaf bhi.w 80005b6 <__aeabi_dmul+0xde> 8000858: ebb5 0c03 subs.w ip, r5, r3 800085c: bf04 itt eq 800085e: ebb6 0c02 subseq.w ip, r6, r2 8000862: ea5f 0c50 movseq.w ip, r0, lsr #1 8000866: f150 0000 adcs.w r0, r0, #0 800086a: eb41 5104 adc.w r1, r1, r4, lsl #20 800086e: bd70 pop {r4, r5, r6, pc} 8000870: f00e 4e00 and.w lr, lr, #2147483648 @ 0x80000000 8000874: ea4e 3111 orr.w r1, lr, r1, lsr #12 8000878: eb14 045c adds.w r4, r4, ip, lsr #1 800087c: bfc2 ittt gt 800087e: ebd4 050c rsbsgt r5, r4, ip 8000882: ea41 5104 orrgt.w r1, r1, r4, lsl #20 8000886: bd70 popgt {r4, r5, r6, pc} 8000888: f441 1180 orr.w r1, r1, #1048576 @ 0x100000 800088c: f04f 0e00 mov.w lr, #0 8000890: 3c01 subs r4, #1 8000892: e690 b.n 80005b6 <__aeabi_dmul+0xde> 8000894: ea45 0e06 orr.w lr, r5, r6 8000898: e68d b.n 80005b6 <__aeabi_dmul+0xde> 800089a: ea0c 5513 and.w r5, ip, r3, lsr #20 800089e: ea94 0f0c teq r4, ip 80008a2: bf08 it eq 80008a4: ea95 0f0c teqeq r5, ip 80008a8: f43f af3b beq.w 8000722 <__aeabi_dmul+0x24a> 80008ac: ea94 0f0c teq r4, ip 80008b0: d10a bne.n 80008c8 <__aeabi_ddiv+0x19c> 80008b2: ea50 3401 orrs.w r4, r0, r1, lsl #12 80008b6: f47f af34 bne.w 8000722 <__aeabi_dmul+0x24a> 80008ba: ea95 0f0c teq r5, ip 80008be: f47f af25 bne.w 800070c <__aeabi_dmul+0x234> 80008c2: 4610 mov r0, r2 80008c4: 4619 mov r1, r3 80008c6: e72c b.n 8000722 <__aeabi_dmul+0x24a> 80008c8: ea95 0f0c teq r5, ip 80008cc: d106 bne.n 80008dc <__aeabi_ddiv+0x1b0> 80008ce: ea52 3503 orrs.w r5, r2, r3, lsl #12 80008d2: f43f aefd beq.w 80006d0 <__aeabi_dmul+0x1f8> 80008d6: 4610 mov r0, r2 80008d8: 4619 mov r1, r3 80008da: e722 b.n 8000722 <__aeabi_dmul+0x24a> 80008dc: ea50 0641 orrs.w r6, r0, r1, lsl #1 80008e0: bf18 it ne 80008e2: ea52 0643 orrsne.w r6, r2, r3, lsl #1 80008e6: f47f aec5 bne.w 8000674 <__aeabi_dmul+0x19c> 80008ea: ea50 0441 orrs.w r4, r0, r1, lsl #1 80008ee: f47f af0d bne.w 800070c <__aeabi_dmul+0x234> 80008f2: ea52 0543 orrs.w r5, r2, r3, lsl #1 80008f6: f47f aeeb bne.w 80006d0 <__aeabi_dmul+0x1f8> 80008fa: e712 b.n 8000722 <__aeabi_dmul+0x24a> 080008fc <__gedf2>: 80008fc: f04f 3cff mov.w ip, #4294967295 8000900: e006 b.n 8000910 <__cmpdf2+0x4> 8000902: bf00 nop 08000904 <__ledf2>: 8000904: f04f 0c01 mov.w ip, #1 8000908: e002 b.n 8000910 <__cmpdf2+0x4> 800090a: bf00 nop 0800090c <__cmpdf2>: 800090c: f04f 0c01 mov.w ip, #1 8000910: f84d cd04 str.w ip, [sp, #-4]! 8000914: ea4f 0c41 mov.w ip, r1, lsl #1 8000918: ea7f 5c6c mvns.w ip, ip, asr #21 800091c: ea4f 0c43 mov.w ip, r3, lsl #1 8000920: bf18 it ne 8000922: ea7f 5c6c mvnsne.w ip, ip, asr #21 8000926: d01b beq.n 8000960 <__cmpdf2+0x54> 8000928: b001 add sp, #4 800092a: ea50 0c41 orrs.w ip, r0, r1, lsl #1 800092e: bf0c ite eq 8000930: ea52 0c43 orrseq.w ip, r2, r3, lsl #1 8000934: ea91 0f03 teqne r1, r3 8000938: bf02 ittt eq 800093a: ea90 0f02 teqeq r0, r2 800093e: 2000 moveq r0, #0 8000940: 4770 bxeq lr 8000942: f110 0f00 cmn.w r0, #0 8000946: ea91 0f03 teq r1, r3 800094a: bf58 it pl 800094c: 4299 cmppl r1, r3 800094e: bf08 it eq 8000950: 4290 cmpeq r0, r2 8000952: bf2c ite cs 8000954: 17d8 asrcs r0, r3, #31 8000956: ea6f 70e3 mvncc.w r0, r3, asr #31 800095a: f040 0001 orr.w r0, r0, #1 800095e: 4770 bx lr 8000960: ea4f 0c41 mov.w ip, r1, lsl #1 8000964: ea7f 5c6c mvns.w ip, ip, asr #21 8000968: d102 bne.n 8000970 <__cmpdf2+0x64> 800096a: ea50 3c01 orrs.w ip, r0, r1, lsl #12 800096e: d107 bne.n 8000980 <__cmpdf2+0x74> 8000970: ea4f 0c43 mov.w ip, r3, lsl #1 8000974: ea7f 5c6c mvns.w ip, ip, asr #21 8000978: d1d6 bne.n 8000928 <__cmpdf2+0x1c> 800097a: ea52 3c03 orrs.w ip, r2, r3, lsl #12 800097e: d0d3 beq.n 8000928 <__cmpdf2+0x1c> 8000980: f85d 0b04 ldr.w r0, [sp], #4 8000984: 4770 bx lr 8000986: bf00 nop 08000988 <__aeabi_cdrcmple>: 8000988: 4684 mov ip, r0 800098a: 4610 mov r0, r2 800098c: 4662 mov r2, ip 800098e: 468c mov ip, r1 8000990: 4619 mov r1, r3 8000992: 4663 mov r3, ip 8000994: e000 b.n 8000998 <__aeabi_cdcmpeq> 8000996: bf00 nop 08000998 <__aeabi_cdcmpeq>: 8000998: b501 push {r0, lr} 800099a: f7ff ffb7 bl 800090c <__cmpdf2> 800099e: 2800 cmp r0, #0 80009a0: bf48 it mi 80009a2: f110 0f00 cmnmi.w r0, #0 80009a6: bd01 pop {r0, pc} 080009a8 <__aeabi_dcmpeq>: 80009a8: f84d ed08 str.w lr, [sp, #-8]! 80009ac: f7ff fff4 bl 8000998 <__aeabi_cdcmpeq> 80009b0: bf0c ite eq 80009b2: 2001 moveq r0, #1 80009b4: 2000 movne r0, #0 80009b6: f85d fb08 ldr.w pc, [sp], #8 80009ba: bf00 nop 080009bc <__aeabi_dcmplt>: 80009bc: f84d ed08 str.w lr, [sp, #-8]! 80009c0: f7ff ffea bl 8000998 <__aeabi_cdcmpeq> 80009c4: bf34 ite cc 80009c6: 2001 movcc r0, #1 80009c8: 2000 movcs r0, #0 80009ca: f85d fb08 ldr.w pc, [sp], #8 80009ce: bf00 nop 080009d0 <__aeabi_dcmple>: 80009d0: f84d ed08 str.w lr, [sp, #-8]! 80009d4: f7ff ffe0 bl 8000998 <__aeabi_cdcmpeq> 80009d8: bf94 ite ls 80009da: 2001 movls r0, #1 80009dc: 2000 movhi r0, #0 80009de: f85d fb08 ldr.w pc, [sp], #8 80009e2: bf00 nop 080009e4 <__aeabi_dcmpge>: 80009e4: f84d ed08 str.w lr, [sp, #-8]! 80009e8: f7ff ffce bl 8000988 <__aeabi_cdrcmple> 80009ec: bf94 ite ls 80009ee: 2001 movls r0, #1 80009f0: 2000 movhi r0, #0 80009f2: f85d fb08 ldr.w pc, [sp], #8 80009f6: bf00 nop 080009f8 <__aeabi_dcmpgt>: 80009f8: f84d ed08 str.w lr, [sp, #-8]! 80009fc: f7ff ffc4 bl 8000988 <__aeabi_cdrcmple> 8000a00: bf34 ite cc 8000a02: 2001 movcc r0, #1 8000a04: 2000 movcs r0, #0 8000a06: f85d fb08 ldr.w pc, [sp], #8 8000a0a: bf00 nop 08000a0c <__aeabi_d2iz>: 8000a0c: ea4f 0241 mov.w r2, r1, lsl #1 8000a10: f512 1200 adds.w r2, r2, #2097152 @ 0x200000 8000a14: d215 bcs.n 8000a42 <__aeabi_d2iz+0x36> 8000a16: d511 bpl.n 8000a3c <__aeabi_d2iz+0x30> 8000a18: f46f 7378 mvn.w r3, #992 @ 0x3e0 8000a1c: ebb3 5262 subs.w r2, r3, r2, asr #21 8000a20: d912 bls.n 8000a48 <__aeabi_d2iz+0x3c> 8000a22: ea4f 23c1 mov.w r3, r1, lsl #11 8000a26: f043 4300 orr.w r3, r3, #2147483648 @ 0x80000000 8000a2a: ea43 5350 orr.w r3, r3, r0, lsr #21 8000a2e: f011 4f00 tst.w r1, #2147483648 @ 0x80000000 8000a32: fa23 f002 lsr.w r0, r3, r2 8000a36: bf18 it ne 8000a38: 4240 negne r0, r0 8000a3a: 4770 bx lr 8000a3c: f04f 0000 mov.w r0, #0 8000a40: 4770 bx lr 8000a42: ea50 3001 orrs.w r0, r0, r1, lsl #12 8000a46: d105 bne.n 8000a54 <__aeabi_d2iz+0x48> 8000a48: f011 4000 ands.w r0, r1, #2147483648 @ 0x80000000 8000a4c: bf08 it eq 8000a4e: f06f 4000 mvneq.w r0, #2147483648 @ 0x80000000 8000a52: 4770 bx lr 8000a54: f04f 0000 mov.w r0, #0 8000a58: 4770 bx lr 8000a5a: bf00 nop 08000a5c <__aeabi_d2f>: 8000a5c: ea4f 0241 mov.w r2, r1, lsl #1 8000a60: f1b2 43e0 subs.w r3, r2, #1879048192 @ 0x70000000 8000a64: bf24 itt cs 8000a66: f5b3 1c00 subscs.w ip, r3, #2097152 @ 0x200000 8000a6a: f1dc 5cfe rsbscs ip, ip, #532676608 @ 0x1fc00000 8000a6e: d90d bls.n 8000a8c <__aeabi_d2f+0x30> 8000a70: f001 4c00 and.w ip, r1, #2147483648 @ 0x80000000 8000a74: ea4f 02c0 mov.w r2, r0, lsl #3 8000a78: ea4c 7050 orr.w r0, ip, r0, lsr #29 8000a7c: f1b2 4f00 cmp.w r2, #2147483648 @ 0x80000000 8000a80: eb40 0083 adc.w r0, r0, r3, lsl #2 8000a84: bf08 it eq 8000a86: f020 0001 biceq.w r0, r0, #1 8000a8a: 4770 bx lr 8000a8c: f011 4f80 tst.w r1, #1073741824 @ 0x40000000 8000a90: d121 bne.n 8000ad6 <__aeabi_d2f+0x7a> 8000a92: f113 7238 adds.w r2, r3, #48234496 @ 0x2e00000 8000a96: bfbc itt lt 8000a98: f001 4000 andlt.w r0, r1, #2147483648 @ 0x80000000 8000a9c: 4770 bxlt lr 8000a9e: f441 1180 orr.w r1, r1, #1048576 @ 0x100000 8000aa2: ea4f 5252 mov.w r2, r2, lsr #21 8000aa6: f1c2 0218 rsb r2, r2, #24 8000aaa: f1c2 0c20 rsb ip, r2, #32 8000aae: fa10 f30c lsls.w r3, r0, ip 8000ab2: fa20 f002 lsr.w r0, r0, r2 8000ab6: bf18 it ne 8000ab8: f040 0001 orrne.w r0, r0, #1 8000abc: ea4f 23c1 mov.w r3, r1, lsl #11 8000ac0: ea4f 23d3 mov.w r3, r3, lsr #11 8000ac4: fa03 fc0c lsl.w ip, r3, ip 8000ac8: ea40 000c orr.w r0, r0, ip 8000acc: fa23 f302 lsr.w r3, r3, r2 8000ad0: ea4f 0343 mov.w r3, r3, lsl #1 8000ad4: e7cc b.n 8000a70 <__aeabi_d2f+0x14> 8000ad6: ea7f 5362 mvns.w r3, r2, asr #21 8000ada: d107 bne.n 8000aec <__aeabi_d2f+0x90> 8000adc: ea50 3301 orrs.w r3, r0, r1, lsl #12 8000ae0: bf1e ittt ne 8000ae2: f04f 40fe movne.w r0, #2130706432 @ 0x7f000000 8000ae6: f440 0040 orrne.w r0, r0, #12582912 @ 0xc00000 8000aea: 4770 bxne lr 8000aec: f001 4000 and.w r0, r1, #2147483648 @ 0x80000000 8000af0: f040 40fe orr.w r0, r0, #2130706432 @ 0x7f000000 8000af4: f440 0000 orr.w r0, r0, #8388608 @ 0x800000 8000af8: 4770 bx lr 8000afa: bf00 nop 08000afc <__aeabi_frsub>: 8000afc: f080 4000 eor.w r0, r0, #2147483648 @ 0x80000000 8000b00: e002 b.n 8000b08 <__addsf3> 8000b02: bf00 nop 08000b04 <__aeabi_fsub>: 8000b04: f081 4100 eor.w r1, r1, #2147483648 @ 0x80000000 08000b08 <__addsf3>: 8000b08: 0042 lsls r2, r0, #1 8000b0a: bf1f itttt ne 8000b0c: ea5f 0341 movsne.w r3, r1, lsl #1 8000b10: ea92 0f03 teqne r2, r3 8000b14: ea7f 6c22 mvnsne.w ip, r2, asr #24 8000b18: ea7f 6c23 mvnsne.w ip, r3, asr #24 8000b1c: d06a beq.n 8000bf4 <__addsf3+0xec> 8000b1e: ea4f 6212 mov.w r2, r2, lsr #24 8000b22: ebd2 6313 rsbs r3, r2, r3, lsr #24 8000b26: bfc1 itttt gt 8000b28: 18d2 addgt r2, r2, r3 8000b2a: 4041 eorgt r1, r0 8000b2c: 4048 eorgt r0, r1 8000b2e: 4041 eorgt r1, r0 8000b30: bfb8 it lt 8000b32: 425b neglt r3, r3 8000b34: 2b19 cmp r3, #25 8000b36: bf88 it hi 8000b38: 4770 bxhi lr 8000b3a: f010 4f00 tst.w r0, #2147483648 @ 0x80000000 8000b3e: f440 0000 orr.w r0, r0, #8388608 @ 0x800000 8000b42: f020 407f bic.w r0, r0, #4278190080 @ 0xff000000 8000b46: bf18 it ne 8000b48: 4240 negne r0, r0 8000b4a: f011 4f00 tst.w r1, #2147483648 @ 0x80000000 8000b4e: f441 0100 orr.w r1, r1, #8388608 @ 0x800000 8000b52: f021 417f bic.w r1, r1, #4278190080 @ 0xff000000 8000b56: bf18 it ne 8000b58: 4249 negne r1, r1 8000b5a: ea92 0f03 teq r2, r3 8000b5e: d03f beq.n 8000be0 <__addsf3+0xd8> 8000b60: f1a2 0201 sub.w r2, r2, #1 8000b64: fa41 fc03 asr.w ip, r1, r3 8000b68: eb10 000c adds.w r0, r0, ip 8000b6c: f1c3 0320 rsb r3, r3, #32 8000b70: fa01 f103 lsl.w r1, r1, r3 8000b74: f000 4300 and.w r3, r0, #2147483648 @ 0x80000000 8000b78: d502 bpl.n 8000b80 <__addsf3+0x78> 8000b7a: 4249 negs r1, r1 8000b7c: eb60 0040 sbc.w r0, r0, r0, lsl #1 8000b80: f5b0 0f00 cmp.w r0, #8388608 @ 0x800000 8000b84: d313 bcc.n 8000bae <__addsf3+0xa6> 8000b86: f1b0 7f80 cmp.w r0, #16777216 @ 0x1000000 8000b8a: d306 bcc.n 8000b9a <__addsf3+0x92> 8000b8c: 0840 lsrs r0, r0, #1 8000b8e: ea4f 0131 mov.w r1, r1, rrx 8000b92: f102 0201 add.w r2, r2, #1 8000b96: 2afe cmp r2, #254 @ 0xfe 8000b98: d251 bcs.n 8000c3e <__addsf3+0x136> 8000b9a: f1b1 4f00 cmp.w r1, #2147483648 @ 0x80000000 8000b9e: eb40 50c2 adc.w r0, r0, r2, lsl #23 8000ba2: bf08 it eq 8000ba4: f020 0001 biceq.w r0, r0, #1 8000ba8: ea40 0003 orr.w r0, r0, r3 8000bac: 4770 bx lr 8000bae: 0049 lsls r1, r1, #1 8000bb0: eb40 0000 adc.w r0, r0, r0 8000bb4: 3a01 subs r2, #1 8000bb6: bf28 it cs 8000bb8: f5b0 0f00 cmpcs.w r0, #8388608 @ 0x800000 8000bbc: d2ed bcs.n 8000b9a <__addsf3+0x92> 8000bbe: fab0 fc80 clz ip, r0 8000bc2: f1ac 0c08 sub.w ip, ip, #8 8000bc6: ebb2 020c subs.w r2, r2, ip 8000bca: fa00 f00c lsl.w r0, r0, ip 8000bce: bfaa itet ge 8000bd0: eb00 50c2 addge.w r0, r0, r2, lsl #23 8000bd4: 4252 neglt r2, r2 8000bd6: 4318 orrge r0, r3 8000bd8: bfbc itt lt 8000bda: 40d0 lsrlt r0, r2 8000bdc: 4318 orrlt r0, r3 8000bde: 4770 bx lr 8000be0: f092 0f00 teq r2, #0 8000be4: f481 0100 eor.w r1, r1, #8388608 @ 0x800000 8000be8: bf06 itte eq 8000bea: f480 0000 eoreq.w r0, r0, #8388608 @ 0x800000 8000bee: 3201 addeq r2, #1 8000bf0: 3b01 subne r3, #1 8000bf2: e7b5 b.n 8000b60 <__addsf3+0x58> 8000bf4: ea4f 0341 mov.w r3, r1, lsl #1 8000bf8: ea7f 6c22 mvns.w ip, r2, asr #24 8000bfc: bf18 it ne 8000bfe: ea7f 6c23 mvnsne.w ip, r3, asr #24 8000c02: d021 beq.n 8000c48 <__addsf3+0x140> 8000c04: ea92 0f03 teq r2, r3 8000c08: d004 beq.n 8000c14 <__addsf3+0x10c> 8000c0a: f092 0f00 teq r2, #0 8000c0e: bf08 it eq 8000c10: 4608 moveq r0, r1 8000c12: 4770 bx lr 8000c14: ea90 0f01 teq r0, r1 8000c18: bf1c itt ne 8000c1a: 2000 movne r0, #0 8000c1c: 4770 bxne lr 8000c1e: f012 4f7f tst.w r2, #4278190080 @ 0xff000000 8000c22: d104 bne.n 8000c2e <__addsf3+0x126> 8000c24: 0040 lsls r0, r0, #1 8000c26: bf28 it cs 8000c28: f040 4000 orrcs.w r0, r0, #2147483648 @ 0x80000000 8000c2c: 4770 bx lr 8000c2e: f112 7200 adds.w r2, r2, #33554432 @ 0x2000000 8000c32: bf3c itt cc 8000c34: f500 0000 addcc.w r0, r0, #8388608 @ 0x800000 8000c38: 4770 bxcc lr 8000c3a: f000 4300 and.w r3, r0, #2147483648 @ 0x80000000 8000c3e: f043 40fe orr.w r0, r3, #2130706432 @ 0x7f000000 8000c42: f440 0000 orr.w r0, r0, #8388608 @ 0x800000 8000c46: 4770 bx lr 8000c48: ea7f 6222 mvns.w r2, r2, asr #24 8000c4c: bf16 itet ne 8000c4e: 4608 movne r0, r1 8000c50: ea7f 6323 mvnseq.w r3, r3, asr #24 8000c54: 4601 movne r1, r0 8000c56: 0242 lsls r2, r0, #9 8000c58: bf06 itte eq 8000c5a: ea5f 2341 movseq.w r3, r1, lsl #9 8000c5e: ea90 0f01 teqeq r0, r1 8000c62: f440 0080 orrne.w r0, r0, #4194304 @ 0x400000 8000c66: 4770 bx lr 08000c68 <__aeabi_ui2f>: 8000c68: f04f 0300 mov.w r3, #0 8000c6c: e004 b.n 8000c78 <__aeabi_i2f+0x8> 8000c6e: bf00 nop 08000c70 <__aeabi_i2f>: 8000c70: f010 4300 ands.w r3, r0, #2147483648 @ 0x80000000 8000c74: bf48 it mi 8000c76: 4240 negmi r0, r0 8000c78: ea5f 0c00 movs.w ip, r0 8000c7c: bf08 it eq 8000c7e: 4770 bxeq lr 8000c80: f043 4396 orr.w r3, r3, #1258291200 @ 0x4b000000 8000c84: 4601 mov r1, r0 8000c86: f04f 0000 mov.w r0, #0 8000c8a: e01c b.n 8000cc6 <__aeabi_l2f+0x2a> 08000c8c <__aeabi_ul2f>: 8000c8c: ea50 0201 orrs.w r2, r0, r1 8000c90: bf08 it eq 8000c92: 4770 bxeq lr 8000c94: f04f 0300 mov.w r3, #0 8000c98: e00a b.n 8000cb0 <__aeabi_l2f+0x14> 8000c9a: bf00 nop 08000c9c <__aeabi_l2f>: 8000c9c: ea50 0201 orrs.w r2, r0, r1 8000ca0: bf08 it eq 8000ca2: 4770 bxeq lr 8000ca4: f011 4300 ands.w r3, r1, #2147483648 @ 0x80000000 8000ca8: d502 bpl.n 8000cb0 <__aeabi_l2f+0x14> 8000caa: 4240 negs r0, r0 8000cac: eb61 0141 sbc.w r1, r1, r1, lsl #1 8000cb0: ea5f 0c01 movs.w ip, r1 8000cb4: bf02 ittt eq 8000cb6: 4684 moveq ip, r0 8000cb8: 4601 moveq r1, r0 8000cba: 2000 moveq r0, #0 8000cbc: f043 43b6 orr.w r3, r3, #1526726656 @ 0x5b000000 8000cc0: bf08 it eq 8000cc2: f1a3 5380 subeq.w r3, r3, #268435456 @ 0x10000000 8000cc6: f5a3 0300 sub.w r3, r3, #8388608 @ 0x800000 8000cca: fabc f28c clz r2, ip 8000cce: 3a08 subs r2, #8 8000cd0: eba3 53c2 sub.w r3, r3, r2, lsl #23 8000cd4: db10 blt.n 8000cf8 <__aeabi_l2f+0x5c> 8000cd6: fa01 fc02 lsl.w ip, r1, r2 8000cda: 4463 add r3, ip 8000cdc: fa00 fc02 lsl.w ip, r0, r2 8000ce0: f1c2 0220 rsb r2, r2, #32 8000ce4: f1bc 4f00 cmp.w ip, #2147483648 @ 0x80000000 8000ce8: fa20 f202 lsr.w r2, r0, r2 8000cec: eb43 0002 adc.w r0, r3, r2 8000cf0: bf08 it eq 8000cf2: f020 0001 biceq.w r0, r0, #1 8000cf6: 4770 bx lr 8000cf8: f102 0220 add.w r2, r2, #32 8000cfc: fa01 fc02 lsl.w ip, r1, r2 8000d00: f1c2 0220 rsb r2, r2, #32 8000d04: ea50 004c orrs.w r0, r0, ip, lsl #1 8000d08: fa21 f202 lsr.w r2, r1, r2 8000d0c: eb43 0002 adc.w r0, r3, r2 8000d10: bf08 it eq 8000d12: ea20 70dc biceq.w r0, r0, ip, lsr #31 8000d16: 4770 bx lr 08000d18 <__aeabi_fmul>: 8000d18: f04f 0cff mov.w ip, #255 @ 0xff 8000d1c: ea1c 52d0 ands.w r2, ip, r0, lsr #23 8000d20: bf1e ittt ne 8000d22: ea1c 53d1 andsne.w r3, ip, r1, lsr #23 8000d26: ea92 0f0c teqne r2, ip 8000d2a: ea93 0f0c teqne r3, ip 8000d2e: d06f beq.n 8000e10 <__aeabi_fmul+0xf8> 8000d30: 441a add r2, r3 8000d32: ea80 0c01 eor.w ip, r0, r1 8000d36: 0240 lsls r0, r0, #9 8000d38: bf18 it ne 8000d3a: ea5f 2141 movsne.w r1, r1, lsl #9 8000d3e: d01e beq.n 8000d7e <__aeabi_fmul+0x66> 8000d40: f04f 6300 mov.w r3, #134217728 @ 0x8000000 8000d44: ea43 1050 orr.w r0, r3, r0, lsr #5 8000d48: ea43 1151 orr.w r1, r3, r1, lsr #5 8000d4c: fba0 3101 umull r3, r1, r0, r1 8000d50: f00c 4000 and.w r0, ip, #2147483648 @ 0x80000000 8000d54: f5b1 0f00 cmp.w r1, #8388608 @ 0x800000 8000d58: bf3e ittt cc 8000d5a: 0049 lslcc r1, r1, #1 8000d5c: ea41 71d3 orrcc.w r1, r1, r3, lsr #31 8000d60: 005b lslcc r3, r3, #1 8000d62: ea40 0001 orr.w r0, r0, r1 8000d66: f162 027f sbc.w r2, r2, #127 @ 0x7f 8000d6a: 2afd cmp r2, #253 @ 0xfd 8000d6c: d81d bhi.n 8000daa <__aeabi_fmul+0x92> 8000d6e: f1b3 4f00 cmp.w r3, #2147483648 @ 0x80000000 8000d72: eb40 50c2 adc.w r0, r0, r2, lsl #23 8000d76: bf08 it eq 8000d78: f020 0001 biceq.w r0, r0, #1 8000d7c: 4770 bx lr 8000d7e: f090 0f00 teq r0, #0 8000d82: f00c 4c00 and.w ip, ip, #2147483648 @ 0x80000000 8000d86: bf08 it eq 8000d88: 0249 lsleq r1, r1, #9 8000d8a: ea4c 2050 orr.w r0, ip, r0, lsr #9 8000d8e: ea40 2051 orr.w r0, r0, r1, lsr #9 8000d92: 3a7f subs r2, #127 @ 0x7f 8000d94: bfc2 ittt gt 8000d96: f1d2 03ff rsbsgt r3, r2, #255 @ 0xff 8000d9a: ea40 50c2 orrgt.w r0, r0, r2, lsl #23 8000d9e: 4770 bxgt lr 8000da0: f440 0000 orr.w r0, r0, #8388608 @ 0x800000 8000da4: f04f 0300 mov.w r3, #0 8000da8: 3a01 subs r2, #1 8000daa: dc5d bgt.n 8000e68 <__aeabi_fmul+0x150> 8000dac: f112 0f19 cmn.w r2, #25 8000db0: bfdc itt le 8000db2: f000 4000 andle.w r0, r0, #2147483648 @ 0x80000000 8000db6: 4770 bxle lr 8000db8: f1c2 0200 rsb r2, r2, #0 8000dbc: 0041 lsls r1, r0, #1 8000dbe: fa21 f102 lsr.w r1, r1, r2 8000dc2: f1c2 0220 rsb r2, r2, #32 8000dc6: fa00 fc02 lsl.w ip, r0, r2 8000dca: ea5f 0031 movs.w r0, r1, rrx 8000dce: f140 0000 adc.w r0, r0, #0 8000dd2: ea53 034c orrs.w r3, r3, ip, lsl #1 8000dd6: bf08 it eq 8000dd8: ea20 70dc biceq.w r0, r0, ip, lsr #31 8000ddc: 4770 bx lr 8000dde: f092 0f00 teq r2, #0 8000de2: f000 4c00 and.w ip, r0, #2147483648 @ 0x80000000 8000de6: bf02 ittt eq 8000de8: 0040 lsleq r0, r0, #1 8000dea: f410 0f00 tsteq.w r0, #8388608 @ 0x800000 8000dee: 3a01 subeq r2, #1 8000df0: d0f9 beq.n 8000de6 <__aeabi_fmul+0xce> 8000df2: ea40 000c orr.w r0, r0, ip 8000df6: f093 0f00 teq r3, #0 8000dfa: f001 4c00 and.w ip, r1, #2147483648 @ 0x80000000 8000dfe: bf02 ittt eq 8000e00: 0049 lsleq r1, r1, #1 8000e02: f411 0f00 tsteq.w r1, #8388608 @ 0x800000 8000e06: 3b01 subeq r3, #1 8000e08: d0f9 beq.n 8000dfe <__aeabi_fmul+0xe6> 8000e0a: ea41 010c orr.w r1, r1, ip 8000e0e: e78f b.n 8000d30 <__aeabi_fmul+0x18> 8000e10: ea0c 53d1 and.w r3, ip, r1, lsr #23 8000e14: ea92 0f0c teq r2, ip 8000e18: bf18 it ne 8000e1a: ea93 0f0c teqne r3, ip 8000e1e: d00a beq.n 8000e36 <__aeabi_fmul+0x11e> 8000e20: f030 4c00 bics.w ip, r0, #2147483648 @ 0x80000000 8000e24: bf18 it ne 8000e26: f031 4c00 bicsne.w ip, r1, #2147483648 @ 0x80000000 8000e2a: d1d8 bne.n 8000dde <__aeabi_fmul+0xc6> 8000e2c: ea80 0001 eor.w r0, r0, r1 8000e30: f000 4000 and.w r0, r0, #2147483648 @ 0x80000000 8000e34: 4770 bx lr 8000e36: f090 0f00 teq r0, #0 8000e3a: bf17 itett ne 8000e3c: f090 4f00 teqne r0, #2147483648 @ 0x80000000 8000e40: 4608 moveq r0, r1 8000e42: f091 0f00 teqne r1, #0 8000e46: f091 4f00 teqne r1, #2147483648 @ 0x80000000 8000e4a: d014 beq.n 8000e76 <__aeabi_fmul+0x15e> 8000e4c: ea92 0f0c teq r2, ip 8000e50: d101 bne.n 8000e56 <__aeabi_fmul+0x13e> 8000e52: 0242 lsls r2, r0, #9 8000e54: d10f bne.n 8000e76 <__aeabi_fmul+0x15e> 8000e56: ea93 0f0c teq r3, ip 8000e5a: d103 bne.n 8000e64 <__aeabi_fmul+0x14c> 8000e5c: 024b lsls r3, r1, #9 8000e5e: bf18 it ne 8000e60: 4608 movne r0, r1 8000e62: d108 bne.n 8000e76 <__aeabi_fmul+0x15e> 8000e64: ea80 0001 eor.w r0, r0, r1 8000e68: f000 4000 and.w r0, r0, #2147483648 @ 0x80000000 8000e6c: f040 40fe orr.w r0, r0, #2130706432 @ 0x7f000000 8000e70: f440 0000 orr.w r0, r0, #8388608 @ 0x800000 8000e74: 4770 bx lr 8000e76: f040 40fe orr.w r0, r0, #2130706432 @ 0x7f000000 8000e7a: f440 0040 orr.w r0, r0, #12582912 @ 0xc00000 8000e7e: 4770 bx lr 08000e80 <__aeabi_fdiv>: 8000e80: f04f 0cff mov.w ip, #255 @ 0xff 8000e84: ea1c 52d0 ands.w r2, ip, r0, lsr #23 8000e88: bf1e ittt ne 8000e8a: ea1c 53d1 andsne.w r3, ip, r1, lsr #23 8000e8e: ea92 0f0c teqne r2, ip 8000e92: ea93 0f0c teqne r3, ip 8000e96: d069 beq.n 8000f6c <__aeabi_fdiv+0xec> 8000e98: eba2 0203 sub.w r2, r2, r3 8000e9c: ea80 0c01 eor.w ip, r0, r1 8000ea0: 0249 lsls r1, r1, #9 8000ea2: ea4f 2040 mov.w r0, r0, lsl #9 8000ea6: d037 beq.n 8000f18 <__aeabi_fdiv+0x98> 8000ea8: f04f 5380 mov.w r3, #268435456 @ 0x10000000 8000eac: ea43 1111 orr.w r1, r3, r1, lsr #4 8000eb0: ea43 1310 orr.w r3, r3, r0, lsr #4 8000eb4: f00c 4000 and.w r0, ip, #2147483648 @ 0x80000000 8000eb8: 428b cmp r3, r1 8000eba: bf38 it cc 8000ebc: 005b lslcc r3, r3, #1 8000ebe: f142 027d adc.w r2, r2, #125 @ 0x7d 8000ec2: f44f 0c00 mov.w ip, #8388608 @ 0x800000 8000ec6: 428b cmp r3, r1 8000ec8: bf24 itt cs 8000eca: 1a5b subcs r3, r3, r1 8000ecc: ea40 000c orrcs.w r0, r0, ip 8000ed0: ebb3 0f51 cmp.w r3, r1, lsr #1 8000ed4: bf24 itt cs 8000ed6: eba3 0351 subcs.w r3, r3, r1, lsr #1 8000eda: ea40 005c orrcs.w r0, r0, ip, lsr #1 8000ede: ebb3 0f91 cmp.w r3, r1, lsr #2 8000ee2: bf24 itt cs 8000ee4: eba3 0391 subcs.w r3, r3, r1, lsr #2 8000ee8: ea40 009c orrcs.w r0, r0, ip, lsr #2 8000eec: ebb3 0fd1 cmp.w r3, r1, lsr #3 8000ef0: bf24 itt cs 8000ef2: eba3 03d1 subcs.w r3, r3, r1, lsr #3 8000ef6: ea40 00dc orrcs.w r0, r0, ip, lsr #3 8000efa: 011b lsls r3, r3, #4 8000efc: bf18 it ne 8000efe: ea5f 1c1c movsne.w ip, ip, lsr #4 8000f02: d1e0 bne.n 8000ec6 <__aeabi_fdiv+0x46> 8000f04: 2afd cmp r2, #253 @ 0xfd 8000f06: f63f af50 bhi.w 8000daa <__aeabi_fmul+0x92> 8000f0a: 428b cmp r3, r1 8000f0c: eb40 50c2 adc.w r0, r0, r2, lsl #23 8000f10: bf08 it eq 8000f12: f020 0001 biceq.w r0, r0, #1 8000f16: 4770 bx lr 8000f18: f00c 4c00 and.w ip, ip, #2147483648 @ 0x80000000 8000f1c: ea4c 2050 orr.w r0, ip, r0, lsr #9 8000f20: 327f adds r2, #127 @ 0x7f 8000f22: bfc2 ittt gt 8000f24: f1d2 03ff rsbsgt r3, r2, #255 @ 0xff 8000f28: ea40 50c2 orrgt.w r0, r0, r2, lsl #23 8000f2c: 4770 bxgt lr 8000f2e: f440 0000 orr.w r0, r0, #8388608 @ 0x800000 8000f32: f04f 0300 mov.w r3, #0 8000f36: 3a01 subs r2, #1 8000f38: e737 b.n 8000daa <__aeabi_fmul+0x92> 8000f3a: f092 0f00 teq r2, #0 8000f3e: f000 4c00 and.w ip, r0, #2147483648 @ 0x80000000 8000f42: bf02 ittt eq 8000f44: 0040 lsleq r0, r0, #1 8000f46: f410 0f00 tsteq.w r0, #8388608 @ 0x800000 8000f4a: 3a01 subeq r2, #1 8000f4c: d0f9 beq.n 8000f42 <__aeabi_fdiv+0xc2> 8000f4e: ea40 000c orr.w r0, r0, ip 8000f52: f093 0f00 teq r3, #0 8000f56: f001 4c00 and.w ip, r1, #2147483648 @ 0x80000000 8000f5a: bf02 ittt eq 8000f5c: 0049 lsleq r1, r1, #1 8000f5e: f411 0f00 tsteq.w r1, #8388608 @ 0x800000 8000f62: 3b01 subeq r3, #1 8000f64: d0f9 beq.n 8000f5a <__aeabi_fdiv+0xda> 8000f66: ea41 010c orr.w r1, r1, ip 8000f6a: e795 b.n 8000e98 <__aeabi_fdiv+0x18> 8000f6c: ea0c 53d1 and.w r3, ip, r1, lsr #23 8000f70: ea92 0f0c teq r2, ip 8000f74: d108 bne.n 8000f88 <__aeabi_fdiv+0x108> 8000f76: 0242 lsls r2, r0, #9 8000f78: f47f af7d bne.w 8000e76 <__aeabi_fmul+0x15e> 8000f7c: ea93 0f0c teq r3, ip 8000f80: f47f af70 bne.w 8000e64 <__aeabi_fmul+0x14c> 8000f84: 4608 mov r0, r1 8000f86: e776 b.n 8000e76 <__aeabi_fmul+0x15e> 8000f88: ea93 0f0c teq r3, ip 8000f8c: d104 bne.n 8000f98 <__aeabi_fdiv+0x118> 8000f8e: 024b lsls r3, r1, #9 8000f90: f43f af4c beq.w 8000e2c <__aeabi_fmul+0x114> 8000f94: 4608 mov r0, r1 8000f96: e76e b.n 8000e76 <__aeabi_fmul+0x15e> 8000f98: f030 4c00 bics.w ip, r0, #2147483648 @ 0x80000000 8000f9c: bf18 it ne 8000f9e: f031 4c00 bicsne.w ip, r1, #2147483648 @ 0x80000000 8000fa2: d1ca bne.n 8000f3a <__aeabi_fdiv+0xba> 8000fa4: f030 4200 bics.w r2, r0, #2147483648 @ 0x80000000 8000fa8: f47f af5c bne.w 8000e64 <__aeabi_fmul+0x14c> 8000fac: f031 4300 bics.w r3, r1, #2147483648 @ 0x80000000 8000fb0: f47f af3c bne.w 8000e2c <__aeabi_fmul+0x114> 8000fb4: e75f b.n 8000e76 <__aeabi_fmul+0x15e> 8000fb6: bf00 nop 08000fb8 <__gesf2>: 8000fb8: f04f 3cff mov.w ip, #4294967295 8000fbc: e006 b.n 8000fcc <__cmpsf2+0x4> 8000fbe: bf00 nop 08000fc0 <__lesf2>: 8000fc0: f04f 0c01 mov.w ip, #1 8000fc4: e002 b.n 8000fcc <__cmpsf2+0x4> 8000fc6: bf00 nop 08000fc8 <__cmpsf2>: 8000fc8: f04f 0c01 mov.w ip, #1 8000fcc: f84d cd04 str.w ip, [sp, #-4]! 8000fd0: ea4f 0240 mov.w r2, r0, lsl #1 8000fd4: ea4f 0341 mov.w r3, r1, lsl #1 8000fd8: ea7f 6c22 mvns.w ip, r2, asr #24 8000fdc: bf18 it ne 8000fde: ea7f 6c23 mvnsne.w ip, r3, asr #24 8000fe2: d011 beq.n 8001008 <__cmpsf2+0x40> 8000fe4: b001 add sp, #4 8000fe6: ea52 0c53 orrs.w ip, r2, r3, lsr #1 8000fea: bf18 it ne 8000fec: ea90 0f01 teqne r0, r1 8000ff0: bf58 it pl 8000ff2: ebb2 0003 subspl.w r0, r2, r3 8000ff6: bf88 it hi 8000ff8: 17c8 asrhi r0, r1, #31 8000ffa: bf38 it cc 8000ffc: ea6f 70e1 mvncc.w r0, r1, asr #31 8001000: bf18 it ne 8001002: f040 0001 orrne.w r0, r0, #1 8001006: 4770 bx lr 8001008: ea7f 6c22 mvns.w ip, r2, asr #24 800100c: d102 bne.n 8001014 <__cmpsf2+0x4c> 800100e: ea5f 2c40 movs.w ip, r0, lsl #9 8001012: d105 bne.n 8001020 <__cmpsf2+0x58> 8001014: ea7f 6c23 mvns.w ip, r3, asr #24 8001018: d1e4 bne.n 8000fe4 <__cmpsf2+0x1c> 800101a: ea5f 2c41 movs.w ip, r1, lsl #9 800101e: d0e1 beq.n 8000fe4 <__cmpsf2+0x1c> 8001020: f85d 0b04 ldr.w r0, [sp], #4 8001024: 4770 bx lr 8001026: bf00 nop 08001028 <__aeabi_cfrcmple>: 8001028: 4684 mov ip, r0 800102a: 4608 mov r0, r1 800102c: 4661 mov r1, ip 800102e: e7ff b.n 8001030 <__aeabi_cfcmpeq> 08001030 <__aeabi_cfcmpeq>: 8001030: b50f push {r0, r1, r2, r3, lr} 8001032: f7ff ffc9 bl 8000fc8 <__cmpsf2> 8001036: 2800 cmp r0, #0 8001038: bf48 it mi 800103a: f110 0f00 cmnmi.w r0, #0 800103e: bd0f pop {r0, r1, r2, r3, pc} 08001040 <__aeabi_fcmpeq>: 8001040: f84d ed08 str.w lr, [sp, #-8]! 8001044: f7ff fff4 bl 8001030 <__aeabi_cfcmpeq> 8001048: bf0c ite eq 800104a: 2001 moveq r0, #1 800104c: 2000 movne r0, #0 800104e: f85d fb08 ldr.w pc, [sp], #8 8001052: bf00 nop 08001054 <__aeabi_fcmplt>: 8001054: f84d ed08 str.w lr, [sp, #-8]! 8001058: f7ff ffea bl 8001030 <__aeabi_cfcmpeq> 800105c: bf34 ite cc 800105e: 2001 movcc r0, #1 8001060: 2000 movcs r0, #0 8001062: f85d fb08 ldr.w pc, [sp], #8 8001066: bf00 nop 08001068 <__aeabi_fcmple>: 8001068: f84d ed08 str.w lr, [sp, #-8]! 800106c: f7ff ffe0 bl 8001030 <__aeabi_cfcmpeq> 8001070: bf94 ite ls 8001072: 2001 movls r0, #1 8001074: 2000 movhi r0, #0 8001076: f85d fb08 ldr.w pc, [sp], #8 800107a: bf00 nop 0800107c <__aeabi_fcmpge>: 800107c: f84d ed08 str.w lr, [sp, #-8]! 8001080: f7ff ffd2 bl 8001028 <__aeabi_cfrcmple> 8001084: bf94 ite ls 8001086: 2001 movls r0, #1 8001088: 2000 movhi r0, #0 800108a: f85d fb08 ldr.w pc, [sp], #8 800108e: bf00 nop 08001090 <__aeabi_fcmpgt>: 8001090: f84d ed08 str.w lr, [sp, #-8]! 8001094: f7ff ffc8 bl 8001028 <__aeabi_cfrcmple> 8001098: bf34 ite cc 800109a: 2001 movcc r0, #1 800109c: 2000 movcs r0, #0 800109e: f85d fb08 ldr.w pc, [sp], #8 80010a2: bf00 nop 080010a4 <__aeabi_fcmpun>: 80010a4: ea4f 0240 mov.w r2, r0, lsl #1 80010a8: ea4f 0341 mov.w r3, r1, lsl #1 80010ac: ea7f 6c22 mvns.w ip, r2, asr #24 80010b0: d102 bne.n 80010b8 <__aeabi_fcmpun+0x14> 80010b2: ea5f 2c40 movs.w ip, r0, lsl #9 80010b6: d108 bne.n 80010ca <__aeabi_fcmpun+0x26> 80010b8: ea7f 6c23 mvns.w ip, r3, asr #24 80010bc: d102 bne.n 80010c4 <__aeabi_fcmpun+0x20> 80010be: ea5f 2c41 movs.w ip, r1, lsl #9 80010c2: d102 bne.n 80010ca <__aeabi_fcmpun+0x26> 80010c4: f04f 0000 mov.w r0, #0 80010c8: 4770 bx lr 80010ca: f04f 0001 mov.w r0, #1 80010ce: 4770 bx lr 080010d0 <__aeabi_f2iz>: 80010d0: ea4f 0240 mov.w r2, r0, lsl #1 80010d4: f1b2 4ffe cmp.w r2, #2130706432 @ 0x7f000000 80010d8: d30f bcc.n 80010fa <__aeabi_f2iz+0x2a> 80010da: f04f 039e mov.w r3, #158 @ 0x9e 80010de: ebb3 6212 subs.w r2, r3, r2, lsr #24 80010e2: d90d bls.n 8001100 <__aeabi_f2iz+0x30> 80010e4: ea4f 2300 mov.w r3, r0, lsl #8 80010e8: f043 4300 orr.w r3, r3, #2147483648 @ 0x80000000 80010ec: f010 4f00 tst.w r0, #2147483648 @ 0x80000000 80010f0: fa23 f002 lsr.w r0, r3, r2 80010f4: bf18 it ne 80010f6: 4240 negne r0, r0 80010f8: 4770 bx lr 80010fa: f04f 0000 mov.w r0, #0 80010fe: 4770 bx lr 8001100: f112 0f61 cmn.w r2, #97 @ 0x61 8001104: d101 bne.n 800110a <__aeabi_f2iz+0x3a> 8001106: 0242 lsls r2, r0, #9 8001108: d105 bne.n 8001116 <__aeabi_f2iz+0x46> 800110a: f010 4000 ands.w r0, r0, #2147483648 @ 0x80000000 800110e: bf08 it eq 8001110: f06f 4000 mvneq.w r0, #2147483648 @ 0x80000000 8001114: 4770 bx lr 8001116: f04f 0000 mov.w r0, #0 800111a: 4770 bx lr 0800111c : * @param numberOfBytes - Number of bytes to be written in the register * * @return None. ******************************************************************************/ void AD5934_SetRegisterValue(uint8_t registerAddress, uint32_t registerValue, uint8_t numberOfBytes) { 800111c: b580 push {r7, lr} 800111e: b086 sub sp, #24 8001120: af02 add r7, sp, #8 8001122: 4603 mov r3, r0 8001124: 6039 str r1, [r7, #0] 8001126: 71fb strb r3, [r7, #7] 8001128: 4613 mov r3, r2 800112a: 71bb strb r3, [r7, #6] uint8_t writeData[2] = {0, 0}; 800112c: 2300 movs r3, #0 800112e: 81bb strh r3, [r7, #12] HAL_StatusTypeDef status; union Bytes2Long AD5934_reg; AD5934_reg.number = registerValue; 8001130: 683b ldr r3, [r7, #0] 8001132: 60bb str r3, [r7, #8] for (uint8_t i = 0; i < numberOfBytes; i++) 8001134: 2300 movs r3, #0 8001136: 73fb strb r3, [r7, #15] 8001138: e018 b.n 800116c { writeData[0] = registerAddress - i; 800113a: 79fa ldrb r2, [r7, #7] 800113c: 7bfb ldrb r3, [r7, #15] 800113e: 1ad3 subs r3, r2, r3 8001140: b2db uxtb r3, r3 8001142: 733b strb r3, [r7, #12] writeData[1] = AD5934_reg.bytes[i]; 8001144: 7bfb ldrb r3, [r7, #15] 8001146: 3310 adds r3, #16 8001148: 443b add r3, r7 800114a: f813 3c08 ldrb.w r3, [r3, #-8] 800114e: 737b strb r3, [r7, #13] status = HAL_I2C_Master_Transmit(&hi2c2, AD5934_I2C_ADDRESS, writeData, 2, 5); 8001150: f107 020c add.w r2, r7, #12 8001154: 2305 movs r3, #5 8001156: 9300 str r3, [sp, #0] 8001158: 2302 movs r3, #2 800115a: 211a movs r1, #26 800115c: 4807 ldr r0, [pc, #28] @ (800117c ) 800115e: f003 fe17 bl 8004d90 8001162: 4603 mov r3, r0 8001164: 73bb strb r3, [r7, #14] for (uint8_t i = 0; i < numberOfBytes; i++) 8001166: 7bfb ldrb r3, [r7, #15] 8001168: 3301 adds r3, #1 800116a: 73fb strb r3, [r7, #15] 800116c: 7bfa ldrb r2, [r7, #15] 800116e: 79bb ldrb r3, [r7, #6] 8001170: 429a cmp r2, r3 8001172: d3e2 bcc.n 800113a } return; 8001174: bf00 nop } 8001176: 3710 adds r7, #16 8001178: 46bd mov sp, r7 800117a: bd80 pop {r7, pc} 800117c: 20000654 .word 0x20000654 08001180 : * @param numberOfBytes - Number of bytes to be read from the register. * * @return Register value. ******************************************************************************/ uint32_t AD5934_GetRegisterValue(uint8_t registerAddress, uint8_t numberOfBytes) { 8001180: b580 push {r7, lr} 8001182: b088 sub sp, #32 8001184: af02 add r7, sp, #8 8001186: 4603 mov r3, r0 8001188: 460a mov r2, r1 800118a: 71fb strb r3, [r7, #7] 800118c: 4613 mov r3, r2 800118e: 71bb strb r3, [r7, #6] uint8_t readData[1] = {0}; 8001190: 2300 movs r3, #0 8001192: 753b strb r3, [r7, #20] uint8_t writeData[2]; //= {AD5934_ADDR_POINTER, registerAddress}; union Bytes2Long AD5934_reg; HAL_StatusTypeDef status; if(numberOfBytes > 4) 8001194: 79bb ldrb r3, [r7, #6] 8001196: 2b04 cmp r3, #4 8001198: d902 bls.n 80011a0 return 0xFFFFFFFF; //Overflow 800119a: f04f 33ff mov.w r3, #4294967295 800119e: e031 b.n 8001204 AD5934_reg.number = 0; 80011a0: 2300 movs r3, #0 80011a2: 60fb str r3, [r7, #12] for (uint8_t i = 0; i < numberOfBytes; i++) 80011a4: 2300 movs r3, #0 80011a6: 75fb strb r3, [r7, #23] 80011a8: e027 b.n 80011fa { writeData[0] = AD5934_ADDR_POINTER; 80011aa: 23b0 movs r3, #176 @ 0xb0 80011ac: 743b strb r3, [r7, #16] writeData[1] = registerAddress - i; 80011ae: 79fa ldrb r2, [r7, #7] 80011b0: 7dfb ldrb r3, [r7, #23] 80011b2: 1ad3 subs r3, r2, r3 80011b4: b2db uxtb r3, r3 80011b6: 747b strb r3, [r7, #17] status = HAL_I2C_Master_Transmit(&hi2c2, AD5934_I2C_ADDRESS, writeData, 2, 5); 80011b8: f107 0210 add.w r2, r7, #16 80011bc: 2305 movs r3, #5 80011be: 9300 str r3, [sp, #0] 80011c0: 2302 movs r3, #2 80011c2: 211a movs r1, #26 80011c4: 4811 ldr r0, [pc, #68] @ (800120c ) 80011c6: f003 fde3 bl 8004d90 80011ca: 4603 mov r3, r0 80011cc: 75bb strb r3, [r7, #22] //HAL_Delay(1); readData[0] = 0; 80011ce: 2300 movs r3, #0 80011d0: 753b strb r3, [r7, #20] status = HAL_I2C_Master_Receive(&hi2c2, AD5934_I2C_ADDRESS, readData, 1, 5); 80011d2: f107 0214 add.w r2, r7, #20 80011d6: 2305 movs r3, #5 80011d8: 9300 str r3, [sp, #0] 80011da: 2301 movs r3, #1 80011dc: 211a movs r1, #26 80011de: 480b ldr r0, [pc, #44] @ (800120c ) 80011e0: f003 fed4 bl 8004f8c 80011e4: 4603 mov r3, r0 80011e6: 75bb strb r3, [r7, #22] AD5934_reg.bytes[i]=readData[0]; 80011e8: 7dfb ldrb r3, [r7, #23] 80011ea: 7d3a ldrb r2, [r7, #20] 80011ec: 3318 adds r3, #24 80011ee: 443b add r3, r7 80011f0: f803 2c0c strb.w r2, [r3, #-12] for (uint8_t i = 0; i < numberOfBytes; i++) 80011f4: 7dfb ldrb r3, [r7, #23] 80011f6: 3301 adds r3, #1 80011f8: 75fb strb r3, [r7, #23] 80011fa: 7dfa ldrb r2, [r7, #23] 80011fc: 79bb ldrb r3, [r7, #6] 80011fe: 429a cmp r2, r3 8001200: d3d3 bcc.n 80011aa /* AD5934_value.byte[0] = (uint16_t)(AD5934_reg.number & 0x0000FFFF) + 2048; AD5934_value.ints[1] = (uint16_t)((AD5934_reg.number & 0xFFFF0000)>>16) + 2048; */ return AD5934_reg.number; 8001202: 68fb ldr r3, [r7, #12] } 8001204: 4618 mov r0, r3 8001206: 3718 adds r7, #24 8001208: 46bd mov sp, r7 800120a: bd80 pop {r7, pc} 800120c: 20000654 .word 0x20000654 08001210 : * @param None. * * @return None. ******************************************************************************/ void AD5934_Init(void) { 8001210: b580 push {r7, lr} 8001212: af00 add r7, sp, #0 /************ Config Sweep******************/ // Place AD5934 in reset AD5934_SetRegisterValue(AD5934_CONTROL_REG_LB, (AD5934_CONTROL_FUNCTION(AD5934_RESET)), 1); 8001214: 2201 movs r2, #1 8001216: f44f 7180 mov.w r1, #256 @ 0x100 800121a: 2081 movs r0, #129 @ 0x81 800121c: f7ff ff7e bl 800111c // Configure starting frequency AD5934_SetRegisterValue(AD5934_START_FREQ_REG_LB, AD5934_FREQ_1K590HZ, 3); 8001220: 2203 movs r2, #3 8001222: 490a ldr r1, [pc, #40] @ (800124c ) 8001224: 2084 movs r0, #132 @ 0x84 8001226: f7ff ff79 bl 800111c // Configure frequency increment step AD5934_SetRegisterValue(AD5934_FREQ_INCR_REG_LB, AD5934_FREQ_0HZ, 3); 800122a: 2203 movs r2, #3 800122c: 2100 movs r1, #0 800122e: 2087 movs r0, #135 @ 0x87 8001230: f7ff ff74 bl 800111c // Configure number of steps AD5934_SetRegisterValue(AD5934_NR_INCR_REG_LB, AD5934_STEP_FREQ_0, 2); 8001234: 2202 movs r2, #2 8001236: 2100 movs r1, #0 8001238: 2089 movs r0, #137 @ 0x89 800123a: f7ff ff6f bl 800111c // Set 128 Settling Time AD5934_SetRegisterValue(AD5934_NR_SETTLE_REG_LB, AD5934_SETTLING_TIME_0S01, 2); 800123e: 2202 movs r2, #2 8001240: 210c movs r1, #12 8001242: 208b movs r0, #139 @ 0x8b 8001244: f7ff ff6a bl 800111c } 8001248: bf00 nop 800124a: bd80 pop {r7, pc} 800124c: 003419e3 .word 0x003419e3 08001250 : * @param None. * * @return None. ******************************************************************************/ void AD5934_RestartSweep(void) { 8001250: b580 push {r7, lr} 8001252: af00 add r7, sp, #0 // Place AD5934 in standby AD5934_SetRegisterValue(AD5934_CONTROL_REG_HB, (AD5934_CONTROL_FUNCTION(AD5934_STANDBY) | AD5934_CONTROL_RANGE(AD5934_400mVpp_RANGE) | AD5934_PGA_GAIN(AD5934_PGA_GAIN_X5)), 1); 8001254: 2201 movs r2, #1 8001256: 21b4 movs r1, #180 @ 0xb4 8001258: 2080 movs r0, #128 @ 0x80 800125a: f7ff ff5f bl 800111c // Initialize starting frequency, Start frequency sweep, standby AD5934_SetRegisterValue(AD5934_CONTROL_REG_HB, ((AD5934_CONTROL_FUNCTION(AD5934_INIT_START_FREQ)) | AD5934_CONTROL_RANGE(AD5934_400mVpp_RANGE) | AD5934_PGA_GAIN(AD5934_PGA_GAIN_X5)), 1); 800125e: 2201 movs r2, #1 8001260: 2114 movs r1, #20 8001262: 2080 movs r0, #128 @ 0x80 8001264: f7ff ff5a bl 800111c // Configure Range Output, PGA gain andPlace AD5934 in sweep AD5934_SetRegisterValue(AD5934_CONTROL_REG_HB, (AD5934_CONTROL_FUNCTION(AD5934_START_FREQ_SWEEP) | AD5934_CONTROL_RANGE(AD5934_400mVpp_RANGE) | AD5934_PGA_GAIN(AD5934_PGA_GAIN_X5)), 1); 8001268: 2201 movs r2, #1 800126a: 2124 movs r1, #36 @ 0x24 800126c: 2080 movs r0, #128 @ 0x80 800126e: f7ff ff55 bl 800111c // Wait for data to be valid AD5934_Wait_For_Data_Valid(); 8001272: f000 faef bl 8001854 // Power Down AD5934_SetRegisterValue(AD5934_CONTROL_REG_HB, (AD5934_CONTROL_FUNCTION(AD5934_POWER_DOWN) | AD5934_CONTROL_RANGE(AD5934_400mVpp_RANGE) | AD5934_PGA_GAIN(AD5934_PGA_GAIN_X5)), 1); 8001276: 2201 movs r2, #1 8001278: 21a4 movs r1, #164 @ 0xa4 800127a: 2080 movs r0, #128 @ 0x80 800127c: f7ff ff4e bl 800111c } 8001280: bf00 nop 8001282: bd80 pop {r7, pc} 08001284 : * @param: channel = AD5934_CH_REF_100R, AD5934_CH_REF_1K, AD5934_CH_REF_10K, AD5934_CH_PT100, AD5934_CH_PT1000 or AD5934_CH_EC * * @return Real(int16) and Imaginary(int16) numbers into a int32. ******************************************************************************/ uint32_t AD5934_Sweep(void) { 8001284: b580 push {r7, lr} 8001286: b082 sub sp, #8 8001288: af00 add r7, sp, #0 int16_t real_value, imag_value; uint32_t value=0; 800128a: 2300 movs r3, #0 800128c: 607b str r3, [r7, #4] // Restart Sweeping AD5934_RestartSweep(); 800128e: f7ff ffdf bl 8001250 real_value = ((AD5934_GetRegisterValue(AD5934_REAL_REG_LB,2))); 8001292: 2102 movs r1, #2 8001294: 2095 movs r0, #149 @ 0x95 8001296: f7ff ff73 bl 8001180 800129a: 4603 mov r3, r0 800129c: 807b strh r3, [r7, #2] imag_value = ((AD5934_GetRegisterValue(AD5934_IMG_REG_LB,2))); 800129e: 2102 movs r1, #2 80012a0: 2097 movs r0, #151 @ 0x97 80012a2: f7ff ff6d bl 8001180 80012a6: 4603 mov r3, r0 80012a8: 803b strh r3, [r7, #0] // Get Real (16-bit) and Imaginary (16-bit) values into an unsigned 32-bit value = ((((uint16_t)(imag_value))<<16) | ((uint16_t)(real_value))); 80012aa: 883b ldrh r3, [r7, #0] 80012ac: 041b lsls r3, r3, #16 80012ae: 887a ldrh r2, [r7, #2] 80012b0: 4313 orrs r3, r2 80012b2: 607b str r3, [r7, #4] return value; 80012b4: 687b ldr r3, [r7, #4] } 80012b6: 4618 mov r0, r3 80012b8: 3708 adds r7, #8 80012ba: 46bd mov sp, r7 80012bc: bd80 pop {r7, pc} ... 080012c0 : * @param channel - AD5934_CH_PT100 or AD5934_CH_PT1000. * * @return impedance. ******************************************************************************/ float AD5934_GetTemperature(void) { 80012c0: b590 push {r4, r7, lr} 80012c2: b093 sub sp, #76 @ 0x4c 80012c4: af00 add r7, sp, #0 uint8_t i, ch_dut, ch_ref; uint32_t sample; int32_t ref_sum[2], dut_sum[2]; float real_ref,imag_ref, real_dut, imag_dut, ratio, discriminant, mag_dut, mag_ref, ratio_mag, impedance_dut, temperature_sum, gain_factor; if(HAL_GPIO_ReadPin(GPIOA, GPIO_PIN_7) == GPIO_PIN_SET) // OFF = PT1000, ON = PT100, PA7 has internal pull-up and switch connects to GND 80012c6: 2180 movs r1, #128 @ 0x80 80012c8: 48ab ldr r0, [pc, #684] @ (8001578 ) 80012ca: f003 fbd5 bl 8004a78 80012ce: 4603 mov r3, r0 80012d0: 2b01 cmp r3, #1 80012d2: d108 bne.n 80012e6 { ch_ref = AD5934_CH_REF100R_LOW_GAIN; 80012d4: 2309 movs r3, #9 80012d6: f887 3045 strb.w r3, [r7, #69] @ 0x45 ch_dut = AD5934_CH_RTD_LOW_GAIN; //PT100 80012da: 2341 movs r3, #65 @ 0x41 80012dc: f887 3046 strb.w r3, [r7, #70] @ 0x46 gain_factor = 100.0f; 80012e0: 4ba6 ldr r3, [pc, #664] @ (800157c ) 80012e2: 63bb str r3, [r7, #56] @ 0x38 80012e4: e007 b.n 80012f6 } else { ch_ref = AD5934_CH_REF1K_MID_GAIN; 80012e6: 2312 movs r3, #18 80012e8: f887 3045 strb.w r3, [r7, #69] @ 0x45 ch_dut = AD5934_CH_RTD_MID_GAIN; //PT1000 80012ec: 2342 movs r3, #66 @ 0x42 80012ee: f887 3046 strb.w r3, [r7, #70] @ 0x46 gain_factor = 1000.0f; 80012f2: 4ba3 ldr r3, [pc, #652] @ (8001580 ) 80012f4: 63bb str r3, [r7, #56] @ 0x38 } ADG715_Update(ch_ref); // Set the Reference Resistor on board in the Analog Mux 80012f6: f897 3045 ldrb.w r3, [r7, #69] @ 0x45 80012fa: 4618 mov r0, r3 80012fc: f000 fb4a bl 8001994 HAL_Delay(2); //Wait a little 8001300: 2002 movs r0, #2 8001302: f001 fff1 bl 80032e8 sample = AD5934_Sweep(); // Get Reference Resistor Values from ADC 8001306: f7ff ffbd bl 8001284 800130a: 6378 str r0, [r7, #52] @ 0x34 // Move values in the vectors for (i = (AD5934_TEMP_AVERAGES-1); i > 0; i--) 800130c: 2307 movs r3, #7 800130e: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001312: e01e b.n 8001352 { temperature_ref_samples[i][0] = temperature_ref_samples[i-1][0]; //real 8001314: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001318: 1e5a subs r2, r3, #1 800131a: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800131e: 4999 ldr r1, [pc, #612] @ (8001584 ) 8001320: f931 1022 ldrsh.w r1, [r1, r2, lsl #2] 8001324: 4a97 ldr r2, [pc, #604] @ (8001584 ) 8001326: f822 1023 strh.w r1, [r2, r3, lsl #2] temperature_ref_samples[i][1] = temperature_ref_samples[i-1][1]; //imag 800132a: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800132e: 3b01 subs r3, #1 8001330: f897 2047 ldrb.w r2, [r7, #71] @ 0x47 8001334: 4993 ldr r1, [pc, #588] @ (8001584 ) 8001336: 009b lsls r3, r3, #2 8001338: 440b add r3, r1 800133a: f9b3 0002 ldrsh.w r0, [r3, #2] 800133e: 4991 ldr r1, [pc, #580] @ (8001584 ) 8001340: 0093 lsls r3, r2, #2 8001342: 440b add r3, r1 8001344: 4602 mov r2, r0 8001346: 805a strh r2, [r3, #2] for (i = (AD5934_TEMP_AVERAGES-1); i > 0; i--) 8001348: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800134c: 3b01 subs r3, #1 800134e: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001352: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001356: 2b00 cmp r3, #0 8001358: d1dc bne.n 8001314 } // Read real and imaginary data temperature_ref_samples[0][0] = (int16_t)(sample & 0x0000FFFF); //real 800135a: 6b7b ldr r3, [r7, #52] @ 0x34 800135c: b21a sxth r2, r3 800135e: 4b89 ldr r3, [pc, #548] @ (8001584 ) 8001360: 801a strh r2, [r3, #0] //temperature_ref_samples[0][1] = 0xFFFF-(((sample & 0xFFFF0000)>>16)); //imag temperature_ref_samples[0][1] = (int16_t)((sample & 0xFFFF0000)>>16); //imag 8001362: 6b7b ldr r3, [r7, #52] @ 0x34 8001364: 0c1b lsrs r3, r3, #16 8001366: b21a sxth r2, r3 8001368: 4b86 ldr r3, [pc, #536] @ (8001584 ) 800136a: 805a strh r2, [r3, #2] // Sum values in the vectors for (i = 0, ref_sum[0]=0, ref_sum[1]=0; i < AD5934_TEMP_AVERAGES; i++) 800136c: 2300 movs r3, #0 800136e: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001372: 2300 movs r3, #0 8001374: 60bb str r3, [r7, #8] 8001376: 2300 movs r3, #0 8001378: 60fb str r3, [r7, #12] 800137a: e016 b.n 80013aa { ref_sum[0] += (int32_t)temperature_ref_samples[i][0]; //real 800137c: 68bb ldr r3, [r7, #8] 800137e: f897 2047 ldrb.w r2, [r7, #71] @ 0x47 8001382: 4980 ldr r1, [pc, #512] @ (8001584 ) 8001384: f931 2022 ldrsh.w r2, [r1, r2, lsl #2] 8001388: 4413 add r3, r2 800138a: 60bb str r3, [r7, #8] ref_sum[1] += (int32_t)temperature_ref_samples[i][1]; //imag 800138c: 68fa ldr r2, [r7, #12] 800138e: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001392: 497c ldr r1, [pc, #496] @ (8001584 ) 8001394: 009b lsls r3, r3, #2 8001396: 440b add r3, r1 8001398: f9b3 3002 ldrsh.w r3, [r3, #2] 800139c: 4413 add r3, r2 800139e: 60fb str r3, [r7, #12] for (i = 0, ref_sum[0]=0, ref_sum[1]=0; i < AD5934_TEMP_AVERAGES; i++) 80013a0: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 80013a4: 3301 adds r3, #1 80013a6: f887 3047 strb.w r3, [r7, #71] @ 0x47 80013aa: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 80013ae: 2b07 cmp r3, #7 80013b0: d9e4 bls.n 800137c } real_ref = ((float)ref_sum[0])/((float)AD5934_TEMP_AVERAGES); 80013b2: 68bb ldr r3, [r7, #8] 80013b4: 4618 mov r0, r3 80013b6: f7ff fc5b bl 8000c70 <__aeabi_i2f> 80013ba: 4603 mov r3, r0 80013bc: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 80013c0: 4618 mov r0, r3 80013c2: f7ff fd5d bl 8000e80 <__aeabi_fdiv> 80013c6: 4603 mov r3, r0 80013c8: 633b str r3, [r7, #48] @ 0x30 imag_ref = ((float)ref_sum[1])/((float)AD5934_TEMP_AVERAGES); 80013ca: 68fb ldr r3, [r7, #12] 80013cc: 4618 mov r0, r3 80013ce: f7ff fc4f bl 8000c70 <__aeabi_i2f> 80013d2: 4603 mov r3, r0 80013d4: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 80013d8: 4618 mov r0, r3 80013da: f7ff fd51 bl 8000e80 <__aeabi_fdiv> 80013de: 4603 mov r3, r0 80013e0: 62fb str r3, [r7, #44] @ 0x2c // Calculate gain factor impedance mag_ref = sqrtf((real_ref * real_ref) + (imag_ref * imag_ref)); 80013e2: 6b39 ldr r1, [r7, #48] @ 0x30 80013e4: 6b38 ldr r0, [r7, #48] @ 0x30 80013e6: f7ff fc97 bl 8000d18 <__aeabi_fmul> 80013ea: 4603 mov r3, r0 80013ec: 461c mov r4, r3 80013ee: 6af9 ldr r1, [r7, #44] @ 0x2c 80013f0: 6af8 ldr r0, [r7, #44] @ 0x2c 80013f2: f7ff fc91 bl 8000d18 <__aeabi_fmul> 80013f6: 4603 mov r3, r0 80013f8: 4619 mov r1, r3 80013fa: 4620 mov r0, r4 80013fc: f7ff fb84 bl 8000b08 <__addsf3> 8001400: 4603 mov r3, r0 8001402: 4618 mov r0, r3 8001404: f006 fa4c bl 80078a0 8001408: 62b8 str r0, [r7, #40] @ 0x28 ADG715_Update(ch_dut); 800140a: f897 3046 ldrb.w r3, [r7, #70] @ 0x46 800140e: 4618 mov r0, r3 8001410: f000 fac0 bl 8001994 HAL_Delay(2); 8001414: 2002 movs r0, #2 8001416: f001 ff67 bl 80032e8 sample = AD5934_Sweep(); // Get PT100/PT1000 Values from ADC 800141a: f7ff ff33 bl 8001284 800141e: 6378 str r0, [r7, #52] @ 0x34 for (i = (AD5934_TEMP_AVERAGES-1); i > 0; i--) 8001420: 2307 movs r3, #7 8001422: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001426: e01e b.n 8001466 { temperature_dut_samples[i][0] = temperature_dut_samples[i-1][0]; //real 8001428: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800142c: 1e5a subs r2, r3, #1 800142e: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001432: 4955 ldr r1, [pc, #340] @ (8001588 ) 8001434: f931 1022 ldrsh.w r1, [r1, r2, lsl #2] 8001438: 4a53 ldr r2, [pc, #332] @ (8001588 ) 800143a: f822 1023 strh.w r1, [r2, r3, lsl #2] temperature_dut_samples[i][1] = temperature_dut_samples[i-1][1]; //imag 800143e: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001442: 3b01 subs r3, #1 8001444: f897 2047 ldrb.w r2, [r7, #71] @ 0x47 8001448: 494f ldr r1, [pc, #316] @ (8001588 ) 800144a: 009b lsls r3, r3, #2 800144c: 440b add r3, r1 800144e: f9b3 0002 ldrsh.w r0, [r3, #2] 8001452: 494d ldr r1, [pc, #308] @ (8001588 ) 8001454: 0093 lsls r3, r2, #2 8001456: 440b add r3, r1 8001458: 4602 mov r2, r0 800145a: 805a strh r2, [r3, #2] for (i = (AD5934_TEMP_AVERAGES-1); i > 0; i--) 800145c: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001460: 3b01 subs r3, #1 8001462: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001466: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800146a: 2b00 cmp r3, #0 800146c: d1dc bne.n 8001428 } // Read real and imaginary data temperature_dut_samples[0][0] = (int16_t)(sample & 0x0000FFFF); //real 800146e: 6b7b ldr r3, [r7, #52] @ 0x34 8001470: b21a sxth r2, r3 8001472: 4b45 ldr r3, [pc, #276] @ (8001588 ) 8001474: 801a strh r2, [r3, #0] //temperature_dut_samples[0][1] = 0xFFFF-(((sample & 0xFFFF0000)>>16)); //imag temperature_dut_samples[0][1] = (int16_t)((sample & 0xFFFF0000)>>16); //imag 8001476: 6b7b ldr r3, [r7, #52] @ 0x34 8001478: 0c1b lsrs r3, r3, #16 800147a: b21a sxth r2, r3 800147c: 4b42 ldr r3, [pc, #264] @ (8001588 ) 800147e: 805a strh r2, [r3, #2] for (i = 0, dut_sum[0]=0, dut_sum[1]=0; i < AD5934_TEMP_AVERAGES; i++) 8001480: 2300 movs r3, #0 8001482: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001486: 2300 movs r3, #0 8001488: 603b str r3, [r7, #0] 800148a: 2300 movs r3, #0 800148c: 607b str r3, [r7, #4] 800148e: e016 b.n 80014be { dut_sum[0] += (int32_t)temperature_dut_samples[i][0]; //real 8001490: 683b ldr r3, [r7, #0] 8001492: f897 2047 ldrb.w r2, [r7, #71] @ 0x47 8001496: 493c ldr r1, [pc, #240] @ (8001588 ) 8001498: f931 2022 ldrsh.w r2, [r1, r2, lsl #2] 800149c: 4413 add r3, r2 800149e: 603b str r3, [r7, #0] dut_sum[1] += (int32_t)temperature_dut_samples[i][1]; //imag 80014a0: 687a ldr r2, [r7, #4] 80014a2: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 80014a6: 4938 ldr r1, [pc, #224] @ (8001588 ) 80014a8: 009b lsls r3, r3, #2 80014aa: 440b add r3, r1 80014ac: f9b3 3002 ldrsh.w r3, [r3, #2] 80014b0: 4413 add r3, r2 80014b2: 607b str r3, [r7, #4] for (i = 0, dut_sum[0]=0, dut_sum[1]=0; i < AD5934_TEMP_AVERAGES; i++) 80014b4: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 80014b8: 3301 adds r3, #1 80014ba: f887 3047 strb.w r3, [r7, #71] @ 0x47 80014be: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 80014c2: 2b07 cmp r3, #7 80014c4: d9e4 bls.n 8001490 } real_dut = ((float)dut_sum[0])/((float)AD5934_TEMP_AVERAGES); 80014c6: 683b ldr r3, [r7, #0] 80014c8: 4618 mov r0, r3 80014ca: f7ff fbd1 bl 8000c70 <__aeabi_i2f> 80014ce: 4603 mov r3, r0 80014d0: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 80014d4: 4618 mov r0, r3 80014d6: f7ff fcd3 bl 8000e80 <__aeabi_fdiv> 80014da: 4603 mov r3, r0 80014dc: 627b str r3, [r7, #36] @ 0x24 imag_dut = ((float)dut_sum[1])/((float)AD5934_TEMP_AVERAGES); 80014de: 687b ldr r3, [r7, #4] 80014e0: 4618 mov r0, r3 80014e2: f7ff fbc5 bl 8000c70 <__aeabi_i2f> 80014e6: 4603 mov r3, r0 80014e8: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 80014ec: 4618 mov r0, r3 80014ee: f7ff fcc7 bl 8000e80 <__aeabi_fdiv> 80014f2: 4603 mov r3, r0 80014f4: 623b str r3, [r7, #32] // Calculate magnitude mag_dut = sqrtf((real_dut * real_dut) + (imag_dut * imag_dut)); 80014f6: 6a79 ldr r1, [r7, #36] @ 0x24 80014f8: 6a78 ldr r0, [r7, #36] @ 0x24 80014fa: f7ff fc0d bl 8000d18 <__aeabi_fmul> 80014fe: 4603 mov r3, r0 8001500: 461c mov r4, r3 8001502: 6a39 ldr r1, [r7, #32] 8001504: 6a38 ldr r0, [r7, #32] 8001506: f7ff fc07 bl 8000d18 <__aeabi_fmul> 800150a: 4603 mov r3, r0 800150c: 4619 mov r1, r3 800150e: 4620 mov r0, r4 8001510: f7ff fafa bl 8000b08 <__addsf3> 8001514: 4603 mov r3, r0 8001516: 4618 mov r0, r3 8001518: f006 f9c2 bl 80078a0 800151c: 61f8 str r0, [r7, #28] for (i = (AD5934_TEMP_AVERAGES-1); i > 0; i--) 800151e: 2307 movs r3, #7 8001520: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001524: e00f b.n 8001546 temperature_display[i] = temperature_display[i-1]; 8001526: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800152a: 1e5a subs r2, r3, #1 800152c: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001530: 4916 ldr r1, [pc, #88] @ (800158c ) 8001532: f851 2022 ldr.w r2, [r1, r2, lsl #2] 8001536: 4915 ldr r1, [pc, #84] @ (800158c ) 8001538: f841 2023 str.w r2, [r1, r3, lsl #2] for (i = (AD5934_TEMP_AVERAGES-1); i > 0; i--) 800153c: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001540: 3b01 subs r3, #1 8001542: f887 3047 strb.w r3, [r7, #71] @ 0x47 8001546: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800154a: 2b00 cmp r3, #0 800154c: d1eb bne.n 8001526 ratio_mag = mag_ref / mag_dut; 800154e: 69f9 ldr r1, [r7, #28] 8001550: 6ab8 ldr r0, [r7, #40] @ 0x28 8001552: f7ff fc95 bl 8000e80 <__aeabi_fdiv> 8001556: 4603 mov r3, r0 8001558: 61bb str r3, [r7, #24] if(ch_ref==AD5934_CH_REF100R_LOW_GAIN) // only for PT100 800155a: f897 3045 ldrb.w r3, [r7, #69] @ 0x45 800155e: 2b09 cmp r3, #9 8001560: d116 bne.n 8001590 impedance_dut = AD5934_Linear_Correction(gain_factor * ratio_mag); 8001562: 69b9 ldr r1, [r7, #24] 8001564: 6bb8 ldr r0, [r7, #56] @ 0x38 8001566: f7ff fbd7 bl 8000d18 <__aeabi_fmul> 800156a: 4603 mov r3, r0 800156c: 4618 mov r0, r3 800156e: f000 f9c5 bl 80018fc 8001572: 6438 str r0, [r7, #64] @ 0x40 8001574: e012 b.n 800159c 8001576: bf00 nop 8001578: 40010800 .word 0x40010800 800157c: 42c80000 .word 0x42c80000 8001580: 447a0000 .word 0x447a0000 8001584: 200000bc .word 0x200000bc 8001588: 2000009c .word 0x2000009c 800158c: 200000dc .word 0x200000dc else impedance_dut = gain_factor * ratio_mag; 8001590: 69b9 ldr r1, [r7, #24] 8001592: 6bb8 ldr r0, [r7, #56] @ 0x38 8001594: f7ff fbc0 bl 8000d18 <__aeabi_fmul> 8001598: 4603 mov r3, r0 800159a: 643b str r3, [r7, #64] @ 0x40 // Calculate impedance ratio with the Reference Resistor ratio = impedance_dut / gain_factor; 800159c: 6bb9 ldr r1, [r7, #56] @ 0x38 800159e: 6c38 ldr r0, [r7, #64] @ 0x40 80015a0: f7ff fc6e bl 8000e80 <__aeabi_fdiv> 80015a4: 4603 mov r3, r0 80015a6: 617b str r3, [r7, #20] // Calculate impedance discriminant with the ratio discriminant = (AD5934_RTD_A*AD5934_RTD_A)-(4.0f * AD5934_RTD_B * (1.0f - ratio)); 80015a8: 6979 ldr r1, [r7, #20] 80015aa: f04f 507e mov.w r0, #1065353216 @ 0x3f800000 80015ae: f7ff faa9 bl 8000b04 <__aeabi_fsub> 80015b2: 4603 mov r3, r0 80015b4: 493a ldr r1, [pc, #232] @ (80016a0 ) 80015b6: 4618 mov r0, r3 80015b8: f7ff fbae bl 8000d18 <__aeabi_fmul> 80015bc: 4603 mov r3, r0 80015be: 4939 ldr r1, [pc, #228] @ (80016a4 ) 80015c0: 4618 mov r0, r3 80015c2: f7ff faa1 bl 8000b08 <__addsf3> 80015c6: 4603 mov r3, r0 80015c8: 613b str r3, [r7, #16] // Calculate new temperature with the discriminant temperature_display[0] = (-AD5934_RTD_A + sqrtf(discriminant))/(2.0f * AD5934_RTD_B); 80015ca: 6938 ldr r0, [r7, #16] 80015cc: f006 f968 bl 80078a0 80015d0: 4603 mov r3, r0 80015d2: 4935 ldr r1, [pc, #212] @ (80016a8 ) 80015d4: 4618 mov r0, r3 80015d6: f7ff fa95 bl 8000b04 <__aeabi_fsub> 80015da: 4603 mov r3, r0 80015dc: 4933 ldr r1, [pc, #204] @ (80016ac ) 80015de: 4618 mov r0, r3 80015e0: f7ff fc4e bl 8000e80 <__aeabi_fdiv> 80015e4: 4603 mov r3, r0 80015e6: 461a mov r2, r3 80015e8: 4b31 ldr r3, [pc, #196] @ (80016b0 ) 80015ea: 601a str r2, [r3, #0] // Sum of all temperatures for (i = 0, temperature_sum=0.0f; i < AD5934_TEMP_AVERAGES; i++) 80015ec: 2300 movs r3, #0 80015ee: f887 3047 strb.w r3, [r7, #71] @ 0x47 80015f2: f04f 0300 mov.w r3, #0 80015f6: 63fb str r3, [r7, #60] @ 0x3c 80015f8: e00f b.n 800161a temperature_sum += temperature_display[i]; 80015fa: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 80015fe: 4a2c ldr r2, [pc, #176] @ (80016b0 ) 8001600: f852 3023 ldr.w r3, [r2, r3, lsl #2] 8001604: 4619 mov r1, r3 8001606: 6bf8 ldr r0, [r7, #60] @ 0x3c 8001608: f7ff fa7e bl 8000b08 <__addsf3> 800160c: 4603 mov r3, r0 800160e: 63fb str r3, [r7, #60] @ 0x3c for (i = 0, temperature_sum=0.0f; i < AD5934_TEMP_AVERAGES; i++) 8001610: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 8001614: 3301 adds r3, #1 8001616: f887 3047 strb.w r3, [r7, #71] @ 0x47 800161a: f897 3047 ldrb.w r3, [r7, #71] @ 0x47 800161e: 2b07 cmp r3, #7 8001620: d9eb bls.n 80015fa // Is the temperature stable? if(temperature_display[0]>0.0f && (abs(temperature_display[0]-temperature_display[AD5934_TEMP_AVERAGES-1])/temperature_display[0])<0.1f) 8001622: 4b23 ldr r3, [pc, #140] @ (80016b0 ) 8001624: 681b ldr r3, [r3, #0] 8001626: f04f 0100 mov.w r1, #0 800162a: 4618 mov r0, r3 800162c: f7ff fd30 bl 8001090 <__aeabi_fcmpgt> 8001630: 4603 mov r3, r0 8001632: 2b00 cmp r3, #0 8001634: d02d beq.n 8001692 8001636: 4b1e ldr r3, [pc, #120] @ (80016b0 ) 8001638: 681b ldr r3, [r3, #0] 800163a: 4a1d ldr r2, [pc, #116] @ (80016b0 ) 800163c: 69d2 ldr r2, [r2, #28] 800163e: 4611 mov r1, r2 8001640: 4618 mov r0, r3 8001642: f7ff fa5f bl 8000b04 <__aeabi_fsub> 8001646: 4603 mov r3, r0 8001648: 4618 mov r0, r3 800164a: f7ff fd41 bl 80010d0 <__aeabi_f2iz> 800164e: 4603 mov r3, r0 8001650: 2b00 cmp r3, #0 8001652: bfb8 it lt 8001654: 425b neglt r3, r3 8001656: 4618 mov r0, r3 8001658: f7ff fb0a bl 8000c70 <__aeabi_i2f> 800165c: 4602 mov r2, r0 800165e: 4b14 ldr r3, [pc, #80] @ (80016b0 ) 8001660: 681b ldr r3, [r3, #0] 8001662: 4619 mov r1, r3 8001664: 4610 mov r0, r2 8001666: f7ff fc0b bl 8000e80 <__aeabi_fdiv> 800166a: 4603 mov r3, r0 800166c: 4911 ldr r1, [pc, #68] @ (80016b4 ) 800166e: 4618 mov r0, r3 8001670: f7ff fcf0 bl 8001054 <__aeabi_fcmplt> 8001674: 4603 mov r3, r0 8001676: 2b00 cmp r3, #0 8001678: d00b beq.n 8001692 return(AD5934_Round_Float_Precision(temperature_sum/((float)AD5934_TEMP_AVERAGES),1)); // Sum / number of averages 800167a: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 800167e: 6bf8 ldr r0, [r7, #60] @ 0x3c 8001680: f7ff fbfe bl 8000e80 <__aeabi_fdiv> 8001684: 4603 mov r3, r0 8001686: 2101 movs r1, #1 8001688: 4618 mov r0, r3 800168a: f000 f909 bl 80018a0 800168e: 4603 mov r3, r0 8001690: e001 b.n 8001696 else return 0.0f; //instable values return always 0 8001692: f04f 0300 mov.w r3, #0 } 8001696: 4618 mov r0, r3 8001698: 374c adds r7, #76 @ 0x4c 800169a: 46bd mov sp, r7 800169c: bd90 pop {r4, r7, pc} 800169e: bf00 nop 80016a0: 361b057f .word 0x361b057f 80016a4: 37802266 .word 0x37802266 80016a8: 3b801132 .word 0x3b801132 80016ac: b59b057f .word 0xb59b057f 80016b0: 200000dc .word 0x200000dc 80016b4: 3dcccccd .word 0x3dcccccd 080016b8 : * @param none. * * @return impedance. ******************************************************************************/ float AD5934_GetImpedance(void) { 80016b8: b590 push {r4, r7, lr} 80016ba: b089 sub sp, #36 @ 0x24 80016bc: af00 add r7, sp, #0 float real_number, imag_number, mag_dut, slope; /* STEP 2: Set the Amplification related to the maximum set value */ if(HAL_GPIO_ReadPin(GPIOA, GPIO_PIN_6) == GPIO_PIN_SET) // PA6 has internal pull-up and the Switch connects to GND 80016be: 2140 movs r1, #64 @ 0x40 80016c0: 485e ldr r0, [pc, #376] @ (800183c ) 80016c2: f003 f9d9 bl 8004a78 80016c6: 4603 mov r3, r0 80016c8: 2b01 cmp r3, #1 80016ca: d102 bne.n 80016d2 ec_gain = AD5934_CH_EC_HIGH_GAIN; // Switch OFF = 5 mS/cm, HIGH GAIN, 80016cc: 2384 movs r3, #132 @ 0x84 80016ce: 77bb strb r3, [r7, #30] 80016d0: e001 b.n 80016d6 else ec_gain = AD5934_CH_EC_MID_GAIN; // Switch ON = 10 mS/cm, MID GAIN, 80016d2: 2382 movs r3, #130 @ 0x82 80016d4: 77bb strb r3, [r7, #30] ADG715_Update(ec_gain); 80016d6: 7fbb ldrb r3, [r7, #30] 80016d8: 4618 mov r0, r3 80016da: f000 f95b bl 8001994 HAL_Delay(2); 80016de: 2002 movs r0, #2 80016e0: f001 fe02 bl 80032e8 sample_dut = AD5934_Sweep(); // Get PT100/PT1000 Values from ADC 80016e4: f7ff fdce bl 8001284 80016e8: 61b8 str r0, [r7, #24] for (i = (AD5934_EC_AVERAGES-1); i > 0; i--) 80016ea: 2307 movs r3, #7 80016ec: 77fb strb r3, [r7, #31] 80016ee: e018 b.n 8001722 { ec_dut_samples[i][0] = ec_dut_samples[i-1][0]; //real 80016f0: 7ffb ldrb r3, [r7, #31] 80016f2: 1e5a subs r2, r3, #1 80016f4: 7ffb ldrb r3, [r7, #31] 80016f6: 4952 ldr r1, [pc, #328] @ (8001840 ) 80016f8: f931 1022 ldrsh.w r1, [r1, r2, lsl #2] 80016fc: 4a50 ldr r2, [pc, #320] @ (8001840 ) 80016fe: f822 1023 strh.w r1, [r2, r3, lsl #2] ec_dut_samples[i][1] = ec_dut_samples[i-1][1]; //imag 8001702: 7ffb ldrb r3, [r7, #31] 8001704: 3b01 subs r3, #1 8001706: 7ffa ldrb r2, [r7, #31] 8001708: 494d ldr r1, [pc, #308] @ (8001840 ) 800170a: 009b lsls r3, r3, #2 800170c: 440b add r3, r1 800170e: f9b3 0002 ldrsh.w r0, [r3, #2] 8001712: 494b ldr r1, [pc, #300] @ (8001840 ) 8001714: 0093 lsls r3, r2, #2 8001716: 440b add r3, r1 8001718: 4602 mov r2, r0 800171a: 805a strh r2, [r3, #2] for (i = (AD5934_EC_AVERAGES-1); i > 0; i--) 800171c: 7ffb ldrb r3, [r7, #31] 800171e: 3b01 subs r3, #1 8001720: 77fb strb r3, [r7, #31] 8001722: 7ffb ldrb r3, [r7, #31] 8001724: 2b00 cmp r3, #0 8001726: d1e3 bne.n 80016f0 } // Read real and imaginary data ec_dut_samples[0][0] = (int16_t)(sample_dut & 0x0000FFFF); //real 8001728: 69bb ldr r3, [r7, #24] 800172a: b21a sxth r2, r3 800172c: 4b44 ldr r3, [pc, #272] @ (8001840 ) 800172e: 801a strh r2, [r3, #0] ec_dut_samples[0][1] = (int16_t)((sample_dut & 0xFFFF0000)>>16); //imag 8001730: 69bb ldr r3, [r7, #24] 8001732: 0c1b lsrs r3, r3, #16 8001734: b21a sxth r2, r3 8001736: 4b42 ldr r3, [pc, #264] @ (8001840 ) 8001738: 805a strh r2, [r3, #2] for (i = 0, dut_sum[0]=0, dut_sum[1]=0; i < AD5934_EC_AVERAGES; i++) 800173a: 2300 movs r3, #0 800173c: 77fb strb r3, [r7, #31] 800173e: 2300 movs r3, #0 8001740: 603b str r3, [r7, #0] 8001742: 2300 movs r3, #0 8001744: 607b str r3, [r7, #4] 8001746: e012 b.n 800176e { dut_sum[0] += (int32_t)ec_dut_samples[i][0]; //real 8001748: 683b ldr r3, [r7, #0] 800174a: 7ffa ldrb r2, [r7, #31] 800174c: 493c ldr r1, [pc, #240] @ (8001840 ) 800174e: f931 2022 ldrsh.w r2, [r1, r2, lsl #2] 8001752: 4413 add r3, r2 8001754: 603b str r3, [r7, #0] dut_sum[1] += (int32_t)ec_dut_samples[i][1]; //imag 8001756: 687a ldr r2, [r7, #4] 8001758: 7ffb ldrb r3, [r7, #31] 800175a: 4939 ldr r1, [pc, #228] @ (8001840 ) 800175c: 009b lsls r3, r3, #2 800175e: 440b add r3, r1 8001760: f9b3 3002 ldrsh.w r3, [r3, #2] 8001764: 4413 add r3, r2 8001766: 607b str r3, [r7, #4] for (i = 0, dut_sum[0]=0, dut_sum[1]=0; i < AD5934_EC_AVERAGES; i++) 8001768: 7ffb ldrb r3, [r7, #31] 800176a: 3301 adds r3, #1 800176c: 77fb strb r3, [r7, #31] 800176e: 7ffb ldrb r3, [r7, #31] 8001770: 2b07 cmp r3, #7 8001772: d9e9 bls.n 8001748 } real_number = ((float)dut_sum[0])/((float)AD5934_EC_AVERAGES); 8001774: 683b ldr r3, [r7, #0] 8001776: 4618 mov r0, r3 8001778: f7ff fa7a bl 8000c70 <__aeabi_i2f> 800177c: 4603 mov r3, r0 800177e: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 8001782: 4618 mov r0, r3 8001784: f7ff fb7c bl 8000e80 <__aeabi_fdiv> 8001788: 4603 mov r3, r0 800178a: 617b str r3, [r7, #20] imag_number = ((float)dut_sum[1])/((float)AD5934_EC_AVERAGES); 800178c: 687b ldr r3, [r7, #4] 800178e: 4618 mov r0, r3 8001790: f7ff fa6e bl 8000c70 <__aeabi_i2f> 8001794: 4603 mov r3, r0 8001796: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 800179a: 4618 mov r0, r3 800179c: f7ff fb70 bl 8000e80 <__aeabi_fdiv> 80017a0: 4603 mov r3, r0 80017a2: 613b str r3, [r7, #16] // Calculate unknown magnitude mag_dut = sqrtf((real_number * real_number) + (imag_number * imag_number)); 80017a4: 6979 ldr r1, [r7, #20] 80017a6: 6978 ldr r0, [r7, #20] 80017a8: f7ff fab6 bl 8000d18 <__aeabi_fmul> 80017ac: 4603 mov r3, r0 80017ae: 461c mov r4, r3 80017b0: 6939 ldr r1, [r7, #16] 80017b2: 6938 ldr r0, [r7, #16] 80017b4: f7ff fab0 bl 8000d18 <__aeabi_fmul> 80017b8: 4603 mov r3, r0 80017ba: 4619 mov r1, r3 80017bc: 4620 mov r0, r4 80017be: f7ff f9a3 bl 8000b08 <__addsf3> 80017c2: 4603 mov r3, r0 80017c4: 4618 mov r0, r3 80017c6: f006 f86b bl 80078a0 80017ca: 60f8 str r0, [r7, #12] // Calculate gain factor for the unknown magnitude if(main_state == STATE_SETUP_CALIBRATION) 80017cc: 4b1d ldr r3, [pc, #116] @ (8001844 ) 80017ce: 781b ldrb r3, [r3, #0] 80017d0: 2b01 cmp r3, #1 80017d2: d101 bne.n 80017d8 return(mag_dut); 80017d4: 68fb ldr r3, [r7, #12] 80017d6: e02d b.n 8001834 else if(flash_data.ec12880_value != flash_data.ec1413_value) 80017d8: 4b1b ldr r3, [pc, #108] @ (8001848 ) 80017da: 691b ldr r3, [r3, #16] 80017dc: 4a1a ldr r2, [pc, #104] @ (8001848 ) 80017de: 68d2 ldr r2, [r2, #12] 80017e0: 4611 mov r1, r2 80017e2: 4618 mov r0, r3 80017e4: f7ff fc2c bl 8001040 <__aeabi_fcmpeq> 80017e8: 4603 mov r3, r0 80017ea: 2b00 cmp r3, #0 80017ec: d120 bne.n 8001830 { slope = ((AD5934_GAIN_FACTOR_12880US - AD5934_GAIN_FACTOR_1413US)/(flash_data.ec12880_value - flash_data.ec1413_value)); 80017ee: 4b16 ldr r3, [pc, #88] @ (8001848 ) 80017f0: 691b ldr r3, [r3, #16] 80017f2: 4a15 ldr r2, [pc, #84] @ (8001848 ) 80017f4: 68d2 ldr r2, [r2, #12] 80017f6: 4611 mov r1, r2 80017f8: 4618 mov r0, r3 80017fa: f7ff f983 bl 8000b04 <__aeabi_fsub> 80017fe: 4603 mov r3, r0 8001800: 4619 mov r1, r3 8001802: 4812 ldr r0, [pc, #72] @ (800184c ) 8001804: f7ff fb3c bl 8000e80 <__aeabi_fdiv> 8001808: 4603 mov r3, r0 800180a: 60bb str r3, [r7, #8] return(AD5934_GAIN_FACTOR_1413US + (mag_dut - flash_data.ec1413_value) * slope); 800180c: 4b0e ldr r3, [pc, #56] @ (8001848 ) 800180e: 68db ldr r3, [r3, #12] 8001810: 4619 mov r1, r3 8001812: 68f8 ldr r0, [r7, #12] 8001814: f7ff f976 bl 8000b04 <__aeabi_fsub> 8001818: 4603 mov r3, r0 800181a: 68b9 ldr r1, [r7, #8] 800181c: 4618 mov r0, r3 800181e: f7ff fa7b bl 8000d18 <__aeabi_fmul> 8001822: 4603 mov r3, r0 8001824: 490a ldr r1, [pc, #40] @ (8001850 ) 8001826: 4618 mov r0, r3 8001828: f7ff f96e bl 8000b08 <__addsf3> 800182c: 4603 mov r3, r0 800182e: e001 b.n 8001834 } else return 0.0f; 8001830: f04f 0300 mov.w r3, #0 } 8001834: 4618 mov r0, r3 8001836: 3724 adds r7, #36 @ 0x24 8001838: 46bd mov sp, r7 800183a: bd90 pop {r4, r7, pc} 800183c: 40010800 .word 0x40010800 8001840: 200000fc .word 0x200000fc 8001844: 200006a8 .word 0x200006a8 8001848: 200001f8 .word 0x200001f8 800184c: 46332c00 .word 0x46332c00 8001850: 44b0a000 .word 0x44b0a000 08001854 : /** * @brief Monitora o status com TIMEOUT para evitar travamento do sistema. */ void AD5934_Wait_For_Data_Valid(void) { 8001854: b580 push {r7, lr} 8001856: b084 sub sp, #16 8001858: af00 add r7, sp, #0 uint32_t timeout_counter = 0; 800185a: 2300 movs r3, #0 800185c: 60fb str r3, [r7, #12] const uint32_t MAX_TIMEOUT = 10000; // Limite de tentativas 800185e: f242 7310 movw r3, #10000 @ 0x2710 8001862: 60bb str r3, [r7, #8] uint8_t status; while (1) { status = (uint8_t)AD5934_GetRegisterValue(AD5934_STATUS_REG, 1); 8001864: 2101 movs r1, #1 8001866: 208f movs r0, #143 @ 0x8f 8001868: f7ff fc8a bl 8001180 800186c: 4603 mov r3, r0 800186e: 71fb strb r3, [r7, #7] if ((status & AD5934_STATUS_DATA_VALID) != 0) 8001870: 79fb ldrb r3, [r7, #7] 8001872: f003 0302 and.w r3, r3, #2 8001876: 2b00 cmp r3, #0 8001878: d10a bne.n 8001890 { break; // Sucesso! } timeout_counter++; 800187a: 68fb ldr r3, [r7, #12] 800187c: 3301 adds r3, #1 800187e: 60fb str r3, [r7, #12] if (timeout_counter >= MAX_TIMEOUT) 8001880: 68fa ldr r2, [r7, #12] 8001882: 68bb ldr r3, [r7, #8] 8001884: 429a cmp r2, r3 8001886: d205 bcs.n 8001894 { // TRATAMENTO DE ERRO: O sistema não travou, mas o chip falhou. break; } HAL_Delay(1); // Pequeno delay para não sobrecarregar o barramento I2C 8001888: 2001 movs r0, #1 800188a: f001 fd2d bl 80032e8 status = (uint8_t)AD5934_GetRegisterValue(AD5934_STATUS_REG, 1); 800188e: e7e9 b.n 8001864 break; // Sucesso! 8001890: bf00 nop 8001892: e000 b.n 8001896 break; 8001894: bf00 nop } } 8001896: bf00 nop 8001898: 3710 adds r7, #16 800189a: 46bd mov sp, r7 800189c: bd80 pop {r7, pc} ... 080018a0 : * @param valor O valor float original. * @param casas_decimais Quantidade de casas que devem permanecer após a vírgula. * @return float O valor com as casas decimais excedentes removidas. */ float AD5934_Round_Float_Precision(float value, uint8_t number_of_decimals) { 80018a0: b580 push {r7, lr} 80018a2: b084 sub sp, #16 80018a4: af00 add r7, sp, #0 80018a6: 6078 str r0, [r7, #4] 80018a8: 460b mov r3, r1 80018aa: 70fb strb r3, [r7, #3] float multiply = 1.0f; 80018ac: f04f 537e mov.w r3, #1065353216 @ 0x3f800000 80018b0: 60fb str r3, [r7, #12] for (uint8_t i = 0; i < number_of_decimals; i++) 80018b2: 2300 movs r3, #0 80018b4: 72fb strb r3, [r7, #11] 80018b6: e008 b.n 80018ca multiply *= 10.0f; 80018b8: 490f ldr r1, [pc, #60] @ (80018f8 ) 80018ba: 68f8 ldr r0, [r7, #12] 80018bc: f7ff fa2c bl 8000d18 <__aeabi_fmul> 80018c0: 4603 mov r3, r0 80018c2: 60fb str r3, [r7, #12] for (uint8_t i = 0; i < number_of_decimals; i++) 80018c4: 7afb ldrb r3, [r7, #11] 80018c6: 3301 adds r3, #1 80018c8: 72fb strb r3, [r7, #11] 80018ca: 7afa ldrb r2, [r7, #11] 80018cc: 78fb ldrb r3, [r7, #3] 80018ce: 429a cmp r2, r3 80018d0: d3f2 bcc.n 80018b8 return roundf(value * multiply) / multiply; 80018d2: 68f9 ldr r1, [r7, #12] 80018d4: 6878 ldr r0, [r7, #4] 80018d6: f7ff fa1f bl 8000d18 <__aeabi_fmul> 80018da: 4603 mov r3, r0 80018dc: 4618 mov r0, r3 80018de: f006 f86f bl 80079c0 80018e2: 4603 mov r3, r0 80018e4: 68f9 ldr r1, [r7, #12] 80018e6: 4618 mov r0, r3 80018e8: f7ff faca bl 8000e80 <__aeabi_fdiv> 80018ec: 4603 mov r3, r0 } 80018ee: 4618 mov r0, r3 80018f0: 3710 adds r7, #16 80018f2: 46bd mov sp, r7 80018f4: bd80 pop {r7, pc} 80018f6: bf00 nop 80018f8: 41200000 .word 0x41200000 080018fc : * * @param input_val The raw float value from sensor/ADC. * @return float The transformed value following the requested trend. */ float AD5934_Linear_Correction(float raw_value) { 80018fc: b580 push {r7, lr} 80018fe: b084 sub sp, #16 8001900: af00 add r7, sp, #0 8001902: 6078 str r0, [r7, #4] /* Pre-calculated constants from regression analysis */ const float slope = 1.02281f; 8001904: 4b08 ldr r3, [pc, #32] @ (8001928 ) 8001906: 60fb str r3, [r7, #12] const float offset = (-2.1409f); 8001908: 4b08 ldr r3, [pc, #32] @ (800192c ) 800190a: 60bb str r3, [r7, #8] /* Single FPU instruction (if FPU available) or optimized software float mul/add */ return (raw_value * slope) + offset; 800190c: 68f9 ldr r1, [r7, #12] 800190e: 6878 ldr r0, [r7, #4] 8001910: f7ff fa02 bl 8000d18 <__aeabi_fmul> 8001914: 4603 mov r3, r0 8001916: 68b9 ldr r1, [r7, #8] 8001918: 4618 mov r0, r3 800191a: f7ff f8f5 bl 8000b08 <__addsf3> 800191e: 4603 mov r3, r0 } 8001920: 4618 mov r0, r3 8001922: 3710 adds r7, #16 8001924: 46bd mov sp, r7 8001926: bd80 pop {r7, pc} 8001928: 3f82eb70 .word 0x3f82eb70 800192c: c0090481 .word 0xc0090481 08001930 : * * @return None. *******************************************************************************/ void ADG715_SetRegisterValue(char value) { 8001930: b580 push {r7, lr} 8001932: b086 sub sp, #24 8001934: af02 add r7, sp, #8 8001936: 4603 mov r3, r0 8001938: 71fb strb r3, [r7, #7] uint8_t writeData[1] = {value}; 800193a: 79fb ldrb r3, [r7, #7] 800193c: 733b strb r3, [r7, #12] HAL_StatusTypeDef status; status = HAL_I2C_Master_Transmit(&hi2c2, ADG715_I2C_ADDRESS, writeData, 1, 1); 800193e: f107 020c add.w r2, r7, #12 8001942: 2301 movs r3, #1 8001944: 9300 str r3, [sp, #0] 8001946: 2301 movs r3, #1 8001948: 2190 movs r1, #144 @ 0x90 800194a: 4804 ldr r0, [pc, #16] @ (800195c ) 800194c: f003 fa20 bl 8004d90 8001950: 4603 mov r3, r0 8001952: 73fb strb r3, [r7, #15] return; 8001954: bf00 nop } 8001956: 3710 adds r7, #16 8001958: 46bd mov sp, r7 800195a: bd80 pop {r7, pc} 800195c: 20000654 .word 0x20000654 08001960 : void ADG715_SetChannels(uint8_t ch1, uint8_t ch2) { 8001960: b580 push {r7, lr} 8001962: b082 sub sp, #8 8001964: af00 add r7, sp, #0 8001966: 4603 mov r3, r0 8001968: 460a mov r2, r1 800196a: 71fb strb r3, [r7, #7] 800196c: 4613 mov r3, r2 800196e: 71bb strb r3, [r7, #6] ADG715_SetRegisterValue(ch1+ch2); 8001970: 79fa ldrb r2, [r7, #7] 8001972: 79bb ldrb r3, [r7, #6] 8001974: 4413 add r3, r2 8001976: b2db uxtb r3, r3 8001978: 4618 mov r0, r3 800197a: f7ff ffd9 bl 8001930 } 800197e: bf00 nop 8001980: 3708 adds r7, #8 8001982: 46bd mov sp, r7 8001984: bd80 pop {r7, pc} 08001986 : void ADG715_ResetChannels(void) { 8001986: b580 push {r7, lr} 8001988: af00 add r7, sp, #0 ADG715_SetRegisterValue(0); 800198a: 2000 movs r0, #0 800198c: f7ff ffd0 bl 8001930 } 8001990: bf00 nop 8001992: bd80 pop {r7, pc} 08001994 : * @param: channel = AD5934_CH_REF_100R, AD5934_CH_REF_1K, AD5934_CH_REF_10K, AD5934_CH_PT100, AD5934_CH_PT1000 or AD5934_CH_EC * * @return none. ******************************************************************************/ void ADG715_Update(uint8_t channel) { 8001994: b580 push {r7, lr} 8001996: b082 sub sp, #8 8001998: af00 add r7, sp, #0 800199a: 4603 mov r3, r0 800199c: 71fb strb r3, [r7, #7] HAL_StatusTypeDef status; // Disconnect all Analog Switches ADG715_ResetChannels(); 800199e: f7ff fff2 bl 8001986 // Set the pair of connections if(channel == AD5934_CH_REF100R_LOW_GAIN) 80019a2: 79fb ldrb r3, [r7, #7] 80019a4: 2b09 cmp r3, #9 80019a6: d104 bne.n 80019b2 { ADG715_SetChannels(ADG715_SW1, ADG715_SW4); // Rf = 150R, Ch = Ref_100R 80019a8: 2108 movs r1, #8 80019aa: 2001 movs r0, #1 80019ac: f7ff ffd8 bl 8001960 else if(channel == AD5934_CH_EC_HIGH_GAIN) { ADG715_SetChannels(ADG715_SW3, ADG715_SW8); // Rf = 6k2, Ch = EC } } 80019b0: e06e b.n 8001a90 else if(channel == AD5934_CH_REF100R_MID_GAIN) 80019b2: 79fb ldrb r3, [r7, #7] 80019b4: 2b0a cmp r3, #10 80019b6: d104 bne.n 80019c2 ADG715_SetChannels(ADG715_SW2, ADG715_SW4); // Rf = 1k5, Ch = Ref_100R 80019b8: 2108 movs r1, #8 80019ba: 2002 movs r0, #2 80019bc: f7ff ffd0 bl 8001960 } 80019c0: e066 b.n 8001a90 else if(channel == AD5934_CH_REF100R_HIGH_GAIN) 80019c2: 79fb ldrb r3, [r7, #7] 80019c4: 2b0c cmp r3, #12 80019c6: d104 bne.n 80019d2 ADG715_SetChannels(ADG715_SW3, ADG715_SW4); // Rf = 6k2, Ch = Ref_100R 80019c8: 2108 movs r1, #8 80019ca: 2004 movs r0, #4 80019cc: f7ff ffc8 bl 8001960 } 80019d0: e05e b.n 8001a90 else if(channel == AD5934_CH_REF1K_LOW_GAIN) 80019d2: 79fb ldrb r3, [r7, #7] 80019d4: 2b11 cmp r3, #17 80019d6: d104 bne.n 80019e2 ADG715_SetChannels(ADG715_SW1, ADG715_SW5); // Rf = 150R, Ch = Ref_1k 80019d8: 2110 movs r1, #16 80019da: 2001 movs r0, #1 80019dc: f7ff ffc0 bl 8001960 } 80019e0: e056 b.n 8001a90 else if(channel == AD5934_CH_REF1K_MID_GAIN) 80019e2: 79fb ldrb r3, [r7, #7] 80019e4: 2b12 cmp r3, #18 80019e6: d104 bne.n 80019f2 ADG715_SetChannels(ADG715_SW2, ADG715_SW5); // Rf = 1k5, Ch = Ref_1k 80019e8: 2110 movs r1, #16 80019ea: 2002 movs r0, #2 80019ec: f7ff ffb8 bl 8001960 } 80019f0: e04e b.n 8001a90 else if(channel == AD5934_CH_REF1K_HIGH_GAIN) 80019f2: 79fb ldrb r3, [r7, #7] 80019f4: 2b14 cmp r3, #20 80019f6: d104 bne.n 8001a02 ADG715_SetChannels(ADG715_SW3, ADG715_SW5); // Rf = 6k2, Ch = Ref_1k 80019f8: 2110 movs r1, #16 80019fa: 2004 movs r0, #4 80019fc: f7ff ffb0 bl 8001960 } 8001a00: e046 b.n 8001a90 else if(channel == AD5934_CH_REF10K_LOW_GAIN) 8001a02: 79fb ldrb r3, [r7, #7] 8001a04: 2b21 cmp r3, #33 @ 0x21 8001a06: d104 bne.n 8001a12 ADG715_SetChannels(ADG715_SW1, ADG715_SW6); // Rf = 150R, Ch = Ref_10k 8001a08: 2120 movs r1, #32 8001a0a: 2001 movs r0, #1 8001a0c: f7ff ffa8 bl 8001960 } 8001a10: e03e b.n 8001a90 else if(channel == AD5934_CH_REF10K_MID_GAIN) 8001a12: 79fb ldrb r3, [r7, #7] 8001a14: 2b22 cmp r3, #34 @ 0x22 8001a16: d104 bne.n 8001a22 ADG715_SetChannels(ADG715_SW2, ADG715_SW6); // Rf = 1k5, Ch = Ref_10k 8001a18: 2120 movs r1, #32 8001a1a: 2002 movs r0, #2 8001a1c: f7ff ffa0 bl 8001960 } 8001a20: e036 b.n 8001a90 else if(channel == AD5934_CH_REF10K_HIGH_GAIN) 8001a22: 79fb ldrb r3, [r7, #7] 8001a24: 2b24 cmp r3, #36 @ 0x24 8001a26: d104 bne.n 8001a32 ADG715_SetChannels(ADG715_SW3, ADG715_SW6); // Rf = 6k2, Ch = Ref_10k 8001a28: 2120 movs r1, #32 8001a2a: 2004 movs r0, #4 8001a2c: f7ff ff98 bl 8001960 } 8001a30: e02e b.n 8001a90 else if(channel == AD5934_CH_RTD_LOW_GAIN) 8001a32: 79fb ldrb r3, [r7, #7] 8001a34: 2b41 cmp r3, #65 @ 0x41 8001a36: d104 bne.n 8001a42 ADG715_SetChannels(ADG715_SW1, ADG715_SW7); // Rf = 150R, Ch = RTD 8001a38: 2140 movs r1, #64 @ 0x40 8001a3a: 2001 movs r0, #1 8001a3c: f7ff ff90 bl 8001960 } 8001a40: e026 b.n 8001a90 else if(channel == AD5934_CH_RTD_MID_GAIN) 8001a42: 79fb ldrb r3, [r7, #7] 8001a44: 2b42 cmp r3, #66 @ 0x42 8001a46: d104 bne.n 8001a52 ADG715_SetChannels(ADG715_SW2, ADG715_SW7); // Rf = 1k5, Ch = RTD 8001a48: 2140 movs r1, #64 @ 0x40 8001a4a: 2002 movs r0, #2 8001a4c: f7ff ff88 bl 8001960 } 8001a50: e01e b.n 8001a90 else if(channel == AD5934_CH_RTD_HIGH_GAIN) 8001a52: 79fb ldrb r3, [r7, #7] 8001a54: 2b44 cmp r3, #68 @ 0x44 8001a56: d104 bne.n 8001a62 ADG715_SetChannels(ADG715_SW3, ADG715_SW7); // Rf = 6k2, Ch = RTD 8001a58: 2140 movs r1, #64 @ 0x40 8001a5a: 2004 movs r0, #4 8001a5c: f7ff ff80 bl 8001960 } 8001a60: e016 b.n 8001a90 else if(channel == AD5934_CH_EC_LOW_GAIN) 8001a62: 79fb ldrb r3, [r7, #7] 8001a64: 2b81 cmp r3, #129 @ 0x81 8001a66: d104 bne.n 8001a72 ADG715_SetChannels(ADG715_SW1, ADG715_SW8); // Rf = 150R, Ch = EC 8001a68: 2180 movs r1, #128 @ 0x80 8001a6a: 2001 movs r0, #1 8001a6c: f7ff ff78 bl 8001960 } 8001a70: e00e b.n 8001a90 else if(channel == AD5934_CH_EC_MID_GAIN) 8001a72: 79fb ldrb r3, [r7, #7] 8001a74: 2b82 cmp r3, #130 @ 0x82 8001a76: d104 bne.n 8001a82 ADG715_SetChannels(ADG715_SW2, ADG715_SW8); // Rf = 1k5, Ch = EC 8001a78: 2180 movs r1, #128 @ 0x80 8001a7a: 2002 movs r0, #2 8001a7c: f7ff ff70 bl 8001960 } 8001a80: e006 b.n 8001a90 else if(channel == AD5934_CH_EC_HIGH_GAIN) 8001a82: 79fb ldrb r3, [r7, #7] 8001a84: 2b84 cmp r3, #132 @ 0x84 8001a86: d103 bne.n 8001a90 ADG715_SetChannels(ADG715_SW3, ADG715_SW8); // Rf = 6k2, Ch = EC 8001a88: 2180 movs r1, #128 @ 0x80 8001a8a: 2004 movs r0, #4 8001a8c: f7ff ff68 bl 8001960 } 8001a90: bf00 nop 8001a92: 3708 adds r7, #8 8001a94: 46bd mov sp, r7 8001a96: bd80 pop {r7, pc} 08001a98 : ADC_HandleTypeDef hadc2; DMA_HandleTypeDef hdma_adc1; /* ADC1 init function */ void MX_ADC1_Init(void) { 8001a98: b580 push {r7, lr} 8001a9a: b084 sub sp, #16 8001a9c: af00 add r7, sp, #0 /* USER CODE BEGIN ADC1_Init 0 */ /* USER CODE END ADC1_Init 0 */ ADC_ChannelConfTypeDef sConfig = {0}; 8001a9e: 1d3b adds r3, r7, #4 8001aa0: 2200 movs r2, #0 8001aa2: 601a str r2, [r3, #0] 8001aa4: 605a str r2, [r3, #4] 8001aa6: 609a str r2, [r3, #8] /* USER CODE END ADC1_Init 1 */ /** Common config */ hadc1.Instance = ADC1; 8001aa8: 4b20 ldr r3, [pc, #128] @ (8001b2c ) 8001aaa: 4a21 ldr r2, [pc, #132] @ (8001b30 ) 8001aac: 601a str r2, [r3, #0] hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE; 8001aae: 4b1f ldr r3, [pc, #124] @ (8001b2c ) 8001ab0: f44f 7280 mov.w r2, #256 @ 0x100 8001ab4: 609a str r2, [r3, #8] hadc1.Init.ContinuousConvMode = DISABLE; 8001ab6: 4b1d ldr r3, [pc, #116] @ (8001b2c ) 8001ab8: 2200 movs r2, #0 8001aba: 731a strb r2, [r3, #12] hadc1.Init.DiscontinuousConvMode = DISABLE; 8001abc: 4b1b ldr r3, [pc, #108] @ (8001b2c ) 8001abe: 2200 movs r2, #0 8001ac0: 751a strb r2, [r3, #20] hadc1.Init.ExternalTrigConv = ADC_EXTERNALTRIGCONV_T3_TRGO; 8001ac2: 4b1a ldr r3, [pc, #104] @ (8001b2c ) 8001ac4: f44f 2200 mov.w r2, #524288 @ 0x80000 8001ac8: 61da str r2, [r3, #28] hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT; 8001aca: 4b18 ldr r3, [pc, #96] @ (8001b2c ) 8001acc: 2200 movs r2, #0 8001ace: 605a str r2, [r3, #4] hadc1.Init.NbrOfConversion = 2; 8001ad0: 4b16 ldr r3, [pc, #88] @ (8001b2c ) 8001ad2: 2202 movs r2, #2 8001ad4: 611a str r2, [r3, #16] if (HAL_ADC_Init(&hadc1) != HAL_OK) 8001ad6: 4815 ldr r0, [pc, #84] @ (8001b2c ) 8001ad8: f001 fc2a bl 8003330 8001adc: 4603 mov r3, r0 8001ade: 2b00 cmp r3, #0 8001ae0: d001 beq.n 8001ae6 { Error_Handler(); 8001ae2: f001 f915 bl 8002d10 } /** Configure Regular Channel */ sConfig.Channel = ADC_CHANNEL_VREFINT; 8001ae6: 2311 movs r3, #17 8001ae8: 607b str r3, [r7, #4] sConfig.Rank = ADC_REGULAR_RANK_1; 8001aea: 2301 movs r3, #1 8001aec: 60bb str r3, [r7, #8] sConfig.SamplingTime = ADC_SAMPLETIME_239CYCLES_5; 8001aee: 2307 movs r3, #7 8001af0: 60fb str r3, [r7, #12] if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK) 8001af2: 1d3b adds r3, r7, #4 8001af4: 4619 mov r1, r3 8001af6: 480d ldr r0, [pc, #52] @ (8001b2c ) 8001af8: f001 fde2 bl 80036c0 8001afc: 4603 mov r3, r0 8001afe: 2b00 cmp r3, #0 8001b00: d001 beq.n 8001b06 { Error_Handler(); 8001b02: f001 f905 bl 8002d10 } /** Configure Regular Channel */ sConfig.Channel = ADC_CHANNEL_TEMPSENSOR; 8001b06: 2310 movs r3, #16 8001b08: 607b str r3, [r7, #4] sConfig.Rank = ADC_REGULAR_RANK_2; 8001b0a: 2302 movs r3, #2 8001b0c: 60bb str r3, [r7, #8] if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK) 8001b0e: 1d3b adds r3, r7, #4 8001b10: 4619 mov r1, r3 8001b12: 4806 ldr r0, [pc, #24] @ (8001b2c ) 8001b14: f001 fdd4 bl 80036c0 8001b18: 4603 mov r3, r0 8001b1a: 2b00 cmp r3, #0 8001b1c: d001 beq.n 8001b22 { Error_Handler(); 8001b1e: f001 f8f7 bl 8002d10 } /* USER CODE BEGIN ADC1_Init 2 */ /* USER CODE END ADC1_Init 2 */ } 8001b22: bf00 nop 8001b24: 3710 adds r7, #16 8001b26: 46bd mov sp, r7 8001b28: bd80 pop {r7, pc} 8001b2a: bf00 nop 8001b2c: 2000011c .word 0x2000011c 8001b30: 40012400 .word 0x40012400 08001b34 : /* ADC2 init function */ void MX_ADC2_Init(void) { 8001b34: b580 push {r7, lr} 8001b36: b084 sub sp, #16 8001b38: af00 add r7, sp, #0 /* USER CODE BEGIN ADC2_Init 0 */ /* USER CODE END ADC2_Init 0 */ ADC_ChannelConfTypeDef sConfig = {0}; 8001b3a: 1d3b adds r3, r7, #4 8001b3c: 2200 movs r2, #0 8001b3e: 601a str r2, [r3, #0] 8001b40: 605a str r2, [r3, #4] 8001b42: 609a str r2, [r3, #8] /* USER CODE END ADC2_Init 1 */ /** Common config */ hadc2.Instance = ADC2; 8001b44: 4b18 ldr r3, [pc, #96] @ (8001ba8 ) 8001b46: 4a19 ldr r2, [pc, #100] @ (8001bac ) 8001b48: 601a str r2, [r3, #0] hadc2.Init.ScanConvMode = ADC_SCAN_DISABLE; 8001b4a: 4b17 ldr r3, [pc, #92] @ (8001ba8 ) 8001b4c: 2200 movs r2, #0 8001b4e: 609a str r2, [r3, #8] hadc2.Init.ContinuousConvMode = DISABLE; 8001b50: 4b15 ldr r3, [pc, #84] @ (8001ba8 ) 8001b52: 2200 movs r2, #0 8001b54: 731a strb r2, [r3, #12] hadc2.Init.DiscontinuousConvMode = DISABLE; 8001b56: 4b14 ldr r3, [pc, #80] @ (8001ba8 ) 8001b58: 2200 movs r2, #0 8001b5a: 751a strb r2, [r3, #20] hadc2.Init.ExternalTrigConv = ADC_SOFTWARE_START; 8001b5c: 4b12 ldr r3, [pc, #72] @ (8001ba8 ) 8001b5e: f44f 2260 mov.w r2, #917504 @ 0xe0000 8001b62: 61da str r2, [r3, #28] hadc2.Init.DataAlign = ADC_DATAALIGN_RIGHT; 8001b64: 4b10 ldr r3, [pc, #64] @ (8001ba8 ) 8001b66: 2200 movs r2, #0 8001b68: 605a str r2, [r3, #4] hadc2.Init.NbrOfConversion = 1; 8001b6a: 4b0f ldr r3, [pc, #60] @ (8001ba8 ) 8001b6c: 2201 movs r2, #1 8001b6e: 611a str r2, [r3, #16] if (HAL_ADC_Init(&hadc2) != HAL_OK) 8001b70: 480d ldr r0, [pc, #52] @ (8001ba8 ) 8001b72: f001 fbdd bl 8003330 8001b76: 4603 mov r3, r0 8001b78: 2b00 cmp r3, #0 8001b7a: d001 beq.n 8001b80 { Error_Handler(); 8001b7c: f001 f8c8 bl 8002d10 } /** Configure Regular Channel */ sConfig.Channel = ADC_CHANNEL_1; 8001b80: 2301 movs r3, #1 8001b82: 607b str r3, [r7, #4] sConfig.Rank = ADC_REGULAR_RANK_1; 8001b84: 2301 movs r3, #1 8001b86: 60bb str r3, [r7, #8] sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5; 8001b88: 2300 movs r3, #0 8001b8a: 60fb str r3, [r7, #12] if (HAL_ADC_ConfigChannel(&hadc2, &sConfig) != HAL_OK) 8001b8c: 1d3b adds r3, r7, #4 8001b8e: 4619 mov r1, r3 8001b90: 4805 ldr r0, [pc, #20] @ (8001ba8 ) 8001b92: f001 fd95 bl 80036c0 8001b96: 4603 mov r3, r0 8001b98: 2b00 cmp r3, #0 8001b9a: d001 beq.n 8001ba0 { Error_Handler(); 8001b9c: f001 f8b8 bl 8002d10 } /* USER CODE BEGIN ADC2_Init 2 */ /* USER CODE END ADC2_Init 2 */ } 8001ba0: bf00 nop 8001ba2: 3710 adds r7, #16 8001ba4: 46bd mov sp, r7 8001ba6: bd80 pop {r7, pc} 8001ba8: 2000014c .word 0x2000014c 8001bac: 40012800 .word 0x40012800 08001bb0 : void HAL_ADC_MspInit(ADC_HandleTypeDef* adcHandle) { 8001bb0: b580 push {r7, lr} 8001bb2: b08a sub sp, #40 @ 0x28 8001bb4: af00 add r7, sp, #0 8001bb6: 6078 str r0, [r7, #4] GPIO_InitTypeDef GPIO_InitStruct = {0}; 8001bb8: f107 0318 add.w r3, r7, #24 8001bbc: 2200 movs r2, #0 8001bbe: 601a str r2, [r3, #0] 8001bc0: 605a str r2, [r3, #4] 8001bc2: 609a str r2, [r3, #8] 8001bc4: 60da str r2, [r3, #12] if(adcHandle->Instance==ADC1) 8001bc6: 687b ldr r3, [r7, #4] 8001bc8: 681b ldr r3, [r3, #0] 8001bca: 4a3c ldr r2, [pc, #240] @ (8001cbc ) 8001bcc: 4293 cmp r3, r2 8001bce: d14a bne.n 8001c66 { /* USER CODE BEGIN ADC1_MspInit 0 */ /* USER CODE END ADC1_MspInit 0 */ /* ADC1 clock enable */ __HAL_RCC_ADC1_CLK_ENABLE(); 8001bd0: 4b3b ldr r3, [pc, #236] @ (8001cc0 ) 8001bd2: 699b ldr r3, [r3, #24] 8001bd4: 4a3a ldr r2, [pc, #232] @ (8001cc0 ) 8001bd6: f443 7300 orr.w r3, r3, #512 @ 0x200 8001bda: 6193 str r3, [r2, #24] 8001bdc: 4b38 ldr r3, [pc, #224] @ (8001cc0 ) 8001bde: 699b ldr r3, [r3, #24] 8001be0: f403 7300 and.w r3, r3, #512 @ 0x200 8001be4: 617b str r3, [r7, #20] 8001be6: 697b ldr r3, [r7, #20] __HAL_RCC_GPIOA_CLK_ENABLE(); 8001be8: 4b35 ldr r3, [pc, #212] @ (8001cc0 ) 8001bea: 699b ldr r3, [r3, #24] 8001bec: 4a34 ldr r2, [pc, #208] @ (8001cc0 ) 8001bee: f043 0304 orr.w r3, r3, #4 8001bf2: 6193 str r3, [r2, #24] 8001bf4: 4b32 ldr r3, [pc, #200] @ (8001cc0 ) 8001bf6: 699b ldr r3, [r3, #24] 8001bf8: f003 0304 and.w r3, r3, #4 8001bfc: 613b str r3, [r7, #16] 8001bfe: 693b ldr r3, [r7, #16] /**ADC1 GPIO Configuration PA0-WKUP ------> ADC1_IN0 PA1 ------> ADC1_IN1 */ GPIO_InitStruct.Pin = AIN1_Pin|AIN2_Pin; 8001c00: 2303 movs r3, #3 8001c02: 61bb str r3, [r7, #24] GPIO_InitStruct.Mode = GPIO_MODE_ANALOG; 8001c04: 2303 movs r3, #3 8001c06: 61fb str r3, [r7, #28] HAL_GPIO_Init(GPIOA, &GPIO_InitStruct); 8001c08: f107 0318 add.w r3, r7, #24 8001c0c: 4619 mov r1, r3 8001c0e: 482d ldr r0, [pc, #180] @ (8001cc4 ) 8001c10: f002 fdae bl 8004770 /* ADC1 DMA Init */ /* ADC1 Init */ hdma_adc1.Instance = DMA1_Channel1; 8001c14: 4b2c ldr r3, [pc, #176] @ (8001cc8 ) 8001c16: 4a2d ldr r2, [pc, #180] @ (8001ccc ) 8001c18: 601a str r2, [r3, #0] hdma_adc1.Init.Direction = DMA_PERIPH_TO_MEMORY; 8001c1a: 4b2b ldr r3, [pc, #172] @ (8001cc8 ) 8001c1c: 2200 movs r2, #0 8001c1e: 605a str r2, [r3, #4] hdma_adc1.Init.PeriphInc = DMA_PINC_DISABLE; 8001c20: 4b29 ldr r3, [pc, #164] @ (8001cc8 ) 8001c22: 2200 movs r2, #0 8001c24: 609a str r2, [r3, #8] hdma_adc1.Init.MemInc = DMA_MINC_ENABLE; 8001c26: 4b28 ldr r3, [pc, #160] @ (8001cc8 ) 8001c28: 2280 movs r2, #128 @ 0x80 8001c2a: 60da str r2, [r3, #12] hdma_adc1.Init.PeriphDataAlignment = DMA_PDATAALIGN_HALFWORD; 8001c2c: 4b26 ldr r3, [pc, #152] @ (8001cc8 ) 8001c2e: f44f 7280 mov.w r2, #256 @ 0x100 8001c32: 611a str r2, [r3, #16] hdma_adc1.Init.MemDataAlignment = DMA_MDATAALIGN_HALFWORD; 8001c34: 4b24 ldr r3, [pc, #144] @ (8001cc8 ) 8001c36: f44f 6280 mov.w r2, #1024 @ 0x400 8001c3a: 615a str r2, [r3, #20] hdma_adc1.Init.Mode = DMA_CIRCULAR; 8001c3c: 4b22 ldr r3, [pc, #136] @ (8001cc8 ) 8001c3e: 2220 movs r2, #32 8001c40: 619a str r2, [r3, #24] hdma_adc1.Init.Priority = DMA_PRIORITY_LOW; 8001c42: 4b21 ldr r3, [pc, #132] @ (8001cc8 ) 8001c44: 2200 movs r2, #0 8001c46: 61da str r2, [r3, #28] if (HAL_DMA_Init(&hdma_adc1) != HAL_OK) 8001c48: 481f ldr r0, [pc, #124] @ (8001cc8 ) 8001c4a: f002 f8ef bl 8003e2c 8001c4e: 4603 mov r3, r0 8001c50: 2b00 cmp r3, #0 8001c52: d001 beq.n 8001c58 { Error_Handler(); 8001c54: f001 f85c bl 8002d10 } __HAL_LINKDMA(adcHandle,DMA_Handle,hdma_adc1); 8001c58: 687b ldr r3, [r7, #4] 8001c5a: 4a1b ldr r2, [pc, #108] @ (8001cc8 ) 8001c5c: 621a str r2, [r3, #32] 8001c5e: 4a1a ldr r2, [pc, #104] @ (8001cc8 ) 8001c60: 687b ldr r3, [r7, #4] 8001c62: 6253 str r3, [r2, #36] @ 0x24 /* USER CODE BEGIN ADC2_MspInit 1 */ /* USER CODE END ADC2_MspInit 1 */ } } 8001c64: e026 b.n 8001cb4 else if(adcHandle->Instance==ADC2) 8001c66: 687b ldr r3, [r7, #4] 8001c68: 681b ldr r3, [r3, #0] 8001c6a: 4a19 ldr r2, [pc, #100] @ (8001cd0 ) 8001c6c: 4293 cmp r3, r2 8001c6e: d121 bne.n 8001cb4 __HAL_RCC_ADC2_CLK_ENABLE(); 8001c70: 4b13 ldr r3, [pc, #76] @ (8001cc0 ) 8001c72: 699b ldr r3, [r3, #24] 8001c74: 4a12 ldr r2, [pc, #72] @ (8001cc0 ) 8001c76: f443 6380 orr.w r3, r3, #1024 @ 0x400 8001c7a: 6193 str r3, [r2, #24] 8001c7c: 4b10 ldr r3, [pc, #64] @ (8001cc0 ) 8001c7e: 699b ldr r3, [r3, #24] 8001c80: f403 6380 and.w r3, r3, #1024 @ 0x400 8001c84: 60fb str r3, [r7, #12] 8001c86: 68fb ldr r3, [r7, #12] __HAL_RCC_GPIOA_CLK_ENABLE(); 8001c88: 4b0d ldr r3, [pc, #52] @ (8001cc0 ) 8001c8a: 699b ldr r3, [r3, #24] 8001c8c: 4a0c ldr r2, [pc, #48] @ (8001cc0 ) 8001c8e: f043 0304 orr.w r3, r3, #4 8001c92: 6193 str r3, [r2, #24] 8001c94: 4b0a ldr r3, [pc, #40] @ (8001cc0 ) 8001c96: 699b ldr r3, [r3, #24] 8001c98: f003 0304 and.w r3, r3, #4 8001c9c: 60bb str r3, [r7, #8] 8001c9e: 68bb ldr r3, [r7, #8] GPIO_InitStruct.Pin = AIN1_Pin|AIN2_Pin; 8001ca0: 2303 movs r3, #3 8001ca2: 61bb str r3, [r7, #24] GPIO_InitStruct.Mode = GPIO_MODE_ANALOG; 8001ca4: 2303 movs r3, #3 8001ca6: 61fb str r3, [r7, #28] HAL_GPIO_Init(GPIOA, &GPIO_InitStruct); 8001ca8: f107 0318 add.w r3, r7, #24 8001cac: 4619 mov r1, r3 8001cae: 4805 ldr r0, [pc, #20] @ (8001cc4 ) 8001cb0: f002 fd5e bl 8004770 } 8001cb4: bf00 nop 8001cb6: 3728 adds r7, #40 @ 0x28 8001cb8: 46bd mov sp, r7 8001cba: bd80 pop {r7, pc} 8001cbc: 40012400 .word 0x40012400 8001cc0: 40021000 .word 0x40021000 8001cc4: 40010800 .word 0x40010800 8001cc8: 2000017c .word 0x2000017c 8001ccc: 40020008 .word 0x40020008 8001cd0: 40012800 .word 0x40012800 08001cd4 : ADS1015_I2C i2c; float ph_dut_samples[ADS1015_PH_AVERAGES]={0}; // Write the register static void writeRegister(ADS1015_I2C *i2c, uint8_t reg, uint16_t value) { 8001cd4: b580 push {r7, lr} 8001cd6: b086 sub sp, #24 8001cd8: af02 add r7, sp, #8 8001cda: 6078 str r0, [r7, #4] 8001cdc: 460b mov r3, r1 8001cde: 70fb strb r3, [r7, #3] 8001ce0: 4613 mov r3, r2 8001ce2: 803b strh r3, [r7, #0] uint8_t pData[3] = { reg, (uint8_t) (value >> 8), (uint8_t) (value & 0xFF) }; 8001ce4: 78fb ldrb r3, [r7, #3] 8001ce6: 733b strb r3, [r7, #12] 8001ce8: 883b ldrh r3, [r7, #0] 8001cea: 0a1b lsrs r3, r3, #8 8001cec: b29b uxth r3, r3 8001cee: b2db uxtb r3, r3 8001cf0: 737b strb r3, [r7, #13] 8001cf2: 883b ldrh r3, [r7, #0] 8001cf4: b2db uxtb r3, r3 8001cf6: 73bb strb r3, [r7, #14] HAL_I2C_Master_Transmit(i2c->hi2c, i2c->m_i2cAddress, pData, 3, 10); 8001cf8: 687b ldr r3, [r7, #4] 8001cfa: 68d8 ldr r0, [r3, #12] 8001cfc: 687b ldr r3, [r7, #4] 8001cfe: 8819 ldrh r1, [r3, #0] 8001d00: f107 020c add.w r2, r7, #12 8001d04: 230a movs r3, #10 8001d06: 9300 str r3, [sp, #0] 8001d08: 2303 movs r3, #3 8001d0a: f003 f841 bl 8004d90 } 8001d0e: bf00 nop 8001d10: 3710 adds r7, #16 8001d12: 46bd mov sp, r7 8001d14: bd80 pop {r7, pc} 08001d16 : // Read the register static uint16_t readRegister(ADS1015_I2C *i2c, uint8_t reg) { 8001d16: b580 push {r7, lr} 8001d18: b086 sub sp, #24 8001d1a: af02 add r7, sp, #8 8001d1c: 6078 str r0, [r7, #4] 8001d1e: 460b mov r3, r1 8001d20: 70fb strb r3, [r7, #3] HAL_I2C_Master_Transmit(i2c->hi2c, i2c->m_i2cAddress, ®, 1, 10); 8001d22: 687b ldr r3, [r7, #4] 8001d24: 68d8 ldr r0, [r3, #12] 8001d26: 687b ldr r3, [r7, #4] 8001d28: 8819 ldrh r1, [r3, #0] 8001d2a: 1cfa adds r2, r7, #3 8001d2c: 230a movs r3, #10 8001d2e: 9300 str r3, [sp, #0] 8001d30: 2301 movs r3, #1 8001d32: f003 f82d bl 8004d90 uint8_t pData[2] = { 0, 0 }; 8001d36: 2300 movs r3, #0 8001d38: 81bb strh r3, [r7, #12] HAL_I2C_Master_Receive(i2c->hi2c, i2c->m_i2cAddress, pData, 2, 10); 8001d3a: 687b ldr r3, [r7, #4] 8001d3c: 68d8 ldr r0, [r3, #12] 8001d3e: 687b ldr r3, [r7, #4] 8001d40: 8819 ldrh r1, [r3, #0] 8001d42: f107 020c add.w r2, r7, #12 8001d46: 230a movs r3, #10 8001d48: 9300 str r3, [sp, #0] 8001d4a: 2302 movs r3, #2 8001d4c: f003 f91e bl 8004f8c return ((pData[0] << 8) | pData[1]); 8001d50: 7b3b ldrb r3, [r7, #12] 8001d52: b21b sxth r3, r3 8001d54: 021b lsls r3, r3, #8 8001d56: b21a sxth r2, r3 8001d58: 7b7b ldrb r3, [r7, #13] 8001d5a: b21b sxth r3, r3 8001d5c: 4313 orrs r3, r2 8001d5e: b21b sxth r3, r3 8001d60: b29b uxth r3, r3 } 8001d62: 4618 mov r0, r3 8001d64: 3710 adds r7, #16 8001d66: 46bd mov sp, r7 8001d68: bd80 pop {r7, pc} 08001d6a : HAL_GPIO_WritePin(GPIOA, GPIO_PIN_5, GPIO_PIN_SET); // This MUST have GPIO PA5 ready to use - ERROR I2C - Wrong address } // Declare an ADS1015 structure void ADS1015(ADS1015_I2C *i2c, I2C_HandleTypeDef *hi2c, uint8_t i2cAddress) { 8001d6a: b480 push {r7} 8001d6c: b085 sub sp, #20 8001d6e: af00 add r7, sp, #0 8001d70: 60f8 str r0, [r7, #12] 8001d72: 60b9 str r1, [r7, #8] 8001d74: 4613 mov r3, r2 8001d76: 71fb strb r3, [r7, #7] i2c->hi2c = hi2c; 8001d78: 68fb ldr r3, [r7, #12] 8001d7a: 68ba ldr r2, [r7, #8] 8001d7c: 60da str r2, [r3, #12] i2c->m_i2cAddress = i2cAddress << 1; // It's Important to shift the address << 1 8001d7e: 79fb ldrb r3, [r7, #7] 8001d80: b29b uxth r3, r3 8001d82: 005b lsls r3, r3, #1 8001d84: b29a uxth r2, r3 8001d86: 68fb ldr r3, [r7, #12] 8001d88: 801a strh r2, [r3, #0] i2c->m_conversionDelay = ADS1015_CONVERSIONDELAY; 8001d8a: 68fb ldr r3, [r7, #12] 8001d8c: 2204 movs r2, #4 8001d8e: 605a str r2, [r3, #4] i2c->m_bitShift = 4; 8001d90: 68fb ldr r3, [r7, #12] 8001d92: 2204 movs r2, #4 8001d94: 721a strb r2, [r3, #8] i2c->m_gain = GAIN_TWOTHIRDS; /* +/- 6.144V range (limited to VDD +0.3V max!) */ 8001d96: 68fb ldr r3, [r7, #12] 8001d98: 2200 movs r2, #0 8001d9a: 815a strh r2, [r3, #10] //ADSbegin(i2c); //Ready is not used } 8001d9c: bf00 nop 8001d9e: 3714 adds r7, #20 8001da0: 46bd mov sp, r7 8001da2: bc80 pop {r7} 8001da4: 4770 bx lr 08001da6 : // ADSsetGain(GAIN_TWO); // 2x gain +/- 2.048V 1 bit = 1mV 0.0625mV // ADSsetGain(GAIN_FOUR); // 4x gain +/- 1.024V 1 bit = 0.5mV 0.03125mV // ADSsetGain(GAIN_EIGHT); // 8x gain +/- 0.512V 1 bit = 0.25mV 0.015625mV // ADSsetGain(GAIN_SIXTEEN); // 16x gain +/- 0.256V 1 bit = 0.125mV 0.0078125mV */ void ADSsetGain(ADS1015_I2C *i2c, adsGain_t gain) { 8001da6: b480 push {r7} 8001da8: b083 sub sp, #12 8001daa: af00 add r7, sp, #0 8001dac: 6078 str r0, [r7, #4] 8001dae: 460b mov r3, r1 8001db0: 807b strh r3, [r7, #2] i2c->m_gain = gain; 8001db2: 687b ldr r3, [r7, #4] 8001db4: 887a ldrh r2, [r7, #2] 8001db6: 815a strh r2, [r3, #10] } 8001db8: bf00 nop 8001dba: 370c adds r7, #12 8001dbc: 46bd mov sp, r7 8001dbe: bc80 pop {r7} 8001dc0: 4770 bx lr 08001dc2 : /* * Reads the conversion results, measuring the voltage * difference between the P (AIN0) and N (AIN1) input. Generates * a signed value since the difference can be either positive or negative. */ int16_t ADSreadADC_Differential_0_1(ADS1015_I2C *i2c) { 8001dc2: b580 push {r7, lr} 8001dc4: b084 sub sp, #16 8001dc6: af00 add r7, sp, #0 8001dc8: 6078 str r0, [r7, #4] // Start with default values uint16_t config = 8001dca: f240 1303 movw r3, #259 @ 0x103 8001dce: 81bb strh r3, [r7, #12] ADS1015_REG_CONFIG_CMODE_TRAD | // Traditional comparator (default val) ADS1015_REG_CONFIG_DR_128SPS | // 128 samples per second (default) ADS1015_REG_CONFIG_MODE_SINGLE; // Single-shot mode (default) // Set PGA/voltage range config |= i2c->m_gain; 8001dd0: 687b ldr r3, [r7, #4] 8001dd2: 895a ldrh r2, [r3, #10] 8001dd4: 89bb ldrh r3, [r7, #12] 8001dd6: 4313 orrs r3, r2 8001dd8: 81bb strh r3, [r7, #12] // Set channels config |= ADS1015_REG_CONFIG_MUX_DIFF_0_1; // AIN0 = P, AIN1 = N // Set 'start single-conversion' bit config |= ADS1015_REG_CONFIG_OS_SINGLE; 8001dda: 89bb ldrh r3, [r7, #12] 8001ddc: ea6f 4343 mvn.w r3, r3, lsl #17 8001de0: ea6f 4353 mvn.w r3, r3, lsr #17 8001de4: 81bb strh r3, [r7, #12] // Write config register to the ADC writeRegister(i2c, ADS1015_REG_POINTER_CONFIG, config); 8001de6: 89bb ldrh r3, [r7, #12] 8001de8: 461a mov r2, r3 8001dea: 2101 movs r1, #1 8001dec: 6878 ldr r0, [r7, #4] 8001dee: f7ff ff71 bl 8001cd4 // Wait for the conversion to complete HAL_Delay(i2c->m_conversionDelay); 8001df2: 687b ldr r3, [r7, #4] 8001df4: 685b ldr r3, [r3, #4] 8001df6: 4618 mov r0, r3 8001df8: f001 fa76 bl 80032e8 // Read the conversion results uint16_t res = readRegister(i2c, ADS1015_REG_POINTER_CONVERT) >> i2c->m_bitShift; 8001dfc: 2100 movs r1, #0 8001dfe: 6878 ldr r0, [r7, #4] 8001e00: f7ff ff89 bl 8001d16 8001e04: 4603 mov r3, r0 8001e06: 461a mov r2, r3 8001e08: 687b ldr r3, [r7, #4] 8001e0a: 7a1b ldrb r3, [r3, #8] 8001e0c: fa42 f303 asr.w r3, r2, r3 8001e10: 81fb strh r3, [r7, #14] if (i2c->m_bitShift == 0) { 8001e12: 687b ldr r3, [r7, #4] 8001e14: 7a1b ldrb r3, [r3, #8] 8001e16: 2b00 cmp r3, #0 8001e18: d102 bne.n 8001e20 return (int16_t) res; 8001e1a: f9b7 300e ldrsh.w r3, [r7, #14] 8001e1e: e00b b.n 8001e38 } else { // Shift 12-bit results right 4 bits for the ADS1015, // making sure we keep the sign bit intact if (res > 0x07FF) { 8001e20: 89fb ldrh r3, [r7, #14] 8001e22: f5b3 6f00 cmp.w r3, #2048 @ 0x800 8001e26: d305 bcc.n 8001e34 // negative number - extend the sign to 16th bit res |= 0xF000; 8001e28: 89fb ldrh r3, [r7, #14] 8001e2a: ea6f 5303 mvn.w r3, r3, lsl #20 8001e2e: ea6f 5313 mvn.w r3, r3, lsr #20 8001e32: 81fb strh r3, [r7, #14] } return (int16_t) res; 8001e34: f9b7 300e ldrsh.w r3, [r7, #14] } } 8001e38: 4618 mov r0, r3 8001e3a: 3710 adds r7, #16 8001e3c: 46bd mov sp, r7 8001e3e: bd80 pop {r7, pc} 08001e40 : return (int16_t) res; } } float ADSCalculate_ph_Volts(void) { 8001e40: b580 push {r7, lr} 8001e42: b082 sub sp, #8 8001e44: af00 add r7, sp, #0 float ph_dut_sum; uint8_t i; for (i = (ADS1015_PH_AVERAGES-1); i > 0; i--) 8001e46: 2307 movs r3, #7 8001e48: 70fb strb r3, [r7, #3] 8001e4a: e00b b.n 8001e64 ph_dut_samples[i] = ph_dut_samples[i-1]; 8001e4c: 78fb ldrb r3, [r7, #3] 8001e4e: 1e5a subs r2, r3, #1 8001e50: 78fb ldrb r3, [r7, #3] 8001e52: 4922 ldr r1, [pc, #136] @ (8001edc ) 8001e54: f851 2022 ldr.w r2, [r1, r2, lsl #2] 8001e58: 4920 ldr r1, [pc, #128] @ (8001edc ) 8001e5a: f841 2023 str.w r2, [r1, r3, lsl #2] for (i = (ADS1015_PH_AVERAGES-1); i > 0; i--) 8001e5e: 78fb ldrb r3, [r7, #3] 8001e60: 3b01 subs r3, #1 8001e62: 70fb strb r3, [r7, #3] 8001e64: 78fb ldrb r3, [r7, #3] 8001e66: 2b00 cmp r3, #0 8001e68: d1f0 bne.n 8001e4c ph_dut_samples[0] = (((float)(2048 - ADSreadADC_Differential_0_1(&i2c)) * ADS1015_ADC_VREF) / ADS1015_ADC_MAX); // 1. Converter leitura bruta do ADC para tensão real (Volts) 8001e6a: 481d ldr r0, [pc, #116] @ (8001ee0 ) 8001e6c: f7ff ffa9 bl 8001dc2 8001e70: 4603 mov r3, r0 8001e72: f5c3 6300 rsb r3, r3, #2048 @ 0x800 8001e76: 4618 mov r0, r3 8001e78: f7fe fefa bl 8000c70 <__aeabi_i2f> 8001e7c: 4603 mov r3, r0 8001e7e: 4919 ldr r1, [pc, #100] @ (8001ee4 ) 8001e80: 4618 mov r0, r3 8001e82: f7fe ff49 bl 8000d18 <__aeabi_fmul> 8001e86: 4603 mov r3, r0 8001e88: 4917 ldr r1, [pc, #92] @ (8001ee8 ) 8001e8a: 4618 mov r0, r3 8001e8c: f7fe fff8 bl 8000e80 <__aeabi_fdiv> 8001e90: 4603 mov r3, r0 8001e92: 461a mov r2, r3 8001e94: 4b11 ldr r3, [pc, #68] @ (8001edc ) 8001e96: 601a str r2, [r3, #0] for (i = 0, ph_dut_sum=0; i < ADS1015_PH_AVERAGES; i++) 8001e98: 2300 movs r3, #0 8001e9a: 70fb strb r3, [r7, #3] 8001e9c: f04f 0300 mov.w r3, #0 8001ea0: 607b str r3, [r7, #4] 8001ea2: e00c b.n 8001ebe ph_dut_sum += ph_dut_samples[i]; 8001ea4: 78fb ldrb r3, [r7, #3] 8001ea6: 4a0d ldr r2, [pc, #52] @ (8001edc ) 8001ea8: f852 3023 ldr.w r3, [r2, r3, lsl #2] 8001eac: 4619 mov r1, r3 8001eae: 6878 ldr r0, [r7, #4] 8001eb0: f7fe fe2a bl 8000b08 <__addsf3> 8001eb4: 4603 mov r3, r0 8001eb6: 607b str r3, [r7, #4] for (i = 0, ph_dut_sum=0; i < ADS1015_PH_AVERAGES; i++) 8001eb8: 78fb ldrb r3, [r7, #3] 8001eba: 3301 adds r3, #1 8001ebc: 70fb strb r3, [r7, #3] 8001ebe: 78fb ldrb r3, [r7, #3] 8001ec0: 2b07 cmp r3, #7 8001ec2: d9ef bls.n 8001ea4 ph_dut_sum /= ADS1015_PH_AVERAGES; 8001ec4: f04f 4182 mov.w r1, #1090519040 @ 0x41000000 8001ec8: 6878 ldr r0, [r7, #4] 8001eca: f7fe ffd9 bl 8000e80 <__aeabi_fdiv> 8001ece: 4603 mov r3, r0 8001ed0: 607b str r3, [r7, #4] return (ph_dut_sum); 8001ed2: 687b ldr r3, [r7, #4] } 8001ed4: 4618 mov r0, r3 8001ed6: 3708 adds r7, #8 8001ed8: 46bd mov sp, r7 8001eda: bd80 pop {r7, pc} 8001edc: 200001d0 .word 0x200001d0 8001ee0: 200001c0 .word 0x200001c0 8001ee4: 40533333 .word 0x40533333 8001ee8: 457ff000 .word 0x457ff000 08001eec : * @param temp_dut Temperatura atual medida em Celsius. * * @return float Valor de pH calculado (0.0 a 14.0). */ float ADSCalculate_ph_Compensated(int16_t adc_raw, float temp_dut) { 8001eec: b590 push {r4, r7, lr} 8001eee: b08b sub sp, #44 @ 0x2c 8001ef0: af00 add r7, sp, #0 8001ef2: 4603 mov r3, r0 8001ef4: 6039 str r1, [r7, #0] 8001ef6: 80fb strh r3, [r7, #6] // 1. Converter leitura bruta do ADC para tensão real (Volts) float v_measured = ((float)adc_raw * ADS1015_ADC_VREF) / ADS1015_ADC_MAX; 8001ef8: f9b7 3006 ldrsh.w r3, [r7, #6] 8001efc: 4618 mov r0, r3 8001efe: f7fe feb7 bl 8000c70 <__aeabi_i2f> 8001f02: 4603 mov r3, r0 8001f04: 4935 ldr r1, [pc, #212] @ (8001fdc ) 8001f06: 4618 mov r0, r3 8001f08: f7fe ff06 bl 8000d18 <__aeabi_fmul> 8001f0c: 4603 mov r3, r0 8001f0e: 4934 ldr r1, [pc, #208] @ (8001fe0 ) 8001f10: 4618 mov r0, r3 8001f12: f7fe ffb5 bl 8000e80 <__aeabi_fdiv> 8001f16: 4603 mov r3, r0 8001f18: 623b str r3, [r7, #32] // 2. Calcular o Slope original (medido na temperatura da calibração) // Delta pH é fixo em 3.0 (de pH 7 para pH 4) float delta_v_calib = flash_data.ph7_value - flash_data.ph4_value; 8001f1a: 4b32 ldr r3, [pc, #200] @ (8001fe4 ) 8001f1c: 689b ldr r3, [r3, #8] 8001f1e: 4a31 ldr r2, [pc, #196] @ (8001fe4 ) 8001f20: 6852 ldr r2, [r2, #4] 8001f22: 4611 mov r1, r2 8001f24: 4618 mov r0, r3 8001f26: f7fe fded bl 8000b04 <__aeabi_fsub> 8001f2a: 4603 mov r3, r0 8001f2c: 61fb str r3, [r7, #28] if (delta_v_calib == 0.0f) 8001f2e: f04f 0100 mov.w r1, #0 8001f32: 69f8 ldr r0, [r7, #28] 8001f34: f7ff f884 bl 8001040 <__aeabi_fcmpeq> 8001f38: 4603 mov r3, r0 8001f3a: 2b00 cmp r3, #0 8001f3c: d002 beq.n 8001f44 { return 0.0f; // Proteção contra erro de calibração/divisão por zero 8001f3e: f04f 0300 mov.w r3, #0 8001f42: e046 b.n 8001fd2 } float slope_at_calib = 3.0f / delta_v_calib; 8001f44: 69f9 ldr r1, [r7, #28] 8001f46: 4828 ldr r0, [pc, #160] @ (8001fe8 ) 8001f48: f7fe ff9a bl 8000e80 <__aeabi_fdiv> 8001f4c: 4603 mov r3, r0 8001f4e: 61bb str r3, [r7, #24] // 3. Calcular o Fator de Correção Térmica (Equação de Nernst) float temp_k_now = temp_dut + ADS1015_KELVIN_OFFSET; 8001f50: 4926 ldr r1, [pc, #152] @ (8001fec ) 8001f52: 6838 ldr r0, [r7, #0] 8001f54: f7fe fdd8 bl 8000b08 <__addsf3> 8001f58: 4603 mov r3, r0 8001f5a: 617b str r3, [r7, #20] float temp_k_ref = flash_data.temperature_value + ADS1015_KELVIN_OFFSET; 8001f5c: 4b21 ldr r3, [pc, #132] @ (8001fe4 ) 8001f5e: 695b ldr r3, [r3, #20] 8001f60: 4922 ldr r1, [pc, #136] @ (8001fec ) 8001f62: 4618 mov r0, r3 8001f64: f7fe fdd0 bl 8000b08 <__addsf3> 8001f68: 4603 mov r3, r0 8001f6a: 613b str r3, [r7, #16] // Fator: (T_atual / T_referencia) float thermal_factor = temp_k_now / temp_k_ref; 8001f6c: 6939 ldr r1, [r7, #16] 8001f6e: 6978 ldr r0, [r7, #20] 8001f70: f7fe ff86 bl 8000e80 <__aeabi_fdiv> 8001f74: 4603 mov r3, r0 8001f76: 60fb str r3, [r7, #12] /* * 4. Cálculo Final do pH * O Slope ajustado para a temperatura atual é: slope_at_calib / thermal_factor * Fórmula: pH = pH_ref + (V_medido - V_ref_7) * Slope_ajustado */ float ph_result = 7.0f + ((v_measured - flash_data.ph7_value) * (slope_at_calib / thermal_factor)); 8001f78: 4b1a ldr r3, [pc, #104] @ (8001fe4 ) 8001f7a: 689b ldr r3, [r3, #8] 8001f7c: 4619 mov r1, r3 8001f7e: 6a38 ldr r0, [r7, #32] 8001f80: f7fe fdc0 bl 8000b04 <__aeabi_fsub> 8001f84: 4603 mov r3, r0 8001f86: 461c mov r4, r3 8001f88: 68f9 ldr r1, [r7, #12] 8001f8a: 69b8 ldr r0, [r7, #24] 8001f8c: f7fe ff78 bl 8000e80 <__aeabi_fdiv> 8001f90: 4603 mov r3, r0 8001f92: 4619 mov r1, r3 8001f94: 4620 mov r0, r4 8001f96: f7fe febf bl 8000d18 <__aeabi_fmul> 8001f9a: 4603 mov r3, r0 8001f9c: 4914 ldr r1, [pc, #80] @ (8001ff0 ) 8001f9e: 4618 mov r0, r3 8001fa0: f7fe fdb2 bl 8000b08 <__addsf3> 8001fa4: 4603 mov r3, r0 8001fa6: 627b str r3, [r7, #36] @ 0x24 // 5. Clamping (Garantir limites físicos) if (ph_result < 0.0f) ph_result = 0.0f; 8001fa8: f04f 0100 mov.w r1, #0 8001fac: 6a78 ldr r0, [r7, #36] @ 0x24 8001fae: f7ff f851 bl 8001054 <__aeabi_fcmplt> 8001fb2: 4603 mov r3, r0 8001fb4: 2b00 cmp r3, #0 8001fb6: d002 beq.n 8001fbe 8001fb8: f04f 0300 mov.w r3, #0 8001fbc: 627b str r3, [r7, #36] @ 0x24 if (ph_result > 14.0f) ph_result = 14.0f; 8001fbe: 490d ldr r1, [pc, #52] @ (8001ff4 ) 8001fc0: 6a78 ldr r0, [r7, #36] @ 0x24 8001fc2: f7ff f865 bl 8001090 <__aeabi_fcmpgt> 8001fc6: 4603 mov r3, r0 8001fc8: 2b00 cmp r3, #0 8001fca: d001 beq.n 8001fd0 8001fcc: 4b09 ldr r3, [pc, #36] @ (8001ff4 ) 8001fce: 627b str r3, [r7, #36] @ 0x24 return ph_result; 8001fd0: 6a7b ldr r3, [r7, #36] @ 0x24 } 8001fd2: 4618 mov r0, r3 8001fd4: 372c adds r7, #44 @ 0x2c 8001fd6: 46bd mov sp, r7 8001fd8: bd90 pop {r4, r7, pc} 8001fda: bf00 nop 8001fdc: 40533333 .word 0x40533333 8001fe0: 457ff000 .word 0x457ff000 8001fe4: 200001f8 .word 0x200001f8 8001fe8: 40400000 .word 0x40400000 8001fec: 43889333 .word 0x43889333 8001ff0: 40e00000 .word 0x40e00000 8001ff4: 41600000 .word 0x41600000 08001ff8 : * @brief Initializes the GPIO hardware and sets initial states. * @note This function replaces the handle-based init. * @retval None */ void digital_outputs_init(void) { 8001ff8: b580 push {r7, lr} 8001ffa: b086 sub sp, #24 8001ffc: af00 add r7, sp, #0 GPIO_InitTypeDef GPIO_InitStruct = {0}; 8001ffe: 1d3b adds r3, r7, #4 8002000: 2200 movs r2, #0 8002002: 601a str r2, [r3, #0] 8002004: 605a str r2, [r3, #4] 8002006: 609a str r2, [r3, #8] 8002008: 60da str r2, [r3, #12] for (int i = 0; i < OUTPUT_PINS_COUNT; i++) { 800200a: 2300 movs r3, #0 800200c: 617b str r3, [r7, #20] 800200e: e029 b.n 8002064 GPIO_InitStruct.Pin = output_pins[i].pin; 8002010: 4a18 ldr r2, [pc, #96] @ (8002074 ) 8002012: 697b ldr r3, [r7, #20] 8002014: 00db lsls r3, r3, #3 8002016: 4413 add r3, r2 8002018: 889b ldrh r3, [r3, #4] 800201a: 607b str r3, [r7, #4] GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_OD; // Open-drain 800201c: 2311 movs r3, #17 800201e: 60bb str r3, [r7, #8] GPIO_InitStruct.Pull = GPIO_NOPULL; 8002020: 2300 movs r3, #0 8002022: 60fb str r3, [r7, #12] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; 8002024: 2302 movs r3, #2 8002026: 613b str r3, [r7, #16] HAL_GPIO_Init(output_pins[i].port, &GPIO_InitStruct); 8002028: 4a12 ldr r2, [pc, #72] @ (8002074 ) 800202a: 697b ldr r3, [r7, #20] 800202c: f852 3033 ldr.w r3, [r2, r3, lsl #3] 8002030: 1d3a adds r2, r7, #4 8002032: 4611 mov r1, r2 8002034: 4618 mov r0, r3 8002036: f002 fb9b bl 8004770 // Force initial state to LOW (Reset) HAL_GPIO_WritePin(output_pins[i].port, output_pins[i].pin, GPIO_PIN_RESET); 800203a: 4a0e ldr r2, [pc, #56] @ (8002074 ) 800203c: 697b ldr r3, [r7, #20] 800203e: f852 0033 ldr.w r0, [r2, r3, lsl #3] 8002042: 4a0c ldr r2, [pc, #48] @ (8002074 ) 8002044: 697b ldr r3, [r7, #20] 8002046: 00db lsls r3, r3, #3 8002048: 4413 add r3, r2 800204a: 889b ldrh r3, [r3, #4] 800204c: 2200 movs r2, #0 800204e: 4619 mov r1, r3 8002050: f002 fd29 bl 8004aa6 pin_states[i] = 0; 8002054: 4a08 ldr r2, [pc, #32] @ (8002078 ) 8002056: 697b ldr r3, [r7, #20] 8002058: 4413 add r3, r2 800205a: 2200 movs r2, #0 800205c: 701a strb r2, [r3, #0] for (int i = 0; i < OUTPUT_PINS_COUNT; i++) { 800205e: 697b ldr r3, [r7, #20] 8002060: 3301 adds r3, #1 8002062: 617b str r3, [r7, #20] 8002064: 697b ldr r3, [r7, #20] 8002066: 2b07 cmp r3, #7 8002068: ddd2 ble.n 8002010 } } 800206a: bf00 nop 800206c: bf00 nop 800206e: 3718 adds r7, #24 8002070: 46bd mov sp, r7 8002072: bd80 pop {r7, pc} 8002074: 08007a20 .word 0x08007a20 8002078: 200001f0 .word 0x200001f0 0800207c : /** * Enable DMA controller clock */ void MX_DMA_Init(void) { 800207c: b580 push {r7, lr} 800207e: b082 sub sp, #8 8002080: af00 add r7, sp, #0 /* DMA controller clock enable */ __HAL_RCC_DMA1_CLK_ENABLE(); 8002082: 4b0c ldr r3, [pc, #48] @ (80020b4 ) 8002084: 695b ldr r3, [r3, #20] 8002086: 4a0b ldr r2, [pc, #44] @ (80020b4 ) 8002088: f043 0301 orr.w r3, r3, #1 800208c: 6153 str r3, [r2, #20] 800208e: 4b09 ldr r3, [pc, #36] @ (80020b4 ) 8002090: 695b ldr r3, [r3, #20] 8002092: f003 0301 and.w r3, r3, #1 8002096: 607b str r3, [r7, #4] 8002098: 687b ldr r3, [r7, #4] /* DMA interrupt init */ /* DMA1_Channel1_IRQn interrupt configuration */ HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0); 800209a: 2200 movs r2, #0 800209c: 2100 movs r1, #0 800209e: 200b movs r0, #11 80020a0: f001 fe8d bl 8003dbe HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn); 80020a4: 200b movs r0, #11 80020a6: f001 fea6 bl 8003df6 } 80020aa: bf00 nop 80020ac: 3708 adds r7, #8 80020ae: 46bd mov sp, r7 80020b0: bd80 pop {r7, pc} 80020b2: bf00 nop 80020b4: 40021000 .word 0x40021000 080020b8 : * @return HAL_OK em caso de sucesso. */ FlashPage_t flash_data; HAL_StatusTypeDef Flash_Save_Page(FlashPage_t *pPage) { 80020b8: b5b0 push {r4, r5, r7, lr} 80020ba: b08c sub sp, #48 @ 0x30 80020bc: af00 add r7, sp, #0 80020be: 6078 str r0, [r7, #4] if (pPage == NULL) return HAL_ERROR; 80020c0: 687b ldr r3, [r7, #4] 80020c2: 2b00 cmp r3, #0 80020c4: d101 bne.n 80020ca 80020c6: 2301 movs r3, #1 80020c8: e04a b.n 8002160 HAL_StatusTypeDef status = HAL_OK; 80020ca: 2300 movs r3, #0 80020cc: f887 302f strb.w r3, [r7, #47] @ 0x2f HAL_FLASH_Unlock(); 80020d0: f002 f9be bl 8004450 // 1. Apagar a página inteira (limpa os 1024 bytes) FLASH_EraseInitTypeDef EraseInitStruct; uint32_t PageError = 0; 80020d4: 2300 movs r3, #0 80020d6: 60bb str r3, [r7, #8] EraseInitStruct.TypeErase = FLASH_TYPEERASE_PAGES; 80020d8: 2300 movs r3, #0 80020da: 60fb str r3, [r7, #12] EraseInitStruct.PageAddress = FLASH_PAGE_ADDR; 80020dc: 4b22 ldr r3, [pc, #136] @ (8002168 ) 80020de: 617b str r3, [r7, #20] EraseInitStruct.NbPages = 1; 80020e0: 2301 movs r3, #1 80020e2: 61bb str r3, [r7, #24] if (HAL_FLASHEx_Erase(&EraseInitStruct, &PageError) != HAL_OK) { 80020e4: f107 0208 add.w r2, r7, #8 80020e8: f107 030c add.w r3, r7, #12 80020ec: 4611 mov r1, r2 80020ee: 4618 mov r0, r3 80020f0: f002 fa96 bl 8004620 80020f4: 4603 mov r3, r0 80020f6: 2b00 cmp r3, #0 80020f8: d003 beq.n 8002102 status = HAL_ERROR; 80020fa: 2301 movs r3, #1 80020fc: f887 302f strb.w r3, [r7, #47] @ 0x2f goto Exit; 8002100: e02a b.n 8002158 // 2. Gravar o bloco de 1KB // Como a estrutura é exatamente 1KB e alinhada, podemos tratar como um array de uint32_t. // O STM32F1 grava preferencialmente em DoubleWord (64-bit), mas HalfWord (16-bit) // funciona de forma segura para qualquer tamanho múltiplo de 2. uint32_t *pSrc = (uint32_t *)pPage; 8002102: 687b ldr r3, [r7, #4] 8002104: 627b str r3, [r7, #36] @ 0x24 uint32_t *pDest = (uint32_t *)FLASH_PAGE_ADDR; 8002106: 4b18 ldr r3, [pc, #96] @ (8002168 ) 8002108: 623b str r3, [r7, #32] uint32_t iterations = FLASH_PAGE_SIZE / sizeof(uint32_t); // 1024 / 4 = 256 iterações 800210a: f44f 7380 mov.w r3, #256 @ 0x100 800210e: 61fb str r3, [r7, #28] for (uint32_t i = 0; i < iterations; i++) { 8002110: 2300 movs r3, #0 8002112: 62bb str r3, [r7, #40] @ 0x28 8002114: e01b b.n 800214e // Usamos o modo de gravação de 32-bit (Word) se disponível, // ou simulamos com duas gravações de 16-bit para máxima compatuidade no F1. if (HAL_FLASH_Program(FLASH_TYPEPROGRAM_WORD, (uint32_t)&pDest[i], pSrc[i]) != HAL_OK) { 8002116: 6abb ldr r3, [r7, #40] @ 0x28 8002118: 009b lsls r3, r3, #2 800211a: 6a3a ldr r2, [r7, #32] 800211c: 4413 add r3, r2 800211e: 4619 mov r1, r3 8002120: 6abb ldr r3, [r7, #40] @ 0x28 8002122: 009b lsls r3, r3, #2 8002124: 6a7a ldr r2, [r7, #36] @ 0x24 8002126: 4413 add r3, r2 8002128: 681b ldr r3, [r3, #0] 800212a: 2200 movs r2, #0 800212c: 461c mov r4, r3 800212e: 4615 mov r5, r2 8002130: 4622 mov r2, r4 8002132: 462b mov r3, r5 8002134: 2002 movs r0, #2 8002136: f002 f91b bl 8004370 800213a: 4603 mov r3, r0 800213c: 2b00 cmp r3, #0 800213e: d003 beq.n 8002148 status = HAL_ERROR; 8002140: 2301 movs r3, #1 8002142: f887 302f strb.w r3, [r7, #47] @ 0x2f break; 8002146: e007 b.n 8002158 for (uint32_t i = 0; i < iterations; i++) { 8002148: 6abb ldr r3, [r7, #40] @ 0x28 800214a: 3301 adds r3, #1 800214c: 62bb str r3, [r7, #40] @ 0x28 800214e: 6aba ldr r2, [r7, #40] @ 0x28 8002150: 69fb ldr r3, [r7, #28] 8002152: 429a cmp r2, r3 8002154: d3df bcc.n 8002116 } } Exit: 8002156: bf00 nop HAL_FLASH_Lock(); 8002158: f002 f9a0 bl 800449c return status; 800215c: f897 302f ldrb.w r3, [r7, #47] @ 0x2f } 8002160: 4618 mov r0, r3 8002162: 3730 adds r7, #48 @ 0x30 8002164: 46bd mov sp, r7 8002166: bdb0 pop {r4, r5, r7, pc} 8002168: 0800fc00 .word 0x0800fc00 0800216c : /** * @brief Lê a página da Flash para a RAM. */ HAL_StatusTypeDef Flash_Load_Page(FlashPage_t *pDest) { 800216c: b580 push {r7, lr} 800216e: b082 sub sp, #8 8002170: af00 add r7, sp, #0 8002172: 6078 str r0, [r7, #4] if (pDest == NULL) return HAL_ERROR; 8002174: 687b ldr r3, [r7, #4] 8002176: 2b00 cmp r3, #0 8002178: d101 bne.n 800217e 800217a: 2301 movs r3, #1 800217c: e00d b.n 800219a // Leitura direta por memcpy (A Flash é mapeada no espaço de endereçamento comum) memcpy(pDest, (void *)FLASH_PAGE_ADDR, FLASH_PAGE_SIZE); 800217e: f44f 6280 mov.w r2, #1024 @ 0x400 8002182: 4908 ldr r1, [pc, #32] @ (80021a4 ) 8002184: 6878 ldr r0, [r7, #4] 8002186: f005 fb7d bl 8007884 // Validação da integridade através do Magic Number if (pDest->magic_number != 0xDEADBEEF) { 800218a: 687b ldr r3, [r7, #4] 800218c: 681b ldr r3, [r3, #0] 800218e: 4a06 ldr r2, [pc, #24] @ (80021a8 ) 8002190: 4293 cmp r3, r2 8002192: d001 beq.n 8002198 return HAL_ERROR; 8002194: 2301 movs r3, #1 8002196: e000 b.n 800219a } return HAL_OK; 8002198: 2300 movs r3, #0 } 800219a: 4618 mov r0, r3 800219c: 3708 adds r7, #8 800219e: 46bd mov sp, r7 80021a0: bd80 pop {r7, pc} 80021a2: bf00 nop 80021a4: 0800fc00 .word 0x0800fc00 80021a8: deadbeef .word 0xdeadbeef 080021ac : * EXTI * Free pins are configured automatically as Analog (this feature is enabled through * the Code Generation settings) */ void MX_GPIO_Init(void) { 80021ac: b580 push {r7, lr} 80021ae: b088 sub sp, #32 80021b0: af00 add r7, sp, #0 GPIO_InitTypeDef GPIO_InitStruct = {0}; 80021b2: f107 0310 add.w r3, r7, #16 80021b6: 2200 movs r2, #0 80021b8: 601a str r2, [r3, #0] 80021ba: 605a str r2, [r3, #4] 80021bc: 609a str r2, [r3, #8] 80021be: 60da str r2, [r3, #12] /* GPIO Ports Clock Enable */ __HAL_RCC_GPIOC_CLK_ENABLE(); 80021c0: 4b50 ldr r3, [pc, #320] @ (8002304 ) 80021c2: 699b ldr r3, [r3, #24] 80021c4: 4a4f ldr r2, [pc, #316] @ (8002304 ) 80021c6: f043 0310 orr.w r3, r3, #16 80021ca: 6193 str r3, [r2, #24] 80021cc: 4b4d ldr r3, [pc, #308] @ (8002304 ) 80021ce: 699b ldr r3, [r3, #24] 80021d0: f003 0310 and.w r3, r3, #16 80021d4: 60fb str r3, [r7, #12] 80021d6: 68fb ldr r3, [r7, #12] __HAL_RCC_GPIOD_CLK_ENABLE(); 80021d8: 4b4a ldr r3, [pc, #296] @ (8002304 ) 80021da: 699b ldr r3, [r3, #24] 80021dc: 4a49 ldr r2, [pc, #292] @ (8002304 ) 80021de: f043 0320 orr.w r3, r3, #32 80021e2: 6193 str r3, [r2, #24] 80021e4: 4b47 ldr r3, [pc, #284] @ (8002304 ) 80021e6: 699b ldr r3, [r3, #24] 80021e8: f003 0320 and.w r3, r3, #32 80021ec: 60bb str r3, [r7, #8] 80021ee: 68bb ldr r3, [r7, #8] __HAL_RCC_GPIOA_CLK_ENABLE(); 80021f0: 4b44 ldr r3, [pc, #272] @ (8002304 ) 80021f2: 699b ldr r3, [r3, #24] 80021f4: 4a43 ldr r2, [pc, #268] @ (8002304 ) 80021f6: f043 0304 orr.w r3, r3, #4 80021fa: 6193 str r3, [r2, #24] 80021fc: 4b41 ldr r3, [pc, #260] @ (8002304 ) 80021fe: 699b ldr r3, [r3, #24] 8002200: f003 0304 and.w r3, r3, #4 8002204: 607b str r3, [r7, #4] 8002206: 687b ldr r3, [r7, #4] __HAL_RCC_GPIOB_CLK_ENABLE(); 8002208: 4b3e ldr r3, [pc, #248] @ (8002304 ) 800220a: 699b ldr r3, [r3, #24] 800220c: 4a3d ldr r2, [pc, #244] @ (8002304 ) 800220e: f043 0308 orr.w r3, r3, #8 8002212: 6193 str r3, [r2, #24] 8002214: 4b3b ldr r3, [pc, #236] @ (8002304 ) 8002216: 699b ldr r3, [r3, #24] 8002218: f003 0308 and.w r3, r3, #8 800221c: 603b str r3, [r7, #0] 800221e: 683b ldr r3, [r7, #0] /*Configure GPIO pin Output Level */ HAL_GPIO_WritePin(GPIOC, DIGI_OUT5_Pin|DIGI_OUT6_Pin|DIGI_OUT7_Pin, GPIO_PIN_RESET); 8002220: 2200 movs r2, #0 8002222: f44f 4160 mov.w r1, #57344 @ 0xe000 8002226: 4838 ldr r0, [pc, #224] @ (8002308 ) 8002228: f002 fc3d bl 8004aa6 /*Configure GPIO pin Output Level */ HAL_GPIO_WritePin(GPIOB, DIGI_OUT0_Pin|DIGI_OUT1_Pin|DIGI_OUT2_Pin|LED_Red_Pin 800222c: 2200 movs r2, #0 800222e: f240 3137 movw r1, #823 @ 0x337 8002232: 4836 ldr r0, [pc, #216] @ (800230c ) 8002234: f002 fc37 bl 8004aa6 |LED_Green_Pin|DIGI_OUT3_Pin|DIGI_OUT4_Pin, GPIO_PIN_RESET); /*Configure GPIO pin Output Level */ HAL_GPIO_WritePin(TX_EN_RS485_GPIO_Port, TX_EN_RS485_Pin, GPIO_PIN_RESET); 8002238: 2200 movs r2, #0 800223a: f44f 5180 mov.w r1, #4096 @ 0x1000 800223e: 4834 ldr r0, [pc, #208] @ (8002310 ) 8002240: f002 fc31 bl 8004aa6 /*Configure GPIO pins : DIGI_OUT5_Pin DIGI_OUT6_Pin DIGI_OUT7_Pin */ GPIO_InitStruct.Pin = DIGI_OUT5_Pin|DIGI_OUT6_Pin|DIGI_OUT7_Pin; 8002244: f44f 4360 mov.w r3, #57344 @ 0xe000 8002248: 613b str r3, [r7, #16] GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_OD; 800224a: 2311 movs r3, #17 800224c: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_NOPULL; 800224e: 2300 movs r3, #0 8002250: 61bb str r3, [r7, #24] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; 8002252: 2302 movs r3, #2 8002254: 61fb str r3, [r7, #28] HAL_GPIO_Init(GPIOC, &GPIO_InitStruct); 8002256: f107 0310 add.w r3, r7, #16 800225a: 4619 mov r1, r3 800225c: 482a ldr r0, [pc, #168] @ (8002308 ) 800225e: f002 fa87 bl 8004770 /*Configure GPIO pins : RS485_Addr0_Pin RS485_Addr1_Pin RS485_Addr2_Pin RS485_Addr3_Pin SYS_CFG0_Pin SYS_CFG1_Pin PG_RS485_Pin PG_CE_Pin PG_PH_Pin */ GPIO_InitStruct.Pin = RS485_Addr0_Pin|RS485_Addr1_Pin|RS485_Addr2_Pin|RS485_Addr3_Pin 8002262: f648 13fc movw r3, #35324 @ 0x89fc 8002266: 613b str r3, [r7, #16] |SYS_CFG0_Pin|SYS_CFG1_Pin|PG_RS485_Pin|PG_CE_Pin |PG_PH_Pin; GPIO_InitStruct.Mode = GPIO_MODE_INPUT; 8002268: 2300 movs r3, #0 800226a: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_PULLUP; 800226c: 2301 movs r3, #1 800226e: 61bb str r3, [r7, #24] HAL_GPIO_Init(GPIOA, &GPIO_InitStruct); 8002270: f107 0310 add.w r3, r7, #16 8002274: 4619 mov r1, r3 8002276: 4826 ldr r0, [pc, #152] @ (8002310 ) 8002278: f002 fa7a bl 8004770 /*Configure GPIO pins : DIGI_OUT0_Pin DIGI_OUT1_Pin DIGI_OUT2_Pin LED_Red_Pin LED_Green_Pin DIGI_OUT3_Pin DIGI_OUT4_Pin */ GPIO_InitStruct.Pin = DIGI_OUT0_Pin|DIGI_OUT1_Pin|DIGI_OUT2_Pin|LED_Red_Pin 800227c: f240 3337 movw r3, #823 @ 0x337 8002280: 613b str r3, [r7, #16] |LED_Green_Pin|DIGI_OUT3_Pin|DIGI_OUT4_Pin; GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_OD; 8002282: 2311 movs r3, #17 8002284: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_NOPULL; 8002286: 2300 movs r3, #0 8002288: 61bb str r3, [r7, #24] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; 800228a: 2302 movs r3, #2 800228c: 61fb str r3, [r7, #28] HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); 800228e: f107 0310 add.w r3, r7, #16 8002292: 4619 mov r1, r3 8002294: 481d ldr r0, [pc, #116] @ (800230c ) 8002296: f002 fa6b bl 8004770 /*Configure GPIO pins : RS485_Addr4_Pin RS485_Addr5_Pin RS485_Addr6_Pin RS485_Addr7_Pin */ GPIO_InitStruct.Pin = RS485_Addr4_Pin|RS485_Addr5_Pin|RS485_Addr6_Pin|RS485_Addr7_Pin; 800229a: f44f 4370 mov.w r3, #61440 @ 0xf000 800229e: 613b str r3, [r7, #16] GPIO_InitStruct.Mode = GPIO_MODE_INPUT; 80022a0: 2300 movs r3, #0 80022a2: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_PULLUP; 80022a4: 2301 movs r3, #1 80022a6: 61bb str r3, [r7, #24] HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); 80022a8: f107 0310 add.w r3, r7, #16 80022ac: 4619 mov r1, r3 80022ae: 4817 ldr r0, [pc, #92] @ (800230c ) 80022b0: f002 fa5e bl 8004770 /*Configure GPIO pin : TX_EN_RS485_Pin */ GPIO_InitStruct.Pin = TX_EN_RS485_Pin; 80022b4: f44f 5380 mov.w r3, #4096 @ 0x1000 80022b8: 613b str r3, [r7, #16] GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP; 80022ba: 2301 movs r3, #1 80022bc: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_NOPULL; 80022be: 2300 movs r3, #0 80022c0: 61bb str r3, [r7, #24] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; 80022c2: 2302 movs r3, #2 80022c4: 61fb str r3, [r7, #28] HAL_GPIO_Init(TX_EN_RS485_GPIO_Port, &GPIO_InitStruct); 80022c6: f107 0310 add.w r3, r7, #16 80022ca: 4619 mov r1, r3 80022cc: 4810 ldr r0, [pc, #64] @ (8002310 ) 80022ce: f002 fa4f bl 8004770 /*Configure GPIO pin : Calib_PH_Pin */ GPIO_InitStruct.Pin = Calib_PH_Pin; 80022d2: 2308 movs r3, #8 80022d4: 613b str r3, [r7, #16] GPIO_InitStruct.Mode = GPIO_MODE_IT_RISING_FALLING; 80022d6: 4b0f ldr r3, [pc, #60] @ (8002314 ) 80022d8: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_PULLUP; 80022da: 2301 movs r3, #1 80022dc: 61bb str r3, [r7, #24] HAL_GPIO_Init(Calib_PH_GPIO_Port, &GPIO_InitStruct); 80022de: f107 0310 add.w r3, r7, #16 80022e2: 4619 mov r1, r3 80022e4: 4809 ldr r0, [pc, #36] @ (800230c ) 80022e6: f002 fa43 bl 8004770 /* EXTI interrupt init*/ HAL_NVIC_SetPriority(EXTI3_IRQn, 0, 0); 80022ea: 2200 movs r2, #0 80022ec: 2100 movs r1, #0 80022ee: 2009 movs r0, #9 80022f0: f001 fd65 bl 8003dbe HAL_NVIC_EnableIRQ(EXTI3_IRQn); 80022f4: 2009 movs r0, #9 80022f6: f001 fd7e bl 8003df6 } 80022fa: bf00 nop 80022fc: 3720 adds r7, #32 80022fe: 46bd mov sp, r7 8002300: bd80 pop {r7, pc} 8002302: bf00 nop 8002304: 40021000 .word 0x40021000 8002308: 40011000 .word 0x40011000 800230c: 40010c00 .word 0x40010c00 8002310: 40010800 .word 0x40010800 8002314: 10310000 .word 0x10310000 08002318 : * It distinguishes between rising and falling edges by reading the pin state. * @param GPIO_Pin: Specifies the pins connected to the EXTI line. * @retval None */ void HAL_GPIO_EXTI_Callback(uint16_t GPIO_Pin) { 8002318: b580 push {r7, lr} 800231a: b084 sub sp, #16 800231c: af00 add r7, sp, #0 800231e: 4603 mov r3, r0 8002320: 80fb strh r3, [r7, #6] if ((GPIO_Pin == Calib_PH_Pin) && (main_state == STATE_RUNNING_OK)) 8002322: 88fb ldrh r3, [r7, #6] 8002324: 2b08 cmp r3, #8 8002326: d13f bne.n 80023a8 8002328: 4b21 ldr r3, [pc, #132] @ (80023b0 ) 800232a: 781b ldrb r3, [r3, #0] 800232c: 2b00 cmp r3, #0 800232e: d13b bne.n 80023a8 { uint32_t current_time = HAL_GetTick(); 8002330: f000 ffd0 bl 80032d4 8002334: 60f8 str r0, [r7, #12] GPIO_PinState pin_state = HAL_GPIO_ReadPin(GPIOB, GPIO_PIN_3); 8002336: 2108 movs r1, #8 8002338: 481e ldr r0, [pc, #120] @ (80023b4 ) 800233a: f002 fb9d bl 8004a78 800233e: 4603 mov r3, r0 8002340: 72fb strb r3, [r7, #11] if(pin_state != last_original_pin) 8002342: 4b1d ldr r3, [pc, #116] @ (80023b8 ) 8002344: 781b ldrb r3, [r3, #0] 8002346: b2db uxtb r3, r3 8002348: 7afa ldrb r2, [r7, #11] 800234a: 429a cmp r2, r3 800234c: d02c beq.n 80023a8 { if(first_time_state == 1) 800234e: 4b1b ldr r3, [pc, #108] @ (80023bc ) 8002350: 781b ldrb r3, [r3, #0] 8002352: b2db uxtb r3, r3 8002354: 2b01 cmp r3, #1 8002356: d106 bne.n 8002366 { original_pin_state = pin_state; 8002358: 4a19 ldr r2, [pc, #100] @ (80023c0 ) 800235a: 7afb ldrb r3, [r7, #11] 800235c: 7013 strb r3, [r2, #0] first_time_state = 0; 800235e: 4b17 ldr r3, [pc, #92] @ (80023bc ) 8002360: 2200 movs r2, #0 8002362: 701a strb r2, [r3, #0] last_original_pin = original_pin_state; first_time_state = 1; } } } } 8002364: e020 b.n 80023a8 else if(((current_time - last_interrupt_time) > 70U) && (pin_state == original_pin_state)) 8002366: 4b17 ldr r3, [pc, #92] @ (80023c4 ) 8002368: 681b ldr r3, [r3, #0] 800236a: 68fa ldr r2, [r7, #12] 800236c: 1ad3 subs r3, r2, r3 800236e: 2b46 cmp r3, #70 @ 0x46 8002370: d91a bls.n 80023a8 8002372: 4b13 ldr r3, [pc, #76] @ (80023c0 ) 8002374: 781b ldrb r3, [r3, #0] 8002376: b2db uxtb r3, r3 8002378: 7afa ldrb r2, [r7, #11] 800237a: 429a cmp r2, r3 800237c: d114 bne.n 80023a8 if(pin_state == GPIO_PIN_RESET) 800237e: 7afb ldrb r3, [r7, #11] 8002380: 2b00 cmp r3, #0 8002382: d103 bne.n 800238c edge_state = FALLING_EDGE; 8002384: 4b10 ldr r3, [pc, #64] @ (80023c8 ) 8002386: 22ff movs r2, #255 @ 0xff 8002388: 701a strb r2, [r3, #0] 800238a: e002 b.n 8002392 edge_state = RISING_EDGE; 800238c: 4b0e ldr r3, [pc, #56] @ (80023c8 ) 800238e: 2201 movs r2, #1 8002390: 701a strb r2, [r3, #0] last_interrupt_time = current_time; 8002392: 4a0c ldr r2, [pc, #48] @ (80023c4 ) 8002394: 68fb ldr r3, [r7, #12] 8002396: 6013 str r3, [r2, #0] last_original_pin = original_pin_state; 8002398: 4b09 ldr r3, [pc, #36] @ (80023c0 ) 800239a: 781b ldrb r3, [r3, #0] 800239c: b2da uxtb r2, r3 800239e: 4b06 ldr r3, [pc, #24] @ (80023b8 ) 80023a0: 701a strb r2, [r3, #0] first_time_state = 1; 80023a2: 4b06 ldr r3, [pc, #24] @ (80023bc ) 80023a4: 2201 movs r2, #1 80023a6: 701a strb r2, [r3, #0] } 80023a8: bf00 nop 80023aa: 3710 adds r7, #16 80023ac: 46bd mov sp, r7 80023ae: bd80 pop {r7, pc} 80023b0: 200006a8 .word 0x200006a8 80023b4: 40010c00 .word 0x40010c00 80023b8: 20000001 .word 0x20000001 80023bc: 20000000 .word 0x20000000 80023c0: 200005fc .word 0x200005fc 80023c4: 200005f8 .word 0x200005f8 80023c8: 200005fd .word 0x200005fd 080023cc : I2C_HandleTypeDef hi2c1; I2C_HandleTypeDef hi2c2; /* I2C1 init function */ void MX_I2C1_Init(void) { 80023cc: b580 push {r7, lr} 80023ce: af00 add r7, sp, #0 /* USER CODE END I2C1_Init 0 */ /* USER CODE BEGIN I2C1_Init 1 */ /* USER CODE END I2C1_Init 1 */ hi2c1.Instance = I2C1; 80023d0: 4b12 ldr r3, [pc, #72] @ (800241c ) 80023d2: 4a13 ldr r2, [pc, #76] @ (8002420 ) 80023d4: 601a str r2, [r3, #0] hi2c1.Init.ClockSpeed = 100000; 80023d6: 4b11 ldr r3, [pc, #68] @ (800241c ) 80023d8: 4a12 ldr r2, [pc, #72] @ (8002424 ) 80023da: 605a str r2, [r3, #4] hi2c1.Init.DutyCycle = I2C_DUTYCYCLE_2; 80023dc: 4b0f ldr r3, [pc, #60] @ (800241c ) 80023de: 2200 movs r2, #0 80023e0: 609a str r2, [r3, #8] hi2c1.Init.OwnAddress1 = 0; 80023e2: 4b0e ldr r3, [pc, #56] @ (800241c ) 80023e4: 2200 movs r2, #0 80023e6: 60da str r2, [r3, #12] hi2c1.Init.AddressingMode = I2C_ADDRESSINGMODE_7BIT; 80023e8: 4b0c ldr r3, [pc, #48] @ (800241c ) 80023ea: f44f 4280 mov.w r2, #16384 @ 0x4000 80023ee: 611a str r2, [r3, #16] hi2c1.Init.DualAddressMode = I2C_DUALADDRESS_DISABLE; 80023f0: 4b0a ldr r3, [pc, #40] @ (800241c ) 80023f2: 2200 movs r2, #0 80023f4: 615a str r2, [r3, #20] hi2c1.Init.OwnAddress2 = 0; 80023f6: 4b09 ldr r3, [pc, #36] @ (800241c ) 80023f8: 2200 movs r2, #0 80023fa: 619a str r2, [r3, #24] hi2c1.Init.GeneralCallMode = I2C_GENERALCALL_DISABLE; 80023fc: 4b07 ldr r3, [pc, #28] @ (800241c ) 80023fe: 2200 movs r2, #0 8002400: 61da str r2, [r3, #28] hi2c1.Init.NoStretchMode = I2C_NOSTRETCH_DISABLE; 8002402: 4b06 ldr r3, [pc, #24] @ (800241c ) 8002404: 2200 movs r2, #0 8002406: 621a str r2, [r3, #32] if (HAL_I2C_Init(&hi2c1) != HAL_OK) 8002408: 4804 ldr r0, [pc, #16] @ (800241c ) 800240a: f002 fb7d bl 8004b08 800240e: 4603 mov r3, r0 8002410: 2b00 cmp r3, #0 8002412: d001 beq.n 8002418 { Error_Handler(); 8002414: f000 fc7c bl 8002d10 } /* USER CODE BEGIN I2C1_Init 2 */ /* USER CODE END I2C1_Init 2 */ } 8002418: bf00 nop 800241a: bd80 pop {r7, pc} 800241c: 20000600 .word 0x20000600 8002420: 40005400 .word 0x40005400 8002424: 000186a0 .word 0x000186a0 08002428 : /* I2C2 init function */ void MX_I2C2_Init(void) { 8002428: b580 push {r7, lr} 800242a: af00 add r7, sp, #0 /* USER CODE END I2C2_Init 0 */ /* USER CODE BEGIN I2C2_Init 1 */ /* USER CODE END I2C2_Init 1 */ hi2c2.Instance = I2C2; 800242c: 4b12 ldr r3, [pc, #72] @ (8002478 ) 800242e: 4a13 ldr r2, [pc, #76] @ (800247c ) 8002430: 601a str r2, [r3, #0] hi2c2.Init.ClockSpeed = 100000; 8002432: 4b11 ldr r3, [pc, #68] @ (8002478 ) 8002434: 4a12 ldr r2, [pc, #72] @ (8002480 ) 8002436: 605a str r2, [r3, #4] hi2c2.Init.DutyCycle = I2C_DUTYCYCLE_2; 8002438: 4b0f ldr r3, [pc, #60] @ (8002478 ) 800243a: 2200 movs r2, #0 800243c: 609a str r2, [r3, #8] hi2c2.Init.OwnAddress1 = 0; 800243e: 4b0e ldr r3, [pc, #56] @ (8002478 ) 8002440: 2200 movs r2, #0 8002442: 60da str r2, [r3, #12] hi2c2.Init.AddressingMode = I2C_ADDRESSINGMODE_7BIT; 8002444: 4b0c ldr r3, [pc, #48] @ (8002478 ) 8002446: f44f 4280 mov.w r2, #16384 @ 0x4000 800244a: 611a str r2, [r3, #16] hi2c2.Init.DualAddressMode = I2C_DUALADDRESS_DISABLE; 800244c: 4b0a ldr r3, [pc, #40] @ (8002478 ) 800244e: 2200 movs r2, #0 8002450: 615a str r2, [r3, #20] hi2c2.Init.OwnAddress2 = 0; 8002452: 4b09 ldr r3, [pc, #36] @ (8002478 ) 8002454: 2200 movs r2, #0 8002456: 619a str r2, [r3, #24] hi2c2.Init.GeneralCallMode = I2C_GENERALCALL_DISABLE; 8002458: 4b07 ldr r3, [pc, #28] @ (8002478 ) 800245a: 2200 movs r2, #0 800245c: 61da str r2, [r3, #28] hi2c2.Init.NoStretchMode = I2C_NOSTRETCH_DISABLE; 800245e: 4b06 ldr r3, [pc, #24] @ (8002478 ) 8002460: 2200 movs r2, #0 8002462: 621a str r2, [r3, #32] if (HAL_I2C_Init(&hi2c2) != HAL_OK) 8002464: 4804 ldr r0, [pc, #16] @ (8002478 ) 8002466: f002 fb4f bl 8004b08 800246a: 4603 mov r3, r0 800246c: 2b00 cmp r3, #0 800246e: d001 beq.n 8002474 { Error_Handler(); 8002470: f000 fc4e bl 8002d10 } /* USER CODE BEGIN I2C2_Init 2 */ /* USER CODE END I2C2_Init 2 */ } 8002474: bf00 nop 8002476: bd80 pop {r7, pc} 8002478: 20000654 .word 0x20000654 800247c: 40005800 .word 0x40005800 8002480: 000186a0 .word 0x000186a0 08002484 : void HAL_I2C_MspInit(I2C_HandleTypeDef* i2cHandle) { 8002484: b580 push {r7, lr} 8002486: b08a sub sp, #40 @ 0x28 8002488: af00 add r7, sp, #0 800248a: 6078 str r0, [r7, #4] GPIO_InitTypeDef GPIO_InitStruct = {0}; 800248c: f107 0318 add.w r3, r7, #24 8002490: 2200 movs r2, #0 8002492: 601a str r2, [r3, #0] 8002494: 605a str r2, [r3, #4] 8002496: 609a str r2, [r3, #8] 8002498: 60da str r2, [r3, #12] if(i2cHandle->Instance==I2C1) 800249a: 687b ldr r3, [r7, #4] 800249c: 681b ldr r3, [r3, #0] 800249e: 4a2b ldr r2, [pc, #172] @ (800254c ) 80024a0: 4293 cmp r3, r2 80024a2: d124 bne.n 80024ee { /* USER CODE BEGIN I2C1_MspInit 0 */ /* USER CODE END I2C1_MspInit 0 */ __HAL_RCC_GPIOB_CLK_ENABLE(); 80024a4: 4b2a ldr r3, [pc, #168] @ (8002550 ) 80024a6: 699b ldr r3, [r3, #24] 80024a8: 4a29 ldr r2, [pc, #164] @ (8002550 ) 80024aa: f043 0308 orr.w r3, r3, #8 80024ae: 6193 str r3, [r2, #24] 80024b0: 4b27 ldr r3, [pc, #156] @ (8002550 ) 80024b2: 699b ldr r3, [r3, #24] 80024b4: f003 0308 and.w r3, r3, #8 80024b8: 617b str r3, [r7, #20] 80024ba: 697b ldr r3, [r7, #20] /**I2C1 GPIO Configuration PB6 ------> I2C1_SCL PB7 ------> I2C1_SDA */ GPIO_InitStruct.Pin = I2C1_SCL_PH_Pin|I2C1_SDA_PH_Pin; 80024bc: 23c0 movs r3, #192 @ 0xc0 80024be: 61bb str r3, [r7, #24] GPIO_InitStruct.Mode = GPIO_MODE_AF_OD; 80024c0: 2312 movs r3, #18 80024c2: 61fb str r3, [r7, #28] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; 80024c4: 2302 movs r3, #2 80024c6: 627b str r3, [r7, #36] @ 0x24 HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); 80024c8: f107 0318 add.w r3, r7, #24 80024cc: 4619 mov r1, r3 80024ce: 4821 ldr r0, [pc, #132] @ (8002554 ) 80024d0: f002 f94e bl 8004770 /* I2C1 clock enable */ __HAL_RCC_I2C1_CLK_ENABLE(); 80024d4: 4b1e ldr r3, [pc, #120] @ (8002550 ) 80024d6: 69db ldr r3, [r3, #28] 80024d8: 4a1d ldr r2, [pc, #116] @ (8002550 ) 80024da: f443 1300 orr.w r3, r3, #2097152 @ 0x200000 80024de: 61d3 str r3, [r2, #28] 80024e0: 4b1b ldr r3, [pc, #108] @ (8002550 ) 80024e2: 69db ldr r3, [r3, #28] 80024e4: f403 1300 and.w r3, r3, #2097152 @ 0x200000 80024e8: 613b str r3, [r7, #16] 80024ea: 693b ldr r3, [r7, #16] __HAL_RCC_I2C2_CLK_ENABLE(); /* USER CODE BEGIN I2C2_MspInit 1 */ /* USER CODE END I2C2_MspInit 1 */ } } 80024ec: e029 b.n 8002542 else if(i2cHandle->Instance==I2C2) 80024ee: 687b ldr r3, [r7, #4] 80024f0: 681b ldr r3, [r3, #0] 80024f2: 4a19 ldr r2, [pc, #100] @ (8002558 ) 80024f4: 4293 cmp r3, r2 80024f6: d124 bne.n 8002542 __HAL_RCC_GPIOB_CLK_ENABLE(); 80024f8: 4b15 ldr r3, [pc, #84] @ (8002550 ) 80024fa: 699b ldr r3, [r3, #24] 80024fc: 4a14 ldr r2, [pc, #80] @ (8002550 ) 80024fe: f043 0308 orr.w r3, r3, #8 8002502: 6193 str r3, [r2, #24] 8002504: 4b12 ldr r3, [pc, #72] @ (8002550 ) 8002506: 699b ldr r3, [r3, #24] 8002508: f003 0308 and.w r3, r3, #8 800250c: 60fb str r3, [r7, #12] 800250e: 68fb ldr r3, [r7, #12] GPIO_InitStruct.Pin = I2C2_SCL_CE_Pin|I2C2_SDA_CE_Pin; 8002510: f44f 6340 mov.w r3, #3072 @ 0xc00 8002514: 61bb str r3, [r7, #24] GPIO_InitStruct.Mode = GPIO_MODE_AF_OD; 8002516: 2312 movs r3, #18 8002518: 61fb str r3, [r7, #28] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; 800251a: 2302 movs r3, #2 800251c: 627b str r3, [r7, #36] @ 0x24 HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); 800251e: f107 0318 add.w r3, r7, #24 8002522: 4619 mov r1, r3 8002524: 480b ldr r0, [pc, #44] @ (8002554 ) 8002526: f002 f923 bl 8004770 __HAL_RCC_I2C2_CLK_ENABLE(); 800252a: 4b09 ldr r3, [pc, #36] @ (8002550 ) 800252c: 69db ldr r3, [r3, #28] 800252e: 4a08 ldr r2, [pc, #32] @ (8002550 ) 8002530: f443 0380 orr.w r3, r3, #4194304 @ 0x400000 8002534: 61d3 str r3, [r2, #28] 8002536: 4b06 ldr r3, [pc, #24] @ (8002550 ) 8002538: 69db ldr r3, [r3, #28] 800253a: f403 0380 and.w r3, r3, #4194304 @ 0x400000 800253e: 60bb str r3, [r7, #8] 8002540: 68bb ldr r3, [r7, #8] } 8002542: bf00 nop 8002544: 3728 adds r7, #40 @ 0x28 8002546: 46bd mov sp, r7 8002548: bd80 pop {r7, pc} 800254a: bf00 nop 800254c: 40005400 .word 0x40005400 8002550: 40021000 .word 0x40021000 8002554: 40010c00 .word 0x40010c00 8002558: 40005800 .word 0x40005800 800255c: 00000000 .word 0x00000000 08002560
: /** * @brief The application entry point. * @retval int */ int main(void) { 8002560: b580 push {r7, lr} 8002562: b08c sub sp, #48 @ 0x30 8002564: af00 add r7, sp, #0 /* USER CODE BEGIN 1 */ HAL_StatusTypeDef status0,status1; // Variables to store previous LED states uint8_t previous_green_state = 0; 8002566: 2300 movs r3, #0 8002568: f887 302a strb.w r3, [r7, #42] @ 0x2a uint8_t previous_red_state = 0; 800256c: 2300 movs r3, #0 800256e: f887 3029 strb.w r3, [r7, #41] @ 0x29 // Variables for timing uint32_t previous_millis_green = 0; 8002572: 2300 movs r3, #0 8002574: 62fb str r3, [r7, #44] @ 0x2c uint32_t previous_millis_red = 0; 8002576: 2300 movs r3, #0 8002578: 627b str r3, [r7, #36] @ 0x24 /*! Temporary variables */ uint8_t tempString[10] = {0, 0, 0, 0, 0, 0, 0, 0, 0, 0}; 800257a: 1d3b adds r3, r7, #4 800257c: 2200 movs r2, #0 800257e: 601a str r2, [r3, #0] 8002580: 605a str r2, [r3, #4] 8002582: 811a strh r2, [r3, #8] /* USER CODE END 1 */ /* MCU Configuration--------------------------------------------------------*/ /* Reset of all peripherals, Initializes the Flash interface and the Systick. */ HAL_Init(); 8002584: f000 fe4e bl 8003224 /* USER CODE BEGIN Init */ /* USER CODE END Init */ /* Configure the system clock */ SystemClock_Config(); 8002588: f000 fa44 bl 8002a14 /* USER CODE BEGIN SysInit */ /* USER CODE END SysInit */ /* Initialize all configured peripherals */ MX_GPIO_Init(); 800258c: f7ff fe0e bl 80021ac MX_DMA_Init(); 8002590: f7ff fd74 bl 800207c MX_ADC1_Init(); 8002594: f7ff fa80 bl 8001a98 MX_ADC2_Init(); 8002598: f7ff facc bl 8001b34 MX_I2C1_Init(); 800259c: f7ff ff16 bl 80023cc MX_I2C2_Init(); 80025a0: f7ff ff42 bl 8002428 MX_USART1_UART_Init(); 80025a4: f000 fd9a bl 80030dc MX_TIM3_Init(); 80025a8: f000 fd2c bl 8003004 /* USER CODE BEGIN 2 */ Flash_Load_Page(&flash_data); 80025ac: 48c2 ldr r0, [pc, #776] @ (80028b8 ) 80025ae: f7ff fddd bl 800216c //TempSensor_Init(&hadc1); HAL_TIM_Base_Start(&htim3); 80025b2: 48c2 ldr r0, [pc, #776] @ (80028bc ) 80025b4: f004 f8aa bl 800670c HAL_ADCEx_Calibration_Start(&hadc1); 80025b8: 48c1 ldr r0, [pc, #772] @ (80028c0 ) 80025ba: f001 fa7b bl 8003ab4 HAL_ADC_Start_DMA(&hadc1, (uint32_t*)AD_RES, 2); // Start ADC Conversion 80025be: 2202 movs r2, #2 80025c0: 49c0 ldr r1, [pc, #768] @ (80028c4 ) 80025c2: 48bf ldr r0, [pc, #764] @ (80028c0 ) 80025c4: f000 ff8c bl 80034e0 digital_outputs_init(); 80025c8: f7ff fd16 bl 8001ff8 // Initialize RS-485 driver rs485_init(); 80025cc: f000 fbb2 bl 8002d34 ADS1015(&i2c, &hi2c1, ADS_ADDR_GND); 80025d0: 2248 movs r2, #72 @ 0x48 80025d2: 49bd ldr r1, [pc, #756] @ (80028c8 ) 80025d4: 48bd ldr r0, [pc, #756] @ (80028cc ) 80025d6: f7ff fbc8 bl 8001d6a ADSsetGain(&i2c, GAIN_SIXTEEN); 80025da: f44f 6120 mov.w r1, #2560 @ 0xa00 80025de: 48bb ldr r0, [pc, #748] @ (80028cc ) 80025e0: f7ff fbe1 bl 8001da6 // Start CE and RTD Measurement AD5934_Init(); 80025e4: f7fe fe14 bl 8001210 /* USER CODE END 2 */ /* Infinite loop */ /* USER CODE BEGIN WHILE */ if(HAL_GPIO_ReadPin(GPIOB, GPIO_PIN_3) == GPIO_PIN_RESET) 80025e8: 2108 movs r1, #8 80025ea: 48b9 ldr r0, [pc, #740] @ (80028d0 ) 80025ec: f002 fa44 bl 8004a78 80025f0: 4603 mov r3, r0 80025f2: 2b00 cmp r3, #0 80025f4: d167 bne.n 80026c6 { main_state = STATE_SETUP_CALIBRATION; 80025f6: 4bb7 ldr r3, [pc, #732] @ (80028d4 ) 80025f8: 2201 movs r2, #1 80025fa: 701a strb r2, [r3, #0] HAL_GPIO_WritePin(GPIOB, GPIO_PIN_4, GPIO_PIN_SET); 80025fc: 2201 movs r2, #1 80025fe: 2110 movs r1, #16 8002600: 48b3 ldr r0, [pc, #716] @ (80028d0 ) 8002602: f002 fa50 bl 8004aa6 HAL_GPIO_WritePin(GPIOB, GPIO_PIN_5, GPIO_PIN_RESET); // Red LED On 8002606: 2200 movs r2, #0 8002608: 2120 movs r1, #32 800260a: 48b1 ldr r0, [pc, #708] @ (80028d0 ) 800260c: f002 fa4b bl 8004aa6 for(i=0;i<32;i++) 8002610: 2300 movs r3, #0 8002612: f887 302b strb.w r3, [r7, #43] @ 0x2b 8002616: e011 b.n 800263c { flash_data.temperature_value = temperature_RTD; 8002618: 4aa7 ldr r2, [pc, #668] @ (80028b8 ) 800261a: 6a3b ldr r3, [r7, #32] 800261c: 6153 str r3, [r2, #20] flash_data.ph4_value = ADSCalculate_ph_Volts(); 800261e: f7ff fc0f bl 8001e40 8002622: 4603 mov r3, r0 8002624: 4aa4 ldr r2, [pc, #656] @ (80028b8 ) 8002626: 6053 str r3, [r2, #4] flash_data.ec1413_value = AD5934_GetImpedance(); 8002628: f7ff f846 bl 80016b8 800262c: 4603 mov r3, r0 800262e: 4aa2 ldr r2, [pc, #648] @ (80028b8 ) 8002630: 60d3 str r3, [r2, #12] for(i=0;i<32;i++) 8002632: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 8002636: 3301 adds r3, #1 8002638: f887 302b strb.w r3, [r7, #43] @ 0x2b 800263c: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 8002640: 2b1f cmp r3, #31 8002642: d9e9 bls.n 8002618 } while(HAL_GPIO_ReadPin(GPIOB, GPIO_PIN_3) == GPIO_PIN_RESET); 8002644: bf00 nop 8002646: 2108 movs r1, #8 8002648: 48a1 ldr r0, [pc, #644] @ (80028d0 ) 800264a: f002 fa15 bl 8004a78 800264e: 4603 mov r3, r0 8002650: 2b00 cmp r3, #0 8002652: d0f8 beq.n 8002646 HAL_Delay(500); 8002654: f44f 70fa mov.w r0, #500 @ 0x1f4 8002658: f000 fe46 bl 80032e8 HAL_GPIO_WritePin(GPIOB, GPIO_PIN_4, GPIO_PIN_RESET); // Green LED On 800265c: 2200 movs r2, #0 800265e: 2110 movs r1, #16 8002660: 489b ldr r0, [pc, #620] @ (80028d0 ) 8002662: f002 fa20 bl 8004aa6 HAL_GPIO_WritePin(GPIOB, GPIO_PIN_5, GPIO_PIN_SET); 8002666: 2201 movs r2, #1 8002668: 2120 movs r1, #32 800266a: 4899 ldr r0, [pc, #612] @ (80028d0 ) 800266c: f002 fa1b bl 8004aa6 for(i=0;i<32;i++) 8002670: 2300 movs r3, #0 8002672: f887 302b strb.w r3, [r7, #43] @ 0x2b 8002676: e011 b.n 800269c { flash_data.ph7_value = ADSCalculate_ph_Volts(); 8002678: f7ff fbe2 bl 8001e40 800267c: 4603 mov r3, r0 800267e: 4a8e ldr r2, [pc, #568] @ (80028b8 ) 8002680: 6093 str r3, [r2, #8] flash_data.ec12880_value = AD5934_GetImpedance(); 8002682: f7ff f819 bl 80016b8 8002686: 4603 mov r3, r0 8002688: 4a8b ldr r2, [pc, #556] @ (80028b8 ) 800268a: 6113 str r3, [r2, #16] Flash_Save_Page(&flash_data); 800268c: 488a ldr r0, [pc, #552] @ (80028b8 ) 800268e: f7ff fd13 bl 80020b8 for(i=0;i<32;i++) 8002692: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 8002696: 3301 adds r3, #1 8002698: f887 302b strb.w r3, [r7, #43] @ 0x2b 800269c: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 80026a0: 2b1f cmp r3, #31 80026a2: d9e9 bls.n 8002678 } HAL_Delay(500); 80026a4: f44f 70fa mov.w r0, #500 @ 0x1f4 80026a8: f000 fe1e bl 80032e8 HAL_GPIO_WritePin(GPIOB, GPIO_PIN_4, GPIO_PIN_RESET); // Green LED On 80026ac: 2200 movs r2, #0 80026ae: 2110 movs r1, #16 80026b0: 4887 ldr r0, [pc, #540] @ (80028d0 ) 80026b2: f002 f9f8 bl 8004aa6 HAL_GPIO_WritePin(GPIOB, GPIO_PIN_5, GPIO_PIN_RESET); // Red LED On 80026b6: 2200 movs r2, #0 80026b8: 2120 movs r1, #32 80026ba: 4885 ldr r0, [pc, #532] @ (80028d0 ) 80026bc: f002 f9f3 bl 8004aa6 main_state = STATE_RUNNING_OK; 80026c0: 4b84 ldr r3, [pc, #528] @ (80028d4 ) 80026c2: 2200 movs r2, #0 80026c4: 701a strb r2, [r3, #0] while (1) { /* USER CODE END WHILE */ /* USER CODE BEGIN 3 */ current_millis = HAL_GetTick(); 80026c6: f000 fe05 bl 80032d4 80026ca: 61f8 str r0, [r7, #28] // Piscar LED verde em PB5 a cada 0,5 segundos if ((current_millis - previous_millis_green) >= 500) 80026cc: 69fa ldr r2, [r7, #28] 80026ce: 6afb ldr r3, [r7, #44] @ 0x2c 80026d0: 1ad3 subs r3, r2, r3 80026d2: f5b3 7ffa cmp.w r3, #500 @ 0x1f4 80026d6: f0c0 80a7 bcc.w 8002828 { previous_millis_green = current_millis; 80026da: 69fb ldr r3, [r7, #28] 80026dc: 62fb str r3, [r7, #44] @ 0x2c previous_green_state = current_green_state; uint8_t led_data[2] = {0x01, current_green_state}; // Command 0x01 for green LED }*/ FloatToString(tempString, Temperature); 80026de: 4b7e ldr r3, [pc, #504] @ (80028d8 ) 80026e0: 681b ldr r3, [r3, #0] 80026e2: 4618 mov r0, r3 80026e4: f7fd fea0 bl 8000428 <__aeabi_f2d> 80026e8: 4602 mov r2, r0 80026ea: 460b mov r3, r1 80026ec: 1d39 adds r1, r7, #4 80026ee: 4608 mov r0, r1 80026f0: f000 f9ec bl 8002acc status0 = rs485_send_broadcast(tempString, (strlen((char*)tempString)-1)); 80026f4: 1d3b adds r3, r7, #4 80026f6: 4618 mov r0, r3 80026f8: f7fd fd2a bl 8000150 80026fc: 4603 mov r3, r0 80026fe: b29b uxth r3, r3 8002700: 3b01 subs r3, #1 8002702: b29a uxth r2, r3 8002704: 1d3b adds r3, r7, #4 8002706: 4611 mov r1, r2 8002708: 4618 mov r0, r3 800270a: f000 fb3f bl 8002d8c 800270e: 4603 mov r3, r0 8002710: 76fb strb r3, [r7, #27] status1 = rs485_send_broadcast(newline_temp, strlen((char*)newline_temp)); 8002712: 4872 ldr r0, [pc, #456] @ (80028dc ) 8002714: f7fd fd1c bl 8000150 8002718: 4603 mov r3, r0 800271a: b29b uxth r3, r3 800271c: 4619 mov r1, r3 800271e: 486f ldr r0, [pc, #444] @ (80028dc ) 8002720: f000 fb34 bl 8002d8c 8002724: 4603 mov r3, r0 8002726: 76bb strb r3, [r7, #26] temperature_RTD = AD5934_GetTemperature(); 8002728: f7fe fdca bl 80012c0 800272c: 6238 str r0, [r7, #32] FloatToString(tempString, temperature_RTD); 800272e: 6a38 ldr r0, [r7, #32] 8002730: f7fd fe7a bl 8000428 <__aeabi_f2d> 8002734: 4602 mov r2, r0 8002736: 460b mov r3, r1 8002738: 1d39 adds r1, r7, #4 800273a: 4608 mov r0, r1 800273c: f000 f9c6 bl 8002acc status0 = rs485_send_broadcast(tempString, (strlen((char*)tempString)-1)); 8002740: 1d3b adds r3, r7, #4 8002742: 4618 mov r0, r3 8002744: f7fd fd04 bl 8000150 8002748: 4603 mov r3, r0 800274a: b29b uxth r3, r3 800274c: 3b01 subs r3, #1 800274e: b29a uxth r2, r3 8002750: 1d3b adds r3, r7, #4 8002752: 4611 mov r1, r2 8002754: 4618 mov r0, r3 8002756: f000 fb19 bl 8002d8c 800275a: 4603 mov r3, r0 800275c: 76fb strb r3, [r7, #27] status1 = rs485_send_broadcast(newline_real, strlen((char*)newline_real)); 800275e: 4860 ldr r0, [pc, #384] @ (80028e0 ) 8002760: f7fd fcf6 bl 8000150 8002764: 4603 mov r3, r0 8002766: b29b uxth r3, r3 8002768: 4619 mov r1, r3 800276a: 485d ldr r0, [pc, #372] @ (80028e0 ) 800276c: f000 fb0e bl 8002d8c 8002770: 4603 mov r3, r0 8002772: 76bb strb r3, [r7, #26] ph_compensated = ADSCalculate_ph_Compensated((2048 - ADSreadADC_Differential_0_1(&i2c)),flash_data.temperature_value); 8002774: 4855 ldr r0, [pc, #340] @ (80028cc ) 8002776: f7ff fb24 bl 8001dc2 800277a: 4603 mov r3, r0 800277c: b29b uxth r3, r3 800277e: f5c3 6300 rsb r3, r3, #2048 @ 0x800 8002782: b29b uxth r3, r3 8002784: b21b sxth r3, r3 8002786: 4a4c ldr r2, [pc, #304] @ (80028b8 ) 8002788: 6952 ldr r2, [r2, #20] 800278a: 4611 mov r1, r2 800278c: 4618 mov r0, r3 800278e: f7ff fbad bl 8001eec 8002792: 6178 str r0, [r7, #20] FloatToString(tempString, ph_compensated); 8002794: 6978 ldr r0, [r7, #20] 8002796: f7fd fe47 bl 8000428 <__aeabi_f2d> 800279a: 4602 mov r2, r0 800279c: 460b mov r3, r1 800279e: 1d39 adds r1, r7, #4 80027a0: 4608 mov r0, r1 80027a2: f000 f993 bl 8002acc status0 = rs485_send_broadcast(tempString, (strlen((char*)tempString)-1)); 80027a6: 1d3b adds r3, r7, #4 80027a8: 4618 mov r0, r3 80027aa: f7fd fcd1 bl 8000150 80027ae: 4603 mov r3, r0 80027b0: b29b uxth r3, r3 80027b2: 3b01 subs r3, #1 80027b4: b29a uxth r2, r3 80027b6: 1d3b adds r3, r7, #4 80027b8: 4611 mov r1, r2 80027ba: 4618 mov r0, r3 80027bc: f000 fae6 bl 8002d8c 80027c0: 4603 mov r3, r0 80027c2: 76fb strb r3, [r7, #27] status1 = rs485_send_broadcast(newline_ph, strlen((char*)newline_ph)); 80027c4: 4847 ldr r0, [pc, #284] @ (80028e4 ) 80027c6: f7fd fcc3 bl 8000150 80027ca: 4603 mov r3, r0 80027cc: b29b uxth r3, r3 80027ce: 4619 mov r1, r3 80027d0: 4844 ldr r0, [pc, #272] @ (80028e4 ) 80027d2: f000 fadb bl 8002d8c 80027d6: 4603 mov r3, r0 80027d8: 76bb strb r3, [r7, #26] admittance_EC = AD5934_GetImpedance(); 80027da: f7fe ff6d bl 80016b8 80027de: 6138 str r0, [r7, #16] FloatToString(tempString, admittance_EC); 80027e0: 6938 ldr r0, [r7, #16] 80027e2: f7fd fe21 bl 8000428 <__aeabi_f2d> 80027e6: 4602 mov r2, r0 80027e8: 460b mov r3, r1 80027ea: 1d39 adds r1, r7, #4 80027ec: 4608 mov r0, r1 80027ee: f000 f96d bl 8002acc status0 = rs485_send_broadcast(tempString, (strlen((char*)tempString)-1)); 80027f2: 1d3b adds r3, r7, #4 80027f4: 4618 mov r0, r3 80027f6: f7fd fcab bl 8000150 80027fa: 4603 mov r3, r0 80027fc: b29b uxth r3, r3 80027fe: 3b01 subs r3, #1 8002800: b29a uxth r2, r3 8002802: 1d3b adds r3, r7, #4 8002804: 4611 mov r1, r2 8002806: 4618 mov r0, r3 8002808: f000 fac0 bl 8002d8c 800280c: 4603 mov r3, r0 800280e: 76fb strb r3, [r7, #27] status1 = rs485_send_broadcast(newline_admi, strlen((char*)newline_admi)); 8002810: 4835 ldr r0, [pc, #212] @ (80028e8 ) 8002812: f7fd fc9d bl 8000150 8002816: 4603 mov r3, r0 8002818: b29b uxth r3, r3 800281a: 4619 mov r1, r3 800281c: 4832 ldr r0, [pc, #200] @ (80028e8 ) 800281e: f000 fab5 bl 8002d8c 8002822: 4603 mov r3, r0 8002824: 76bb strb r3, [r7, #26] 8002826: e74e b.n 80026c6 } else if(UpdateEvent) 8002828: 4b30 ldr r3, [pc, #192] @ (80028ec ) 800282a: 781b ldrb r3, [r3, #0] 800282c: 2b00 cmp r3, #0 800282e: f43f af4a beq.w 80026c6 { for (i = (STM32_TEMPERATURE_AVERAGES-1); i > 0; i--) 8002832: 2303 movs r3, #3 8002834: f887 302b strb.w r3, [r7, #43] @ 0x2b 8002838: e00f b.n 800285a Temp_Samples[i] = Temp_Samples[i-1]; 800283a: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 800283e: 1e5a subs r2, r3, #1 8002840: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 8002844: 492a ldr r1, [pc, #168] @ (80028f0 ) 8002846: f851 2022 ldr.w r2, [r1, r2, lsl #2] 800284a: 4929 ldr r1, [pc, #164] @ (80028f0 ) 800284c: f841 2023 str.w r2, [r1, r3, lsl #2] for (i = (STM32_TEMPERATURE_AVERAGES-1); i > 0; i--) 8002850: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 8002854: 3b01 subs r3, #1 8002856: f887 302b strb.w r3, [r7, #43] @ 0x2b 800285a: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 800285e: 2b00 cmp r3, #0 8002860: d1eb bne.n 800283a // Read real and imaginary data if(AD_RES[0]>0.0f) 8002862: 4b18 ldr r3, [pc, #96] @ (80028c4 ) 8002864: 881b ldrh r3, [r3, #0] 8002866: 4618 mov r0, r3 8002868: f7fe fa02 bl 8000c70 <__aeabi_i2f> 800286c: 4603 mov r3, r0 800286e: f04f 0100 mov.w r1, #0 8002872: 4618 mov r0, r3 8002874: f7fe fc0c bl 8001090 <__aeabi_fcmpgt> 8002878: 4603 mov r3, r0 800287a: 2b00 cmp r3, #0 800287c: d03c beq.n 80028f8 V_Ref = (float)((V_REF_INT * 4095.0)/AD_RES[0]); 800287e: 4b11 ldr r3, [pc, #68] @ (80028c4 ) 8002880: 881b ldrh r3, [r3, #0] 8002882: 4618 mov r0, r3 8002884: f7fd fdbe bl 8000404 <__aeabi_i2d> 8002888: 4602 mov r2, r0 800288a: 460b mov r3, r1 800288c: a108 add r1, pc, #32 @ (adr r1, 80028b0 ) 800288e: e9d1 0100 ldrd r0, r1, [r1] 8002892: f7fd ff4b bl 800072c <__aeabi_ddiv> 8002896: 4602 mov r2, r0 8002898: 460b mov r3, r1 800289a: 4610 mov r0, r2 800289c: 4619 mov r1, r3 800289e: f7fe f8dd bl 8000a5c <__aeabi_d2f> 80028a2: 4603 mov r3, r0 80028a4: 4a13 ldr r2, [pc, #76] @ (80028f4 ) 80028a6: 6013 str r3, [r2, #0] 80028a8: e02a b.n 8002900 80028aa: bf00 nop 80028ac: f3af 8000 nop.w 80028b0: 0ccc0000 .word 0x0ccc0000 80028b4: 40b33200 .word 0x40b33200 80028b8: 200001f8 .word 0x200001f8 80028bc: 20000720 .word 0x20000720 80028c0: 2000011c .word 0x2000011c 80028c4: 200006ac .word 0x200006ac 80028c8: 20000600 .word 0x20000600 80028cc: 200001c0 .word 0x200001c0 80028d0: 40010c00 .word 0x40010c00 80028d4: 200006a8 .word 0x200006a8 80028d8: 200006b4 .word 0x200006b4 80028dc: 20000014 .word 0x20000014 80028e0: 2000001c .word 0x2000001c 80028e4: 20000004 .word 0x20000004 80028e8: 2000000c .word 0x2000000c 80028ec: 200006b0 .word 0x200006b0 80028f0: 200006c4 .word 0x200006c4 80028f4: 200006c0 .word 0x200006c0 else V_Ref = 0.0f; 80028f8: 4b3b ldr r3, [pc, #236] @ (80029e8 ) 80028fa: f04f 0200 mov.w r2, #0 80028fe: 601a str r2, [r3, #0] V_Sense = (float)(AD_RES[1] * V_Ref) / 4095.0; 8002900: 4b3a ldr r3, [pc, #232] @ (80029ec ) 8002902: 885b ldrh r3, [r3, #2] 8002904: 4618 mov r0, r3 8002906: f7fe f9b3 bl 8000c70 <__aeabi_i2f> 800290a: 4602 mov r2, r0 800290c: 4b36 ldr r3, [pc, #216] @ (80029e8 ) 800290e: 681b ldr r3, [r3, #0] 8002910: 4619 mov r1, r3 8002912: 4610 mov r0, r2 8002914: f7fe fa00 bl 8000d18 <__aeabi_fmul> 8002918: 4603 mov r3, r0 800291a: 4935 ldr r1, [pc, #212] @ (80029f0 ) 800291c: 4618 mov r0, r3 800291e: f7fe faaf bl 8000e80 <__aeabi_fdiv> 8002922: 4603 mov r3, r0 8002924: 461a mov r2, r3 8002926: 4b33 ldr r3, [pc, #204] @ (80029f4 ) 8002928: 601a str r2, [r3, #0] Temp_Samples[0] = (((V_AT_25C - V_Sense) * 1000.0) /AVG_SLOPE) + 25.0; 800292a: 4b32 ldr r3, [pc, #200] @ (80029f4 ) 800292c: 681b ldr r3, [r3, #0] 800292e: 4619 mov r1, r3 8002930: 4831 ldr r0, [pc, #196] @ (80029f8 ) 8002932: f7fe f8e7 bl 8000b04 <__aeabi_fsub> 8002936: 4603 mov r3, r0 8002938: 4618 mov r0, r3 800293a: f7fd fd75 bl 8000428 <__aeabi_f2d> 800293e: f04f 0200 mov.w r2, #0 8002942: 4b2e ldr r3, [pc, #184] @ (80029fc ) 8002944: f7fd fdc8 bl 80004d8 <__aeabi_dmul> 8002948: 4602 mov r2, r0 800294a: 460b mov r3, r1 800294c: 4610 mov r0, r2 800294e: 4619 mov r1, r3 8002950: a323 add r3, pc, #140 @ (adr r3, 80029e0 ) 8002952: e9d3 2300 ldrd r2, r3, [r3] 8002956: f7fd fee9 bl 800072c <__aeabi_ddiv> 800295a: 4602 mov r2, r0 800295c: 460b mov r3, r1 800295e: 4610 mov r0, r2 8002960: 4619 mov r1, r3 8002962: f04f 0200 mov.w r2, #0 8002966: 4b26 ldr r3, [pc, #152] @ (8002a00 ) 8002968: f7fd fc00 bl 800016c <__adddf3> 800296c: 4602 mov r2, r0 800296e: 460b mov r3, r1 8002970: 4610 mov r0, r2 8002972: 4619 mov r1, r3 8002974: f7fe f872 bl 8000a5c <__aeabi_d2f> 8002978: 4603 mov r3, r0 800297a: 4a22 ldr r2, [pc, #136] @ (8002a04 ) 800297c: 6013 str r3, [r2, #0] for (i = 0, Temp_Sum=0; i < STM32_TEMPERATURE_AVERAGES; i++) 800297e: 2300 movs r3, #0 8002980: f887 302b strb.w r3, [r7, #43] @ 0x2b 8002984: 4b20 ldr r3, [pc, #128] @ (8002a08 ) 8002986: f04f 0200 mov.w r2, #0 800298a: 601a str r2, [r3, #0] 800298c: e013 b.n 80029b6 Temp_Sum += Temp_Samples[i]; 800298e: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 8002992: 4a1c ldr r2, [pc, #112] @ (8002a04 ) 8002994: f852 3023 ldr.w r3, [r2, r3, lsl #2] 8002998: 4a1b ldr r2, [pc, #108] @ (8002a08 ) 800299a: 6812 ldr r2, [r2, #0] 800299c: 4611 mov r1, r2 800299e: 4618 mov r0, r3 80029a0: f7fe f8b2 bl 8000b08 <__addsf3> 80029a4: 4603 mov r3, r0 80029a6: 461a mov r2, r3 80029a8: 4b17 ldr r3, [pc, #92] @ (8002a08 ) 80029aa: 601a str r2, [r3, #0] for (i = 0, Temp_Sum=0; i < STM32_TEMPERATURE_AVERAGES; i++) 80029ac: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 80029b0: 3301 adds r3, #1 80029b2: f887 302b strb.w r3, [r7, #43] @ 0x2b 80029b6: f897 302b ldrb.w r3, [r7, #43] @ 0x2b 80029ba: 2b03 cmp r3, #3 80029bc: d9e7 bls.n 800298e Temperature = Temp_Sum/((float)STM32_TEMPERATURE_AVERAGES); 80029be: 4b12 ldr r3, [pc, #72] @ (8002a08 ) 80029c0: 681b ldr r3, [r3, #0] 80029c2: f04f 4181 mov.w r1, #1082130432 @ 0x40800000 80029c6: 4618 mov r0, r3 80029c8: f7fe fa5a bl 8000e80 <__aeabi_fdiv> 80029cc: 4603 mov r3, r0 80029ce: 461a mov r2, r3 80029d0: 4b0e ldr r3, [pc, #56] @ (8002a0c ) 80029d2: 601a str r2, [r3, #0] UpdateEvent = 0; 80029d4: 4b0e ldr r3, [pc, #56] @ (8002a10 ) 80029d6: 2200 movs r2, #0 80029d8: 701a strb r2, [r3, #0] current_millis = HAL_GetTick(); 80029da: e674 b.n 80026c6 80029dc: f3af 8000 nop.w 80029e0: 40000000 .word 0x40000000 80029e4: 40113333 .word 0x40113333 80029e8: 200006c0 .word 0x200006c0 80029ec: 200006ac .word 0x200006ac 80029f0: 457ff000 .word 0x457ff000 80029f4: 200006bc .word 0x200006bc 80029f8: 3fb70a3d .word 0x3fb70a3d 80029fc: 408f4000 .word 0x408f4000 8002a00: 40390000 .word 0x40390000 8002a04: 200006c4 .word 0x200006c4 8002a08: 200006b8 .word 0x200006b8 8002a0c: 200006b4 .word 0x200006b4 8002a10: 200006b0 .word 0x200006b0 08002a14 : /** * @brief System Clock Configuration * @retval None */ void SystemClock_Config(void) { 8002a14: b580 push {r7, lr} 8002a16: b094 sub sp, #80 @ 0x50 8002a18: af00 add r7, sp, #0 RCC_OscInitTypeDef RCC_OscInitStruct = {0}; 8002a1a: f107 0328 add.w r3, r7, #40 @ 0x28 8002a1e: 2228 movs r2, #40 @ 0x28 8002a20: 2100 movs r1, #0 8002a22: 4618 mov r0, r3 8002a24: f004 fefc bl 8007820 RCC_ClkInitTypeDef RCC_ClkInitStruct = {0}; 8002a28: f107 0314 add.w r3, r7, #20 8002a2c: 2200 movs r2, #0 8002a2e: 601a str r2, [r3, #0] 8002a30: 605a str r2, [r3, #4] 8002a32: 609a str r2, [r3, #8] 8002a34: 60da str r2, [r3, #12] 8002a36: 611a str r2, [r3, #16] RCC_PeriphCLKInitTypeDef PeriphClkInit = {0}; 8002a38: 1d3b adds r3, r7, #4 8002a3a: 2200 movs r2, #0 8002a3c: 601a str r2, [r3, #0] 8002a3e: 605a str r2, [r3, #4] 8002a40: 609a str r2, [r3, #8] 8002a42: 60da str r2, [r3, #12] /** Initializes the RCC Oscillators according to the specified parameters * in the RCC_OscInitTypeDef structure. */ RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE; 8002a44: 2301 movs r3, #1 8002a46: 62bb str r3, [r7, #40] @ 0x28 RCC_OscInitStruct.HSEState = RCC_HSE_ON; 8002a48: f44f 3380 mov.w r3, #65536 @ 0x10000 8002a4c: 62fb str r3, [r7, #44] @ 0x2c RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1; 8002a4e: 2300 movs r3, #0 8002a50: 633b str r3, [r7, #48] @ 0x30 RCC_OscInitStruct.HSIState = RCC_HSI_ON; 8002a52: 2301 movs r3, #1 8002a54: 63bb str r3, [r7, #56] @ 0x38 RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON; 8002a56: 2302 movs r3, #2 8002a58: 647b str r3, [r7, #68] @ 0x44 RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE; 8002a5a: f44f 3380 mov.w r3, #65536 @ 0x10000 8002a5e: 64bb str r3, [r7, #72] @ 0x48 RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL2; 8002a60: 2300 movs r3, #0 8002a62: 64fb str r3, [r7, #76] @ 0x4c if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK) 8002a64: f107 0328 add.w r3, r7, #40 @ 0x28 8002a68: 4618 mov r0, r3 8002a6a: f003 f881 bl 8005b70 8002a6e: 4603 mov r3, r0 8002a70: 2b00 cmp r3, #0 8002a72: d001 beq.n 8002a78 { Error_Handler(); 8002a74: f000 f94c bl 8002d10 } /** Initializes the CPU, AHB and APB buses clocks */ RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK 8002a78: 230f movs r3, #15 8002a7a: 617b str r3, [r7, #20] |RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2; RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK; 8002a7c: 2302 movs r3, #2 8002a7e: 61bb str r3, [r7, #24] RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1; 8002a80: 2300 movs r3, #0 8002a82: 61fb str r3, [r7, #28] RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2; 8002a84: f44f 6380 mov.w r3, #1024 @ 0x400 8002a88: 623b str r3, [r7, #32] RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV2; 8002a8a: f44f 6380 mov.w r3, #1024 @ 0x400 8002a8e: 627b str r3, [r7, #36] @ 0x24 if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_0) != HAL_OK) 8002a90: f107 0314 add.w r3, r7, #20 8002a94: 2100 movs r1, #0 8002a96: 4618 mov r0, r3 8002a98: f003 faec bl 8006074 8002a9c: 4603 mov r3, r0 8002a9e: 2b00 cmp r3, #0 8002aa0: d001 beq.n 8002aa6 { Error_Handler(); 8002aa2: f000 f935 bl 8002d10 } PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC; 8002aa6: 2302 movs r3, #2 8002aa8: 607b str r3, [r7, #4] PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV8; 8002aaa: f44f 4340 mov.w r3, #49152 @ 0xc000 8002aae: 60fb str r3, [r7, #12] if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK) 8002ab0: 1d3b adds r3, r7, #4 8002ab2: 4618 mov r0, r3 8002ab4: f003 fc6e bl 8006394 8002ab8: 4603 mov r3, r0 8002aba: 2b00 cmp r3, #0 8002abc: d001 beq.n 8002ac2 { Error_Handler(); 8002abe: f000 f927 bl 8002d10 } } 8002ac2: bf00 nop 8002ac4: 3750 adds r7, #80 @ 0x50 8002ac6: 46bd mov sp, r7 8002ac8: bd80 pop {r7, pc} ... 08002acc : * @param val - value to be converted * * @return None. *******************************************************************************/ void FloatToString(char *buf, double val) { 8002acc: b5b0 push {r4, r5, r7, lr} 8002ace: b096 sub sp, #88 @ 0x58 8002ad0: af00 add r7, sp, #0 8002ad2: 60f8 str r0, [r7, #12] 8002ad4: e9c7 2300 strd r2, r3, [r7] char temp[20]; // Buffer auxiliar para construção segura int i = 0; 8002ad8: 2300 movs r3, #0 8002ada: 657b str r3, [r7, #84] @ 0x54 // 1. Tratar sinal negativo if (val < 0) { 8002adc: f04f 0200 mov.w r2, #0 8002ae0: f04f 0300 mov.w r3, #0 8002ae4: e9d7 0100 ldrd r0, r1, [r7] 8002ae8: f7fd ff68 bl 80009bc <__aeabi_dcmplt> 8002aec: 4603 mov r3, r0 8002aee: 2b00 cmp r3, #0 8002af0: d00d beq.n 8002b0e temp[i++] = '-'; 8002af2: 6d7b ldr r3, [r7, #84] @ 0x54 8002af4: 1c5a adds r2, r3, #1 8002af6: 657a str r2, [r7, #84] @ 0x54 8002af8: 3358 adds r3, #88 @ 0x58 8002afa: 443b add r3, r7 8002afc: 222d movs r2, #45 @ 0x2d 8002afe: f803 2c30 strb.w r2, [r3, #-48] val = -val; 8002b02: 683c ldr r4, [r7, #0] 8002b04: 687b ldr r3, [r7, #4] 8002b06: f083 4500 eor.w r5, r3, #2147483648 @ 0x80000000 8002b0a: e9c7 4500 strd r4, r5, [r7] } // 2. Separar parte inteira e fracionária long intPart = (long)val; 8002b0e: e9d7 0100 ldrd r0, r1, [r7] 8002b12: f7fd ff7b bl 8000a0c <__aeabi_d2iz> 8002b16: 4603 mov r3, r0 8002b18: 653b str r3, [r7, #80] @ 0x50 // Multiplicamos por 1000 para obter 3 casas decimais fixas int fracPart = (int)((val - (double)intPart) * 1000.0 + 0.5); 8002b1a: 6d38 ldr r0, [r7, #80] @ 0x50 8002b1c: f7fd fc72 bl 8000404 <__aeabi_i2d> 8002b20: 4602 mov r2, r0 8002b22: 460b mov r3, r1 8002b24: e9d7 0100 ldrd r0, r1, [r7] 8002b28: f7fd fb1e bl 8000168 <__aeabi_dsub> 8002b2c: 4602 mov r2, r0 8002b2e: 460b mov r3, r1 8002b30: 4610 mov r0, r2 8002b32: 4619 mov r1, r3 8002b34: f04f 0200 mov.w r2, #0 8002b38: 4b6a ldr r3, [pc, #424] @ (8002ce4 ) 8002b3a: f7fd fccd bl 80004d8 <__aeabi_dmul> 8002b3e: 4602 mov r2, r0 8002b40: 460b mov r3, r1 8002b42: 4610 mov r0, r2 8002b44: 4619 mov r1, r3 8002b46: f04f 0200 mov.w r2, #0 8002b4a: 4b67 ldr r3, [pc, #412] @ (8002ce8 ) 8002b4c: f7fd fb0e bl 800016c <__adddf3> 8002b50: 4602 mov r2, r0 8002b52: 460b mov r3, r1 8002b54: 4610 mov r0, r2 8002b56: 4619 mov r1, r3 8002b58: f7fd ff58 bl 8000a0c <__aeabi_d2iz> 8002b5c: 4603 mov r3, r0 8002b5e: 63fb str r3, [r7, #60] @ 0x3c // 3. Converter a parte inteira para o buffer temp // Usamos um buffer temporário de inversão para não precisar de lógica complexa de ponteiro char intRev[12]; int j = 0; 8002b60: 2300 movs r3, #0 8002b62: 64fb str r3, [r7, #76] @ 0x4c if (intPart == 0) { 8002b64: 6d3b ldr r3, [r7, #80] @ 0x50 8002b66: 2b00 cmp r3, #0 8002b68: d126 bne.n 8002bb8 intRev[j++] = '0'; 8002b6a: 6cfb ldr r3, [r7, #76] @ 0x4c 8002b6c: 1c5a adds r2, r3, #1 8002b6e: 64fa str r2, [r7, #76] @ 0x4c 8002b70: 3358 adds r3, #88 @ 0x58 8002b72: 443b add r3, r7 8002b74: 2230 movs r2, #48 @ 0x30 8002b76: f803 2c3c strb.w r2, [r3, #-60] 8002b7a: e020 b.n 8002bbe } else { while (intPart > 0) { intRev[j++] = (intPart % 10) + '0'; 8002b7c: 6d3a ldr r2, [r7, #80] @ 0x50 8002b7e: 4b5b ldr r3, [pc, #364] @ (8002cec ) 8002b80: fb83 1302 smull r1, r3, r3, r2 8002b84: 1099 asrs r1, r3, #2 8002b86: 17d3 asrs r3, r2, #31 8002b88: 1ac9 subs r1, r1, r3 8002b8a: 460b mov r3, r1 8002b8c: 009b lsls r3, r3, #2 8002b8e: 440b add r3, r1 8002b90: 005b lsls r3, r3, #1 8002b92: 1ad1 subs r1, r2, r3 8002b94: b2ca uxtb r2, r1 8002b96: 6cfb ldr r3, [r7, #76] @ 0x4c 8002b98: 1c59 adds r1, r3, #1 8002b9a: 64f9 str r1, [r7, #76] @ 0x4c 8002b9c: 3230 adds r2, #48 @ 0x30 8002b9e: b2d2 uxtb r2, r2 8002ba0: 3358 adds r3, #88 @ 0x58 8002ba2: 443b add r3, r7 8002ba4: f803 2c3c strb.w r2, [r3, #-60] intPart /= 10; 8002ba8: 6d3b ldr r3, [r7, #80] @ 0x50 8002baa: 4a50 ldr r2, [pc, #320] @ (8002cec ) 8002bac: fb82 1203 smull r1, r2, r2, r3 8002bb0: 1092 asrs r2, r2, #2 8002bb2: 17db asrs r3, r3, #31 8002bb4: 1ad3 subs r3, r2, r3 8002bb6: 653b str r3, [r7, #80] @ 0x50 while (intPart > 0) { 8002bb8: 6d3b ldr r3, [r7, #80] @ 0x50 8002bba: 2b00 cmp r3, #0 8002bbc: dcde bgt.n 8002b7c } } // Inverter a parte inteira de volta para o buffer principal for (int k = j - 1; k >= 0; k--) { 8002bbe: 6cfb ldr r3, [r7, #76] @ 0x4c 8002bc0: 3b01 subs r3, #1 8002bc2: 64bb str r3, [r7, #72] @ 0x48 8002bc4: e00e b.n 8002be4 temp[i++] = intRev[k]; 8002bc6: 6d7b ldr r3, [r7, #84] @ 0x54 8002bc8: 1c5a adds r2, r3, #1 8002bca: 657a str r2, [r7, #84] @ 0x54 8002bcc: f107 011c add.w r1, r7, #28 8002bd0: 6cba ldr r2, [r7, #72] @ 0x48 8002bd2: 440a add r2, r1 8002bd4: 7812 ldrb r2, [r2, #0] 8002bd6: 3358 adds r3, #88 @ 0x58 8002bd8: 443b add r3, r7 8002bda: f803 2c30 strb.w r2, [r3, #-48] for (int k = j - 1; k >= 0; k--) { 8002bde: 6cbb ldr r3, [r7, #72] @ 0x48 8002be0: 3b01 subs r3, #1 8002be2: 64bb str r3, [r7, #72] @ 0x48 8002be4: 6cbb ldr r3, [r7, #72] @ 0x48 8002be6: 2b00 cmp r3, #0 8002be8: daed bge.n 8002bc6 } // 4. Adicionar o ponto decimal e a parte fracionária (sempre 3 casas) temp[i++] = '.'; 8002bea: 6d7b ldr r3, [r7, #84] @ 0x54 8002bec: 1c5a adds r2, r3, #1 8002bee: 657a str r2, [r7, #84] @ 0x54 8002bf0: 3358 adds r3, #88 @ 0x58 8002bf2: 443b add r3, r7 8002bf4: 222e movs r2, #46 @ 0x2e 8002bf6: f803 2c30 strb.w r2, [r3, #-48] // Garantir que a parte fracionária tenha sempre 3 dígitos (ex: .005 em vez de .5) int fracBuffer[3]; fracBuffer[2] = fracPart % 10; // Unidade 8002bfa: 6bf9 ldr r1, [r7, #60] @ 0x3c 8002bfc: 4b3b ldr r3, [pc, #236] @ (8002cec ) 8002bfe: fb83 2301 smull r2, r3, r3, r1 8002c02: 109a asrs r2, r3, #2 8002c04: 17cb asrs r3, r1, #31 8002c06: 1ad2 subs r2, r2, r3 8002c08: 4613 mov r3, r2 8002c0a: 009b lsls r3, r3, #2 8002c0c: 4413 add r3, r2 8002c0e: 005b lsls r3, r3, #1 8002c10: 1aca subs r2, r1, r3 8002c12: 61ba str r2, [r7, #24] fracBuffer[1] = (fracPart / 10) % 10; // Dezena 8002c14: 6bfb ldr r3, [r7, #60] @ 0x3c 8002c16: 4a35 ldr r2, [pc, #212] @ (8002cec ) 8002c18: fb82 1203 smull r1, r2, r2, r3 8002c1c: 1092 asrs r2, r2, #2 8002c1e: 17db asrs r3, r3, #31 8002c20: 1ad1 subs r1, r2, r3 8002c22: 4b32 ldr r3, [pc, #200] @ (8002cec ) 8002c24: fb83 2301 smull r2, r3, r3, r1 8002c28: 109a asrs r2, r3, #2 8002c2a: 17cb asrs r3, r1, #31 8002c2c: 1ad2 subs r2, r2, r3 8002c2e: 4613 mov r3, r2 8002c30: 009b lsls r3, r3, #2 8002c32: 4413 add r3, r2 8002c34: 005b lsls r3, r3, #1 8002c36: 1aca subs r2, r1, r3 8002c38: 617a str r2, [r7, #20] fracBuffer[0] = (fracPart / 100) % 10; // Centena 8002c3a: 6bfb ldr r3, [r7, #60] @ 0x3c 8002c3c: 4a2c ldr r2, [pc, #176] @ (8002cf0 ) 8002c3e: fb82 1203 smull r1, r2, r2, r3 8002c42: 1152 asrs r2, r2, #5 8002c44: 17db asrs r3, r3, #31 8002c46: 1ad1 subs r1, r2, r3 8002c48: 4b28 ldr r3, [pc, #160] @ (8002cec ) 8002c4a: fb83 2301 smull r2, r3, r3, r1 8002c4e: 109a asrs r2, r3, #2 8002c50: 17cb asrs r3, r1, #31 8002c52: 1ad2 subs r2, r2, r3 8002c54: 4613 mov r3, r2 8002c56: 009b lsls r3, r3, #2 8002c58: 4413 add r3, r2 8002c5a: 005b lsls r3, r3, #1 8002c5c: 1aca subs r2, r1, r3 8002c5e: 613a str r2, [r7, #16] for (int k = 2; k >= 0; k--) { 8002c60: 2302 movs r3, #2 8002c62: 647b str r3, [r7, #68] @ 0x44 8002c64: e012 b.n 8002c8c temp[i++] = fracBuffer[k] + '0'; 8002c66: 6c7b ldr r3, [r7, #68] @ 0x44 8002c68: 009b lsls r3, r3, #2 8002c6a: 3358 adds r3, #88 @ 0x58 8002c6c: 443b add r3, r7 8002c6e: f853 3c48 ldr.w r3, [r3, #-72] 8002c72: b2da uxtb r2, r3 8002c74: 6d7b ldr r3, [r7, #84] @ 0x54 8002c76: 1c59 adds r1, r3, #1 8002c78: 6579 str r1, [r7, #84] @ 0x54 8002c7a: 3230 adds r2, #48 @ 0x30 8002c7c: b2d2 uxtb r2, r2 8002c7e: 3358 adds r3, #88 @ 0x58 8002c80: 443b add r3, r7 8002c82: f803 2c30 strb.w r2, [r3, #-48] for (int k = 2; k >= 0; k--) { 8002c86: 6c7b ldr r3, [r7, #68] @ 0x44 8002c88: 3b01 subs r3, #1 8002c8a: 647b str r3, [r7, #68] @ 0x44 8002c8c: 6c7b ldr r3, [r7, #68] @ 0x44 8002c8e: 2b00 cmp r3, #0 8002c90: dae9 bge.n 8002c66 } // 5. Finalizar a string com o caractere nulo temp[i] = '\0'; 8002c92: f107 0228 add.w r2, r7, #40 @ 0x28 8002c96: 6d7b ldr r3, [r7, #84] @ 0x54 8002c98: 4413 add r3, r2 8002c9a: 2200 movs r2, #0 8002c9c: 701a strb r2, [r3, #0] // 6. Copiar para o buffer de destino final (sem risco de lixo) int destIdx = 0; 8002c9e: 2300 movs r3, #0 8002ca0: 643b str r3, [r7, #64] @ 0x40 while (temp[destIdx] != '\0' && destIdx < 15) { // Limite de segurança 8002ca2: e00b b.n 8002cbc buf[destIdx] = temp[destIdx]; 8002ca4: 6c3b ldr r3, [r7, #64] @ 0x40 8002ca6: 68fa ldr r2, [r7, #12] 8002ca8: 4413 add r3, r2 8002caa: f107 0128 add.w r1, r7, #40 @ 0x28 8002cae: 6c3a ldr r2, [r7, #64] @ 0x40 8002cb0: 440a add r2, r1 8002cb2: 7812 ldrb r2, [r2, #0] 8002cb4: 701a strb r2, [r3, #0] destIdx++; 8002cb6: 6c3b ldr r3, [r7, #64] @ 0x40 8002cb8: 3301 adds r3, #1 8002cba: 643b str r3, [r7, #64] @ 0x40 while (temp[destIdx] != '\0' && destIdx < 15) { // Limite de segurança 8002cbc: f107 0228 add.w r2, r7, #40 @ 0x28 8002cc0: 6c3b ldr r3, [r7, #64] @ 0x40 8002cc2: 4413 add r3, r2 8002cc4: 781b ldrb r3, [r3, #0] 8002cc6: 2b00 cmp r3, #0 8002cc8: d002 beq.n 8002cd0 8002cca: 6c3b ldr r3, [r7, #64] @ 0x40 8002ccc: 2b0e cmp r3, #14 8002cce: dde9 ble.n 8002ca4 } buf[destIdx] = '\0'; 8002cd0: 6c3b ldr r3, [r7, #64] @ 0x40 8002cd2: 68fa ldr r2, [r7, #12] 8002cd4: 4413 add r3, r2 8002cd6: 2200 movs r2, #0 8002cd8: 701a strb r2, [r3, #0] } 8002cda: bf00 nop 8002cdc: 3758 adds r7, #88 @ 0x58 8002cde: 46bd mov sp, r7 8002ce0: bdb0 pop {r4, r5, r7, pc} 8002ce2: bf00 nop 8002ce4: 408f4000 .word 0x408f4000 8002ce8: 3fe00000 .word 0x3fe00000 8002cec: 66666667 .word 0x66666667 8002cf0: 51eb851f .word 0x51eb851f 08002cf4 : } } void HAL_ADC_ConvCpltCallback(ADC_HandleTypeDef* hadc) { 8002cf4: b480 push {r7} 8002cf6: b083 sub sp, #12 8002cf8: af00 add r7, sp, #0 8002cfa: 6078 str r0, [r7, #4] UpdateEvent = 1; 8002cfc: 4b03 ldr r3, [pc, #12] @ (8002d0c ) 8002cfe: 2201 movs r2, #1 8002d00: 701a strb r2, [r3, #0] } 8002d02: bf00 nop 8002d04: 370c adds r7, #12 8002d06: 46bd mov sp, r7 8002d08: bc80 pop {r7} 8002d0a: 4770 bx lr 8002d0c: 200006b0 .word 0x200006b0 08002d10 : /** * @brief This function is executed in case of error occurrence. * @retval None */ void Error_Handler(void) { 8002d10: b480 push {r7} 8002d12: af00 add r7, sp, #0 \details Disables IRQ interrupts by setting the I-bit in the CPSR. Can only be executed in Privileged modes. */ __STATIC_FORCEINLINE void __disable_irq(void) { __ASM volatile ("cpsid i" : : : "memory"); 8002d14: b672 cpsid i } 8002d16: bf00 nop /* USER CODE BEGIN Error_Handler_Debug */ /* User can add his own implementation to report the HAL error return state */ __disable_irq(); while (1) 8002d18: bf00 nop 8002d1a: e7fd b.n 8002d18 08002d1c : * @rmtoll IDR IDy LL_GPIO_ReadInputPort * @param GPIOx GPIO Port * @retval Input data register value of port */ __STATIC_INLINE uint32_t LL_GPIO_ReadInputPort(GPIO_TypeDef *GPIOx) { 8002d1c: b480 push {r7} 8002d1e: b083 sub sp, #12 8002d20: af00 add r7, sp, #0 8002d22: 6078 str r0, [r7, #4] return (READ_REG(GPIOx->IDR)); 8002d24: 687b ldr r3, [r7, #4] 8002d26: 689b ldr r3, [r3, #8] } 8002d28: 4618 mov r0, r3 8002d2a: 370c adds r7, #12 8002d2c: 46bd mov sp, r7 8002d2e: bc80 pop {r7} 8002d30: 4770 bx lr ... 08002d34 : /** * @brief Initializes the RS-485 driver. * @note This function configures GPIOs for address detection and USART1 for communication. */ void rs485_init(void) { 8002d34: b580 push {r7, lr} 8002d36: af00 add r7, sp, #0 /* Configure GPIOs for address detection */ rs485_configure_gpio_address(); 8002d38: f000 f864 bl 8002e04 /* Configure USART1 for RS-485 communication */ rs485_configure_usart1(); 8002d3c: f000 f8a8 bl 8002e90 /* Get the current device address from GPIOs */ device_address.full_address = rs485_get_address(); 8002d40: f000 f808 bl 8002d54 8002d44: 4603 mov r3, r0 8002d46: 461a mov r2, r3 8002d48: 4b01 ldr r3, [pc, #4] @ (8002d50 ) 8002d4a: 709a strb r2, [r3, #2] } 8002d4c: bf00 nop 8002d4e: bd80 pop {r7, pc} 8002d50: 200006d4 .word 0x200006d4 08002d54 : /** * @brief Gets the current device address from GPIOs. * @return The 8-bit device address. */ uint8_t rs485_get_address(void) { 8002d54: b598 push {r3, r4, r7, lr} 8002d56: af00 add r7, sp, #0 return ((uint8_t) ((((LL_GPIO_ReadInputPort(GPIOB) & RS485_ADDR_MASK_HIGH)>>RS485_ADDR_BIT_SET_HIGH) | (LL_GPIO_ReadInputPort(GPIOA) & RS485_ADDR_MASK_LOW)>>RS485_ADDR_BIT_SET_LOW))); 8002d58: 480a ldr r0, [pc, #40] @ (8002d84 ) 8002d5a: f7ff ffdf bl 8002d1c 8002d5e: 4603 mov r3, r0 8002d60: 0a1b lsrs r3, r3, #8 8002d62: b2db uxtb r3, r3 8002d64: f023 030f bic.w r3, r3, #15 8002d68: b2dc uxtb r4, r3 8002d6a: 4807 ldr r0, [pc, #28] @ (8002d88 ) 8002d6c: f7ff ffd6 bl 8002d1c 8002d70: 4603 mov r3, r0 8002d72: 089b lsrs r3, r3, #2 8002d74: b2db uxtb r3, r3 8002d76: f003 030f and.w r3, r3, #15 8002d7a: b2db uxtb r3, r3 8002d7c: 4323 orrs r3, r4 8002d7e: b2db uxtb r3, r3 } 8002d80: 4618 mov r0, r3 8002d82: bd98 pop {r3, r4, r7, pc} 8002d84: 40010c00 .word 0x40010c00 8002d88: 40010800 .word 0x40010800 08002d8c : * @param data Pointer to the data buffer. * @param length Number of bytes to send. * @retval HAL_OK on success, otherwise error code. */ HAL_StatusTypeDef rs485_send_broadcast(uint8_t* data, uint16_t length) { 8002d8c: b580 push {r7, lr} 8002d8e: b084 sub sp, #16 8002d90: af00 add r7, sp, #0 8002d92: 6078 str r0, [r7, #4] 8002d94: 460b mov r3, r1 8002d96: 807b strh r3, [r7, #2] /* Enable transmission mode */ rs485_enable_tx(); 8002d98: f000 f81c bl 8002dd4 /* Send the broadcast address (0x00) first */ uint8_t broadcast_address = 0x00; 8002d9c: 2300 movs r3, #0 8002d9e: 73bb strb r3, [r7, #14] HAL_UART_Transmit(&huart1, &broadcast_address, 1, HAL_MAX_DELAY); 8002da0: f107 010e add.w r1, r7, #14 8002da4: f04f 33ff mov.w r3, #4294967295 8002da8: 2201 movs r2, #1 8002daa: 4809 ldr r0, [pc, #36] @ (8002dd0 ) 8002dac: f003 ff72 bl 8006c94 /* Send the data */ HAL_StatusTypeDef status = HAL_UART_Transmit(&huart1, data, length, HAL_MAX_DELAY); 8002db0: 887a ldrh r2, [r7, #2] 8002db2: f04f 33ff mov.w r3, #4294967295 8002db6: 6879 ldr r1, [r7, #4] 8002db8: 4805 ldr r0, [pc, #20] @ (8002dd0 ) 8002dba: f003 ff6b bl 8006c94 8002dbe: 4603 mov r3, r0 8002dc0: 73fb strb r3, [r7, #15] /* Disable transmission mode after sending */ rs485_disable_tx(); 8002dc2: f000 f813 bl 8002dec return status; 8002dc6: 7bfb ldrb r3, [r7, #15] } 8002dc8: 4618 mov r0, r3 8002dca: 3710 adds r7, #16 8002dcc: 46bd mov sp, r7 8002dce: bd80 pop {r7, pc} 8002dd0: 200006d8 .word 0x200006d8 08002dd4 : /** * @brief Enables transmission mode on RS-485 transceiver. */ void rs485_enable_tx(void) { 8002dd4: b580 push {r7, lr} 8002dd6: af00 add r7, sp, #0 /* Set TX EN pin high to enable transmitter */ HAL_GPIO_WritePin(RS485_TX_EN_PORT, RS485_TX_EN_PIN, GPIO_PIN_SET); 8002dd8: 2201 movs r2, #1 8002dda: f44f 5180 mov.w r1, #4096 @ 0x1000 8002dde: 4802 ldr r0, [pc, #8] @ (8002de8 ) 8002de0: f001 fe61 bl 8004aa6 } 8002de4: bf00 nop 8002de6: bd80 pop {r7, pc} 8002de8: 40010800 .word 0x40010800 08002dec : /** * @brief Disables transmission mode on RS-485 transceiver. */ void rs485_disable_tx(void) { 8002dec: b580 push {r7, lr} 8002dee: af00 add r7, sp, #0 /* Set TX EN pin low to disable transmitter */ HAL_GPIO_WritePin(RS485_TX_EN_PORT, RS485_TX_EN_PIN, GPIO_PIN_RESET); 8002df0: 2200 movs r2, #0 8002df2: f44f 5180 mov.w r1, #4096 @ 0x1000 8002df6: 4802 ldr r0, [pc, #8] @ (8002e00 ) 8002df8: f001 fe55 bl 8004aa6 } 8002dfc: bf00 nop 8002dfe: bd80 pop {r7, pc} 8002e00: 40010800 .word 0x40010800 08002e04 : /** * @brief Configures GPIOs for address detection. */ static void rs485_configure_gpio_address(void) { 8002e04: b580 push {r7, lr} 8002e06: b086 sub sp, #24 8002e08: af00 add r7, sp, #0 GPIO_InitTypeDef GPIO_InitStruct = {0}; 8002e0a: f107 0308 add.w r3, r7, #8 8002e0e: 2200 movs r2, #0 8002e10: 601a str r2, [r3, #0] 8002e12: 605a str r2, [r3, #4] 8002e14: 609a str r2, [r3, #8] 8002e16: 60da str r2, [r3, #12] /* Enable clock for GPIOA and GPIOB */ __HAL_RCC_GPIOA_CLK_ENABLE(); 8002e18: 4b1a ldr r3, [pc, #104] @ (8002e84 ) 8002e1a: 699b ldr r3, [r3, #24] 8002e1c: 4a19 ldr r2, [pc, #100] @ (8002e84 ) 8002e1e: f043 0304 orr.w r3, r3, #4 8002e22: 6193 str r3, [r2, #24] 8002e24: 4b17 ldr r3, [pc, #92] @ (8002e84 ) 8002e26: 699b ldr r3, [r3, #24] 8002e28: f003 0304 and.w r3, r3, #4 8002e2c: 607b str r3, [r7, #4] 8002e2e: 687b ldr r3, [r7, #4] __HAL_RCC_GPIOB_CLK_ENABLE(); 8002e30: 4b14 ldr r3, [pc, #80] @ (8002e84 ) 8002e32: 699b ldr r3, [r3, #24] 8002e34: 4a13 ldr r2, [pc, #76] @ (8002e84 ) 8002e36: f043 0308 orr.w r3, r3, #8 8002e3a: 6193 str r3, [r2, #24] 8002e3c: 4b11 ldr r3, [pc, #68] @ (8002e84 ) 8002e3e: 699b ldr r3, [r3, #24] 8002e40: f003 0308 and.w r3, r3, #8 8002e44: 603b str r3, [r7, #0] 8002e46: 683b ldr r3, [r7, #0] /* Configure PA2-PA5 as input with pull-up */ GPIO_InitStruct.Pin = GPIO_PIN_2 | GPIO_PIN_3 | GPIO_PIN_4 | GPIO_PIN_5; 8002e48: 233c movs r3, #60 @ 0x3c 8002e4a: 60bb str r3, [r7, #8] GPIO_InitStruct.Mode = GPIO_MODE_INPUT; 8002e4c: 2300 movs r3, #0 8002e4e: 60fb str r3, [r7, #12] GPIO_InitStruct.Pull = GPIO_PULLUP; 8002e50: 2301 movs r3, #1 8002e52: 613b str r3, [r7, #16] HAL_GPIO_Init(GPIOA, &GPIO_InitStruct); 8002e54: f107 0308 add.w r3, r7, #8 8002e58: 4619 mov r1, r3 8002e5a: 480b ldr r0, [pc, #44] @ (8002e88 ) 8002e5c: f001 fc88 bl 8004770 /* Configure PB12-PB15 as input with pull-up */ GPIO_InitStruct.Pin = GPIO_PIN_12 | GPIO_PIN_13 | GPIO_PIN_14 | GPIO_PIN_15; 8002e60: f44f 4370 mov.w r3, #61440 @ 0xf000 8002e64: 60bb str r3, [r7, #8] GPIO_InitStruct.Mode = GPIO_MODE_INPUT; 8002e66: 2300 movs r3, #0 8002e68: 60fb str r3, [r7, #12] GPIO_InitStruct.Pull = GPIO_PULLUP; 8002e6a: 2301 movs r3, #1 8002e6c: 613b str r3, [r7, #16] HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); 8002e6e: f107 0308 add.w r3, r7, #8 8002e72: 4619 mov r1, r3 8002e74: 4805 ldr r0, [pc, #20] @ (8002e8c ) 8002e76: f001 fc7b bl 8004770 } 8002e7a: bf00 nop 8002e7c: 3718 adds r7, #24 8002e7e: 46bd mov sp, r7 8002e80: bd80 pop {r7, pc} 8002e82: bf00 nop 8002e84: 40021000 .word 0x40021000 8002e88: 40010800 .word 0x40010800 8002e8c: 40010c00 .word 0x40010c00 08002e90 : /** * @brief Configures USART1 for RS-485 communication. */ static void rs485_configure_usart1(void) { 8002e90: b580 push {r7, lr} 8002e92: b082 sub sp, #8 8002e94: af00 add r7, sp, #0 /* Enable clock for USART1 */ __HAL_RCC_USART1_CLK_ENABLE(); 8002e96: 4b18 ldr r3, [pc, #96] @ (8002ef8 ) 8002e98: 699b ldr r3, [r3, #24] 8002e9a: 4a17 ldr r2, [pc, #92] @ (8002ef8 ) 8002e9c: f443 4380 orr.w r3, r3, #16384 @ 0x4000 8002ea0: 6193 str r3, [r2, #24] 8002ea2: 4b15 ldr r3, [pc, #84] @ (8002ef8 ) 8002ea4: 699b ldr r3, [r3, #24] 8002ea6: f403 4380 and.w r3, r3, #16384 @ 0x4000 8002eaa: 607b str r3, [r7, #4] 8002eac: 687b ldr r3, [r7, #4] huart1.Instance = USART1; 8002eae: 4b13 ldr r3, [pc, #76] @ (8002efc ) 8002eb0: 4a13 ldr r2, [pc, #76] @ (8002f00 ) 8002eb2: 601a str r2, [r3, #0] huart1.Init.BaudRate = 9600; /*!< Default baud rate for RS-485 */ 8002eb4: 4b11 ldr r3, [pc, #68] @ (8002efc ) 8002eb6: f44f 5216 mov.w r2, #9600 @ 0x2580 8002eba: 605a str r2, [r3, #4] huart1.Init.WordLength = UART_WORDLENGTH_8B; 8002ebc: 4b0f ldr r3, [pc, #60] @ (8002efc ) 8002ebe: 2200 movs r2, #0 8002ec0: 609a str r2, [r3, #8] huart1.Init.StopBits = UART_STOPBITS_1; 8002ec2: 4b0e ldr r3, [pc, #56] @ (8002efc ) 8002ec4: 2200 movs r2, #0 8002ec6: 60da str r2, [r3, #12] huart1.Init.Parity = UART_PARITY_NONE; 8002ec8: 4b0c ldr r3, [pc, #48] @ (8002efc ) 8002eca: 2200 movs r2, #0 8002ecc: 611a str r2, [r3, #16] huart1.Init.Mode = UART_MODE_TX_RX; 8002ece: 4b0b ldr r3, [pc, #44] @ (8002efc ) 8002ed0: 220c movs r2, #12 8002ed2: 615a str r2, [r3, #20] huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE; /*!< Use NONE as TX enable */ 8002ed4: 4b09 ldr r3, [pc, #36] @ (8002efc ) 8002ed6: 2200 movs r2, #0 8002ed8: 619a str r2, [r3, #24] huart1.Init.OverSampling = UART_OVERSAMPLING_16; 8002eda: 4b08 ldr r3, [pc, #32] @ (8002efc ) 8002edc: 2200 movs r2, #0 8002ede: 61da str r2, [r3, #28] if (HAL_UART_Init(&huart1) != HAL_OK) 8002ee0: 4806 ldr r0, [pc, #24] @ (8002efc ) 8002ee2: f003 fe87 bl 8006bf4 8002ee6: 4603 mov r3, r0 8002ee8: 2b00 cmp r3, #0 8002eea: d001 beq.n 8002ef0 { /* Initialization Error */ while(1); 8002eec: bf00 nop 8002eee: e7fd b.n 8002eec } } 8002ef0: bf00 nop 8002ef2: 3708 adds r7, #8 8002ef4: 46bd mov sp, r7 8002ef6: bd80 pop {r7, pc} 8002ef8: 40021000 .word 0x40021000 8002efc: 200006d8 .word 0x200006d8 8002f00: 40013800 .word 0x40013800 08002f04 : /* USER CODE END 0 */ /** * Initializes the Global MSP. */ void HAL_MspInit(void) { 8002f04: b480 push {r7} 8002f06: b085 sub sp, #20 8002f08: af00 add r7, sp, #0 /* USER CODE BEGIN MspInit 0 */ /* USER CODE END MspInit 0 */ __HAL_RCC_AFIO_CLK_ENABLE(); 8002f0a: 4b15 ldr r3, [pc, #84] @ (8002f60 ) 8002f0c: 699b ldr r3, [r3, #24] 8002f0e: 4a14 ldr r2, [pc, #80] @ (8002f60 ) 8002f10: f043 0301 orr.w r3, r3, #1 8002f14: 6193 str r3, [r2, #24] 8002f16: 4b12 ldr r3, [pc, #72] @ (8002f60 ) 8002f18: 699b ldr r3, [r3, #24] 8002f1a: f003 0301 and.w r3, r3, #1 8002f1e: 60bb str r3, [r7, #8] 8002f20: 68bb ldr r3, [r7, #8] __HAL_RCC_PWR_CLK_ENABLE(); 8002f22: 4b0f ldr r3, [pc, #60] @ (8002f60 ) 8002f24: 69db ldr r3, [r3, #28] 8002f26: 4a0e ldr r2, [pc, #56] @ (8002f60 ) 8002f28: f043 5380 orr.w r3, r3, #268435456 @ 0x10000000 8002f2c: 61d3 str r3, [r2, #28] 8002f2e: 4b0c ldr r3, [pc, #48] @ (8002f60 ) 8002f30: 69db ldr r3, [r3, #28] 8002f32: f003 5380 and.w r3, r3, #268435456 @ 0x10000000 8002f36: 607b str r3, [r7, #4] 8002f38: 687b ldr r3, [r7, #4] /* System interrupt init*/ /** NOJTAG: JTAG-DP Disabled and SW-DP Enabled */ __HAL_AFIO_REMAP_SWJ_NOJTAG(); 8002f3a: 4b0a ldr r3, [pc, #40] @ (8002f64 ) 8002f3c: 685b ldr r3, [r3, #4] 8002f3e: 60fb str r3, [r7, #12] 8002f40: 68fb ldr r3, [r7, #12] 8002f42: f023 63e0 bic.w r3, r3, #117440512 @ 0x7000000 8002f46: 60fb str r3, [r7, #12] 8002f48: 68fb ldr r3, [r7, #12] 8002f4a: f043 7300 orr.w r3, r3, #33554432 @ 0x2000000 8002f4e: 60fb str r3, [r7, #12] 8002f50: 4a04 ldr r2, [pc, #16] @ (8002f64 ) 8002f52: 68fb ldr r3, [r7, #12] 8002f54: 6053 str r3, [r2, #4] /* USER CODE BEGIN MspInit 1 */ /* USER CODE END MspInit 1 */ } 8002f56: bf00 nop 8002f58: 3714 adds r7, #20 8002f5a: 46bd mov sp, r7 8002f5c: bc80 pop {r7} 8002f5e: 4770 bx lr 8002f60: 40021000 .word 0x40021000 8002f64: 40010000 .word 0x40010000 08002f68 : /******************************************************************************/ /** * @brief This function handles Non maskable interrupt. */ void NMI_Handler(void) { 8002f68: b480 push {r7} 8002f6a: af00 add r7, sp, #0 /* USER CODE BEGIN NonMaskableInt_IRQn 0 */ /* USER CODE END NonMaskableInt_IRQn 0 */ /* USER CODE BEGIN NonMaskableInt_IRQn 1 */ while (1) 8002f6c: bf00 nop 8002f6e: e7fd b.n 8002f6c 08002f70 : /** * @brief This function handles Hard fault interrupt. */ void HardFault_Handler(void) { 8002f70: b480 push {r7} 8002f72: af00 add r7, sp, #0 /* USER CODE BEGIN HardFault_IRQn 0 */ /* USER CODE END HardFault_IRQn 0 */ while (1) 8002f74: bf00 nop 8002f76: e7fd b.n 8002f74 08002f78 : /** * @brief This function handles Memory management fault. */ void MemManage_Handler(void) { 8002f78: b480 push {r7} 8002f7a: af00 add r7, sp, #0 /* USER CODE BEGIN MemoryManagement_IRQn 0 */ /* USER CODE END MemoryManagement_IRQn 0 */ while (1) 8002f7c: bf00 nop 8002f7e: e7fd b.n 8002f7c 08002f80 : /** * @brief This function handles Prefetch fault, memory access fault. */ void BusFault_Handler(void) { 8002f80: b480 push {r7} 8002f82: af00 add r7, sp, #0 /* USER CODE BEGIN BusFault_IRQn 0 */ /* USER CODE END BusFault_IRQn 0 */ while (1) 8002f84: bf00 nop 8002f86: e7fd b.n 8002f84 08002f88 : /** * @brief This function handles Undefined instruction or illegal state. */ void UsageFault_Handler(void) { 8002f88: b480 push {r7} 8002f8a: af00 add r7, sp, #0 /* USER CODE BEGIN UsageFault_IRQn 0 */ /* USER CODE END UsageFault_IRQn 0 */ while (1) 8002f8c: bf00 nop 8002f8e: e7fd b.n 8002f8c 08002f90 : /** * @brief This function handles System service call via SWI instruction. */ void SVC_Handler(void) { 8002f90: b480 push {r7} 8002f92: af00 add r7, sp, #0 /* USER CODE END SVCall_IRQn 0 */ /* USER CODE BEGIN SVCall_IRQn 1 */ /* USER CODE END SVCall_IRQn 1 */ } 8002f94: bf00 nop 8002f96: 46bd mov sp, r7 8002f98: bc80 pop {r7} 8002f9a: 4770 bx lr 08002f9c : /** * @brief This function handles Debug monitor. */ void DebugMon_Handler(void) { 8002f9c: b480 push {r7} 8002f9e: af00 add r7, sp, #0 /* USER CODE END DebugMonitor_IRQn 0 */ /* USER CODE BEGIN DebugMonitor_IRQn 1 */ /* USER CODE END DebugMonitor_IRQn 1 */ } 8002fa0: bf00 nop 8002fa2: 46bd mov sp, r7 8002fa4: bc80 pop {r7} 8002fa6: 4770 bx lr 08002fa8 : /** * @brief This function handles Pendable request for system service. */ void PendSV_Handler(void) { 8002fa8: b480 push {r7} 8002faa: af00 add r7, sp, #0 /* USER CODE END PendSV_IRQn 0 */ /* USER CODE BEGIN PendSV_IRQn 1 */ /* USER CODE END PendSV_IRQn 1 */ } 8002fac: bf00 nop 8002fae: 46bd mov sp, r7 8002fb0: bc80 pop {r7} 8002fb2: 4770 bx lr 08002fb4 : /** * @brief This function handles System tick timer. */ void SysTick_Handler(void) { 8002fb4: b580 push {r7, lr} 8002fb6: af00 add r7, sp, #0 /* USER CODE BEGIN SysTick_IRQn 0 */ /* USER CODE END SysTick_IRQn 0 */ HAL_IncTick(); 8002fb8: f000 f97a bl 80032b0 /* USER CODE BEGIN SysTick_IRQn 1 */ /* USER CODE END SysTick_IRQn 1 */ } 8002fbc: bf00 nop 8002fbe: bd80 pop {r7, pc} 08002fc0 : /** * @brief This function handles EXTI line3 interrupt. */ void EXTI3_IRQHandler(void) { 8002fc0: b580 push {r7, lr} 8002fc2: af00 add r7, sp, #0 /* USER CODE BEGIN EXTI3_IRQn 0 */ /* USER CODE END EXTI3_IRQn 0 */ HAL_GPIO_EXTI_IRQHandler(Calib_PH_Pin); 8002fc4: 2008 movs r0, #8 8002fc6: f001 fd87 bl 8004ad8 /* USER CODE BEGIN EXTI3_IRQn 1 */ /* USER CODE END EXTI3_IRQn 1 */ } 8002fca: bf00 nop 8002fcc: bd80 pop {r7, pc} ... 08002fd0 : /** * @brief This function handles DMA1 channel1 global interrupt. */ void DMA1_Channel1_IRQHandler(void) { 8002fd0: b580 push {r7, lr} 8002fd2: af00 add r7, sp, #0 /* USER CODE BEGIN DMA1_Channel1_IRQn 0 */ /* USER CODE END DMA1_Channel1_IRQn 0 */ HAL_DMA_IRQHandler(&hdma_adc1); 8002fd4: 4802 ldr r0, [pc, #8] @ (8002fe0 ) 8002fd6: f001 f897 bl 8004108 /* USER CODE BEGIN DMA1_Channel1_IRQn 1 */ /* USER CODE END DMA1_Channel1_IRQn 1 */ } 8002fda: bf00 nop 8002fdc: bd80 pop {r7, pc} 8002fde: bf00 nop 8002fe0: 2000017c .word 0x2000017c 08002fe4 : /** * @brief This function handles USART1 global interrupt. */ void USART1_IRQHandler(void) { 8002fe4: b580 push {r7, lr} 8002fe6: af00 add r7, sp, #0 /* USER CODE BEGIN USART1_IRQn 0 */ /* USER CODE END USART1_IRQn 0 */ HAL_UART_IRQHandler(&huart1); 8002fe8: 4802 ldr r0, [pc, #8] @ (8002ff4 ) 8002fea: f003 fedf bl 8006dac /* USER CODE BEGIN USART1_IRQn 1 */ /* USER CODE END USART1_IRQn 1 */ } 8002fee: bf00 nop 8002ff0: bd80 pop {r7, pc} 8002ff2: bf00 nop 8002ff4: 20000768 .word 0x20000768 08002ff8 : * @note This function should be used only after reset. * @param None * @retval None */ void SystemInit (void) { 8002ff8: b480 push {r7} 8002ffa: af00 add r7, sp, #0 /* Configure the Vector Table location -------------------------------------*/ #if defined(USER_VECT_TAB_ADDRESS) SCB->VTOR = VECT_TAB_BASE_ADDRESS | VECT_TAB_OFFSET; /* Vector Table Relocation in Internal SRAM. */ #endif /* USER_VECT_TAB_ADDRESS */ } 8002ffc: bf00 nop 8002ffe: 46bd mov sp, r7 8003000: bc80 pop {r7} 8003002: 4770 bx lr 08003004 : TIM_HandleTypeDef htim3; /* TIM3 init function */ void MX_TIM3_Init(void) { 8003004: b580 push {r7, lr} 8003006: b086 sub sp, #24 8003008: af00 add r7, sp, #0 /* USER CODE BEGIN TIM3_Init 0 */ /* USER CODE END TIM3_Init 0 */ TIM_ClockConfigTypeDef sClockSourceConfig = {0}; 800300a: f107 0308 add.w r3, r7, #8 800300e: 2200 movs r2, #0 8003010: 601a str r2, [r3, #0] 8003012: 605a str r2, [r3, #4] 8003014: 609a str r2, [r3, #8] 8003016: 60da str r2, [r3, #12] TIM_MasterConfigTypeDef sMasterConfig = {0}; 8003018: 463b mov r3, r7 800301a: 2200 movs r2, #0 800301c: 601a str r2, [r3, #0] 800301e: 605a str r2, [r3, #4] /* USER CODE BEGIN TIM3_Init 1 */ /* USER CODE END TIM3_Init 1 */ htim3.Instance = TIM3; 8003020: 4b1d ldr r3, [pc, #116] @ (8003098 ) 8003022: 4a1e ldr r2, [pc, #120] @ (800309c ) 8003024: 601a str r2, [r3, #0] htim3.Init.Prescaler = 3; 8003026: 4b1c ldr r3, [pc, #112] @ (8003098 ) 8003028: 2203 movs r2, #3 800302a: 605a str r2, [r3, #4] htim3.Init.CounterMode = TIM_COUNTERMODE_UP; 800302c: 4b1a ldr r3, [pc, #104] @ (8003098 ) 800302e: 2200 movs r2, #0 8003030: 609a str r2, [r3, #8] htim3.Init.Period = 59999; 8003032: 4b19 ldr r3, [pc, #100] @ (8003098 ) 8003034: f64e 225f movw r2, #59999 @ 0xea5f 8003038: 60da str r2, [r3, #12] htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1; 800303a: 4b17 ldr r3, [pc, #92] @ (8003098 ) 800303c: 2200 movs r2, #0 800303e: 611a str r2, [r3, #16] htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_ENABLE; 8003040: 4b15 ldr r3, [pc, #84] @ (8003098 ) 8003042: 2280 movs r2, #128 @ 0x80 8003044: 619a str r2, [r3, #24] if (HAL_TIM_Base_Init(&htim3) != HAL_OK) 8003046: 4814 ldr r0, [pc, #80] @ (8003098 ) 8003048: f003 fb10 bl 800666c 800304c: 4603 mov r3, r0 800304e: 2b00 cmp r3, #0 8003050: d001 beq.n 8003056 { Error_Handler(); 8003052: f7ff fe5d bl 8002d10 } sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL; 8003056: f44f 5380 mov.w r3, #4096 @ 0x1000 800305a: 60bb str r3, [r7, #8] if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK) 800305c: f107 0308 add.w r3, r7, #8 8003060: 4619 mov r1, r3 8003062: 480d ldr r0, [pc, #52] @ (8003098 ) 8003064: f003 fb9c bl 80067a0 8003068: 4603 mov r3, r0 800306a: 2b00 cmp r3, #0 800306c: d001 beq.n 8003072 { Error_Handler(); 800306e: f7ff fe4f bl 8002d10 } sMasterConfig.MasterOutputTrigger = TIM_TRGO_UPDATE; 8003072: 2320 movs r3, #32 8003074: 603b str r3, [r7, #0] sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE; 8003076: 2300 movs r3, #0 8003078: 607b str r3, [r7, #4] if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK) 800307a: 463b mov r3, r7 800307c: 4619 mov r1, r3 800307e: 4806 ldr r0, [pc, #24] @ (8003098 ) 8003080: f003 fd5a bl 8006b38 8003084: 4603 mov r3, r0 8003086: 2b00 cmp r3, #0 8003088: d001 beq.n 800308e { Error_Handler(); 800308a: f7ff fe41 bl 8002d10 } /* USER CODE BEGIN TIM3_Init 2 */ /* USER CODE END TIM3_Init 2 */ } 800308e: bf00 nop 8003090: 3718 adds r7, #24 8003092: 46bd mov sp, r7 8003094: bd80 pop {r7, pc} 8003096: bf00 nop 8003098: 20000720 .word 0x20000720 800309c: 40000400 .word 0x40000400 080030a0 : void HAL_TIM_Base_MspInit(TIM_HandleTypeDef* tim_baseHandle) { 80030a0: b480 push {r7} 80030a2: b085 sub sp, #20 80030a4: af00 add r7, sp, #0 80030a6: 6078 str r0, [r7, #4] if(tim_baseHandle->Instance==TIM3) 80030a8: 687b ldr r3, [r7, #4] 80030aa: 681b ldr r3, [r3, #0] 80030ac: 4a09 ldr r2, [pc, #36] @ (80030d4 ) 80030ae: 4293 cmp r3, r2 80030b0: d10b bne.n 80030ca { /* USER CODE BEGIN TIM3_MspInit 0 */ /* USER CODE END TIM3_MspInit 0 */ /* TIM3 clock enable */ __HAL_RCC_TIM3_CLK_ENABLE(); 80030b2: 4b09 ldr r3, [pc, #36] @ (80030d8 ) 80030b4: 69db ldr r3, [r3, #28] 80030b6: 4a08 ldr r2, [pc, #32] @ (80030d8 ) 80030b8: f043 0302 orr.w r3, r3, #2 80030bc: 61d3 str r3, [r2, #28] 80030be: 4b06 ldr r3, [pc, #24] @ (80030d8 ) 80030c0: 69db ldr r3, [r3, #28] 80030c2: f003 0302 and.w r3, r3, #2 80030c6: 60fb str r3, [r7, #12] 80030c8: 68fb ldr r3, [r7, #12] /* USER CODE BEGIN TIM3_MspInit 1 */ /* USER CODE END TIM3_MspInit 1 */ } } 80030ca: bf00 nop 80030cc: 3714 adds r7, #20 80030ce: 46bd mov sp, r7 80030d0: bc80 pop {r7} 80030d2: 4770 bx lr 80030d4: 40000400 .word 0x40000400 80030d8: 40021000 .word 0x40021000 080030dc : UART_HandleTypeDef huart1; /* USART1 init function */ void MX_USART1_UART_Init(void) { 80030dc: b580 push {r7, lr} 80030de: af00 add r7, sp, #0 /* USER CODE END USART1_Init 0 */ /* USER CODE BEGIN USART1_Init 1 */ /* USER CODE END USART1_Init 1 */ huart1.Instance = USART1; 80030e0: 4b11 ldr r3, [pc, #68] @ (8003128 ) 80030e2: 4a12 ldr r2, [pc, #72] @ (800312c ) 80030e4: 601a str r2, [r3, #0] huart1.Init.BaudRate = 115200; 80030e6: 4b10 ldr r3, [pc, #64] @ (8003128 ) 80030e8: f44f 32e1 mov.w r2, #115200 @ 0x1c200 80030ec: 605a str r2, [r3, #4] huart1.Init.WordLength = UART_WORDLENGTH_8B; 80030ee: 4b0e ldr r3, [pc, #56] @ (8003128 ) 80030f0: 2200 movs r2, #0 80030f2: 609a str r2, [r3, #8] huart1.Init.StopBits = UART_STOPBITS_1; 80030f4: 4b0c ldr r3, [pc, #48] @ (8003128 ) 80030f6: 2200 movs r2, #0 80030f8: 60da str r2, [r3, #12] huart1.Init.Parity = UART_PARITY_NONE; 80030fa: 4b0b ldr r3, [pc, #44] @ (8003128 ) 80030fc: 2200 movs r2, #0 80030fe: 611a str r2, [r3, #16] huart1.Init.Mode = UART_MODE_TX_RX; 8003100: 4b09 ldr r3, [pc, #36] @ (8003128 ) 8003102: 220c movs r2, #12 8003104: 615a str r2, [r3, #20] huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE; 8003106: 4b08 ldr r3, [pc, #32] @ (8003128 ) 8003108: 2200 movs r2, #0 800310a: 619a str r2, [r3, #24] huart1.Init.OverSampling = UART_OVERSAMPLING_16; 800310c: 4b06 ldr r3, [pc, #24] @ (8003128 ) 800310e: 2200 movs r2, #0 8003110: 61da str r2, [r3, #28] if (HAL_UART_Init(&huart1) != HAL_OK) 8003112: 4805 ldr r0, [pc, #20] @ (8003128 ) 8003114: f003 fd6e bl 8006bf4 8003118: 4603 mov r3, r0 800311a: 2b00 cmp r3, #0 800311c: d001 beq.n 8003122 { Error_Handler(); 800311e: f7ff fdf7 bl 8002d10 } /* USER CODE BEGIN USART1_Init 2 */ /* USER CODE END USART1_Init 2 */ } 8003122: bf00 nop 8003124: bd80 pop {r7, pc} 8003126: bf00 nop 8003128: 20000768 .word 0x20000768 800312c: 40013800 .word 0x40013800 08003130 : void HAL_UART_MspInit(UART_HandleTypeDef* uartHandle) { 8003130: b580 push {r7, lr} 8003132: b088 sub sp, #32 8003134: af00 add r7, sp, #0 8003136: 6078 str r0, [r7, #4] GPIO_InitTypeDef GPIO_InitStruct = {0}; 8003138: f107 0310 add.w r3, r7, #16 800313c: 2200 movs r2, #0 800313e: 601a str r2, [r3, #0] 8003140: 605a str r2, [r3, #4] 8003142: 609a str r2, [r3, #8] 8003144: 60da str r2, [r3, #12] if(uartHandle->Instance==USART1) 8003146: 687b ldr r3, [r7, #4] 8003148: 681b ldr r3, [r3, #0] 800314a: 4a20 ldr r2, [pc, #128] @ (80031cc ) 800314c: 4293 cmp r3, r2 800314e: d139 bne.n 80031c4 { /* USER CODE BEGIN USART1_MspInit 0 */ /* USER CODE END USART1_MspInit 0 */ /* USART1 clock enable */ __HAL_RCC_USART1_CLK_ENABLE(); 8003150: 4b1f ldr r3, [pc, #124] @ (80031d0 ) 8003152: 699b ldr r3, [r3, #24] 8003154: 4a1e ldr r2, [pc, #120] @ (80031d0 ) 8003156: f443 4380 orr.w r3, r3, #16384 @ 0x4000 800315a: 6193 str r3, [r2, #24] 800315c: 4b1c ldr r3, [pc, #112] @ (80031d0 ) 800315e: 699b ldr r3, [r3, #24] 8003160: f403 4380 and.w r3, r3, #16384 @ 0x4000 8003164: 60fb str r3, [r7, #12] 8003166: 68fb ldr r3, [r7, #12] __HAL_RCC_GPIOA_CLK_ENABLE(); 8003168: 4b19 ldr r3, [pc, #100] @ (80031d0 ) 800316a: 699b ldr r3, [r3, #24] 800316c: 4a18 ldr r2, [pc, #96] @ (80031d0 ) 800316e: f043 0304 orr.w r3, r3, #4 8003172: 6193 str r3, [r2, #24] 8003174: 4b16 ldr r3, [pc, #88] @ (80031d0 ) 8003176: 699b ldr r3, [r3, #24] 8003178: f003 0304 and.w r3, r3, #4 800317c: 60bb str r3, [r7, #8] 800317e: 68bb ldr r3, [r7, #8] /**USART1 GPIO Configuration PA9 ------> USART1_TX PA10 ------> USART1_RX */ GPIO_InitStruct.Pin = TX_RS485_Pin; 8003180: f44f 7300 mov.w r3, #512 @ 0x200 8003184: 613b str r3, [r7, #16] GPIO_InitStruct.Mode = GPIO_MODE_AF_PP; 8003186: 2302 movs r3, #2 8003188: 617b str r3, [r7, #20] GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_MEDIUM; 800318a: 2301 movs r3, #1 800318c: 61fb str r3, [r7, #28] HAL_GPIO_Init(TX_RS485_GPIO_Port, &GPIO_InitStruct); 800318e: f107 0310 add.w r3, r7, #16 8003192: 4619 mov r1, r3 8003194: 480f ldr r0, [pc, #60] @ (80031d4 ) 8003196: f001 faeb bl 8004770 GPIO_InitStruct.Pin = RX_RS485_Pin; 800319a: f44f 6380 mov.w r3, #1024 @ 0x400 800319e: 613b str r3, [r7, #16] GPIO_InitStruct.Mode = GPIO_MODE_INPUT; 80031a0: 2300 movs r3, #0 80031a2: 617b str r3, [r7, #20] GPIO_InitStruct.Pull = GPIO_NOPULL; 80031a4: 2300 movs r3, #0 80031a6: 61bb str r3, [r7, #24] HAL_GPIO_Init(RX_RS485_GPIO_Port, &GPIO_InitStruct); 80031a8: f107 0310 add.w r3, r7, #16 80031ac: 4619 mov r1, r3 80031ae: 4809 ldr r0, [pc, #36] @ (80031d4 ) 80031b0: f001 fade bl 8004770 /* USART1 interrupt Init */ HAL_NVIC_SetPriority(USART1_IRQn, 0, 0); 80031b4: 2200 movs r2, #0 80031b6: 2100 movs r1, #0 80031b8: 2025 movs r0, #37 @ 0x25 80031ba: f000 fe00 bl 8003dbe HAL_NVIC_EnableIRQ(USART1_IRQn); 80031be: 2025 movs r0, #37 @ 0x25 80031c0: f000 fe19 bl 8003df6 /* USER CODE BEGIN USART1_MspInit 1 */ /* USER CODE END USART1_MspInit 1 */ } } 80031c4: bf00 nop 80031c6: 3720 adds r7, #32 80031c8: 46bd mov sp, r7 80031ca: bd80 pop {r7, pc} 80031cc: 40013800 .word 0x40013800 80031d0: 40021000 .word 0x40021000 80031d4: 40010800 .word 0x40010800 080031d8 : .weak Reset_Handler .type Reset_Handler, %function Reset_Handler: /* Call the clock system initialization function.*/ bl SystemInit 80031d8: f7ff ff0e bl 8002ff8 /* Copy the data segment initializers from flash to SRAM */ ldr r0, =_sdata 80031dc: 480b ldr r0, [pc, #44] @ (800320c ) ldr r1, =_edata 80031de: 490c ldr r1, [pc, #48] @ (8003210 ) ldr r2, =_sidata 80031e0: 4a0c ldr r2, [pc, #48] @ (8003214 ) movs r3, #0 80031e2: 2300 movs r3, #0 b LoopCopyDataInit 80031e4: e002 b.n 80031ec 080031e6 : CopyDataInit: ldr r4, [r2, r3] 80031e6: 58d4 ldr r4, [r2, r3] str r4, [r0, r3] 80031e8: 50c4 str r4, [r0, r3] adds r3, r3, #4 80031ea: 3304 adds r3, #4 080031ec : LoopCopyDataInit: adds r4, r0, r3 80031ec: 18c4 adds r4, r0, r3 cmp r4, r1 80031ee: 428c cmp r4, r1 bcc CopyDataInit 80031f0: d3f9 bcc.n 80031e6 /* Zero fill the bss segment. */ ldr r2, =_sbss 80031f2: 4a09 ldr r2, [pc, #36] @ (8003218 ) ldr r4, =_ebss 80031f4: 4c09 ldr r4, [pc, #36] @ (800321c ) movs r3, #0 80031f6: 2300 movs r3, #0 b LoopFillZerobss 80031f8: e001 b.n 80031fe 080031fa : FillZerobss: str r3, [r2] 80031fa: 6013 str r3, [r2, #0] adds r2, r2, #4 80031fc: 3204 adds r2, #4 080031fe : LoopFillZerobss: cmp r2, r4 80031fe: 42a2 cmp r2, r4 bcc FillZerobss 8003200: d3fb bcc.n 80031fa /* Call static constructors */ bl __libc_init_array 8003202: f004 fb1b bl 800783c <__libc_init_array> /* Call the application's entry point.*/ bl main 8003206: f7ff f9ab bl 8002560
bx lr 800320a: 4770 bx lr ldr r0, =_sdata 800320c: 20000000 .word 0x20000000 ldr r1, =_edata 8003210: 20000080 .word 0x20000080 ldr r2, =_sidata 8003214: 08007ab8 .word 0x08007ab8 ldr r2, =_sbss 8003218: 20000080 .word 0x20000080 ldr r4, =_ebss 800321c: 20000910 .word 0x20000910 08003220 : * @retval : None */ .section .text.Default_Handler,"ax",%progbits Default_Handler: Infinite_Loop: b Infinite_Loop 8003220: e7fe b.n 8003220 ... 08003224 : * need to ensure that the SysTick time base is always set to 1 millisecond * to have correct HAL operation. * @retval HAL status */ HAL_StatusTypeDef HAL_Init(void) { 8003224: b580 push {r7, lr} 8003226: af00 add r7, sp, #0 defined(STM32F102x6) || defined(STM32F102xB) || \ defined(STM32F103x6) || defined(STM32F103xB) || defined(STM32F103xE) || defined(STM32F103xG) || \ defined(STM32F105xC) || defined(STM32F107xC) /* Prefetch buffer is not available on value line devices */ __HAL_FLASH_PREFETCH_BUFFER_ENABLE(); 8003228: 4b08 ldr r3, [pc, #32] @ (800324c ) 800322a: 681b ldr r3, [r3, #0] 800322c: 4a07 ldr r2, [pc, #28] @ (800324c ) 800322e: f043 0310 orr.w r3, r3, #16 8003232: 6013 str r3, [r2, #0] #endif #endif /* PREFETCH_ENABLE */ /* Set Interrupt Group Priority */ HAL_NVIC_SetPriorityGrouping(NVIC_PRIORITYGROUP_4); 8003234: 2003 movs r0, #3 8003236: f000 fdb7 bl 8003da8 /* Use systick as time base source and configure 1ms tick (default clock after Reset is HSI) */ HAL_InitTick(TICK_INT_PRIORITY); 800323a: 200f movs r0, #15 800323c: f000 f808 bl 8003250 /* Init the low level hardware */ HAL_MspInit(); 8003240: f7ff fe60 bl 8002f04 /* Return function status */ return HAL_OK; 8003244: 2300 movs r3, #0 } 8003246: 4618 mov r0, r3 8003248: bd80 pop {r7, pc} 800324a: bf00 nop 800324c: 40022000 .word 0x40022000 08003250 : * implementation in user file. * @param TickPriority Tick interrupt priority. * @retval HAL status */ __weak HAL_StatusTypeDef HAL_InitTick(uint32_t TickPriority) { 8003250: b580 push {r7, lr} 8003252: b082 sub sp, #8 8003254: af00 add r7, sp, #0 8003256: 6078 str r0, [r7, #4] /* Configure the SysTick to have interrupt in 1ms time basis*/ if (HAL_SYSTICK_Config(SystemCoreClock / (1000U / uwTickFreq)) > 0U) 8003258: 4b12 ldr r3, [pc, #72] @ (80032a4 ) 800325a: 681a ldr r2, [r3, #0] 800325c: 4b12 ldr r3, [pc, #72] @ (80032a8 ) 800325e: 781b ldrb r3, [r3, #0] 8003260: 4619 mov r1, r3 8003262: f44f 737a mov.w r3, #1000 @ 0x3e8 8003266: fbb3 f3f1 udiv r3, r3, r1 800326a: fbb2 f3f3 udiv r3, r2, r3 800326e: 4618 mov r0, r3 8003270: f000 fdcf bl 8003e12 8003274: 4603 mov r3, r0 8003276: 2b00 cmp r3, #0 8003278: d001 beq.n 800327e { return HAL_ERROR; 800327a: 2301 movs r3, #1 800327c: e00e b.n 800329c } /* Configure the SysTick IRQ priority */ if (TickPriority < (1UL << __NVIC_PRIO_BITS)) 800327e: 687b ldr r3, [r7, #4] 8003280: 2b0f cmp r3, #15 8003282: d80a bhi.n 800329a { HAL_NVIC_SetPriority(SysTick_IRQn, TickPriority, 0U); 8003284: 2200 movs r2, #0 8003286: 6879 ldr r1, [r7, #4] 8003288: f04f 30ff mov.w r0, #4294967295 800328c: f000 fd97 bl 8003dbe uwTickPrio = TickPriority; 8003290: 4a06 ldr r2, [pc, #24] @ (80032ac ) 8003292: 687b ldr r3, [r7, #4] 8003294: 6013 str r3, [r2, #0] { return HAL_ERROR; } /* Return function status */ return HAL_OK; 8003296: 2300 movs r3, #0 8003298: e000 b.n 800329c return HAL_ERROR; 800329a: 2301 movs r3, #1 } 800329c: 4618 mov r0, r3 800329e: 3708 adds r7, #8 80032a0: 46bd mov sp, r7 80032a2: bd80 pop {r7, pc} 80032a4: 20000024 .word 0x20000024 80032a8: 2000002c .word 0x2000002c 80032ac: 20000028 .word 0x20000028 080032b0 : * @note This function is declared as __weak to be overwritten in case of other * implementations in user file. * @retval None */ __weak void HAL_IncTick(void) { 80032b0: b480 push {r7} 80032b2: af00 add r7, sp, #0 uwTick += uwTickFreq; 80032b4: 4b05 ldr r3, [pc, #20] @ (80032cc ) 80032b6: 781b ldrb r3, [r3, #0] 80032b8: 461a mov r2, r3 80032ba: 4b05 ldr r3, [pc, #20] @ (80032d0 ) 80032bc: 681b ldr r3, [r3, #0] 80032be: 4413 add r3, r2 80032c0: 4a03 ldr r2, [pc, #12] @ (80032d0 ) 80032c2: 6013 str r3, [r2, #0] } 80032c4: bf00 nop 80032c6: 46bd mov sp, r7 80032c8: bc80 pop {r7} 80032ca: 4770 bx lr 80032cc: 2000002c .word 0x2000002c 80032d0: 200007b0 .word 0x200007b0 080032d4 : * @note This function is declared as __weak to be overwritten in case of other * implementations in user file. * @retval tick value */ __weak uint32_t HAL_GetTick(void) { 80032d4: b480 push {r7} 80032d6: af00 add r7, sp, #0 return uwTick; 80032d8: 4b02 ldr r3, [pc, #8] @ (80032e4 ) 80032da: 681b ldr r3, [r3, #0] } 80032dc: 4618 mov r0, r3 80032de: 46bd mov sp, r7 80032e0: bc80 pop {r7} 80032e2: 4770 bx lr 80032e4: 200007b0 .word 0x200007b0 080032e8 : * implementations in user file. * @param Delay specifies the delay time length, in milliseconds. * @retval None */ __weak void HAL_Delay(uint32_t Delay) { 80032e8: b580 push {r7, lr} 80032ea: b084 sub sp, #16 80032ec: af00 add r7, sp, #0 80032ee: 6078 str r0, [r7, #4] uint32_t tickstart = HAL_GetTick(); 80032f0: f7ff fff0 bl 80032d4 80032f4: 60b8 str r0, [r7, #8] uint32_t wait = Delay; 80032f6: 687b ldr r3, [r7, #4] 80032f8: 60fb str r3, [r7, #12] /* Add a freq to guarantee minimum wait */ if (wait < HAL_MAX_DELAY) 80032fa: 68fb ldr r3, [r7, #12] 80032fc: f1b3 3fff cmp.w r3, #4294967295 8003300: d005 beq.n 800330e { wait += (uint32_t)(uwTickFreq); 8003302: 4b0a ldr r3, [pc, #40] @ (800332c ) 8003304: 781b ldrb r3, [r3, #0] 8003306: 461a mov r2, r3 8003308: 68fb ldr r3, [r7, #12] 800330a: 4413 add r3, r2 800330c: 60fb str r3, [r7, #12] } while ((HAL_GetTick() - tickstart) < wait) 800330e: bf00 nop 8003310: f7ff ffe0 bl 80032d4 8003314: 4602 mov r2, r0 8003316: 68bb ldr r3, [r7, #8] 8003318: 1ad3 subs r3, r2, r3 800331a: 68fa ldr r2, [r7, #12] 800331c: 429a cmp r2, r3 800331e: d8f7 bhi.n 8003310 { } } 8003320: bf00 nop 8003322: bf00 nop 8003324: 3710 adds r7, #16 8003326: 46bd mov sp, r7 8003328: bd80 pop {r7, pc} 800332a: bf00 nop 800332c: 2000002c .word 0x2000002c 08003330 : * of structure "ADC_InitTypeDef". * @param hadc: ADC handle * @retval HAL status */ HAL_StatusTypeDef HAL_ADC_Init(ADC_HandleTypeDef* hadc) { 8003330: b580 push {r7, lr} 8003332: b086 sub sp, #24 8003334: af00 add r7, sp, #0 8003336: 6078 str r0, [r7, #4] HAL_StatusTypeDef tmp_hal_status = HAL_OK; 8003338: 2300 movs r3, #0 800333a: 75fb strb r3, [r7, #23] uint32_t tmp_cr1 = 0U; 800333c: 2300 movs r3, #0 800333e: 613b str r3, [r7, #16] uint32_t tmp_cr2 = 0U; 8003340: 2300 movs r3, #0 8003342: 60bb str r3, [r7, #8] uint32_t tmp_sqr1 = 0U; 8003344: 2300 movs r3, #0 8003346: 60fb str r3, [r7, #12] /* Check ADC handle */ if(hadc == NULL) 8003348: 687b ldr r3, [r7, #4] 800334a: 2b00 cmp r3, #0 800334c: d101 bne.n 8003352 { return HAL_ERROR; 800334e: 2301 movs r3, #1 8003350: e0be b.n 80034d0 assert_param(IS_ADC_DATA_ALIGN(hadc->Init.DataAlign)); assert_param(IS_ADC_SCAN_MODE(hadc->Init.ScanConvMode)); assert_param(IS_FUNCTIONAL_STATE(hadc->Init.ContinuousConvMode)); assert_param(IS_ADC_EXTTRIG(hadc->Init.ExternalTrigConv)); if(hadc->Init.ScanConvMode != ADC_SCAN_DISABLE) 8003352: 687b ldr r3, [r7, #4] 8003354: 689b ldr r3, [r3, #8] 8003356: 2b00 cmp r3, #0 /* Refer to header of this file for more details on clock enabling */ /* procedure. */ /* Actions performed only if ADC is coming from state reset: */ /* - Initialization of ADC MSP */ if (hadc->State == HAL_ADC_STATE_RESET) 8003358: 687b ldr r3, [r7, #4] 800335a: 6a9b ldr r3, [r3, #40] @ 0x28 800335c: 2b00 cmp r3, #0 800335e: d109 bne.n 8003374 { /* Initialize ADC error code */ ADC_CLEAR_ERRORCODE(hadc); 8003360: 687b ldr r3, [r7, #4] 8003362: 2200 movs r2, #0 8003364: 62da str r2, [r3, #44] @ 0x2c /* Allocate lock resource and initialize it */ hadc->Lock = HAL_UNLOCKED; 8003366: 687b ldr r3, [r7, #4] 8003368: 2200 movs r2, #0 800336a: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* Init the low level hardware */ hadc->MspInitCallback(hadc); #else /* Init the low level hardware */ HAL_ADC_MspInit(hadc); 800336e: 6878 ldr r0, [r7, #4] 8003370: f7fe fc1e bl 8001bb0 /* Stop potential conversion on going, on regular and injected groups */ /* Disable ADC peripheral */ /* Note: In case of ADC already enabled, precaution to not launch an */ /* unwanted conversion while modifying register CR2 by writing 1 to */ /* bit ADON. */ tmp_hal_status = ADC_ConversionStop_Disable(hadc); 8003374: 6878 ldr r0, [r7, #4] 8003376: f000 faf5 bl 8003964 800337a: 4603 mov r3, r0 800337c: 75fb strb r3, [r7, #23] /* Configuration of ADC parameters if previous preliminary actions are */ /* correctly completed. */ if (HAL_IS_BIT_CLR(hadc->State, HAL_ADC_STATE_ERROR_INTERNAL) && 800337e: 687b ldr r3, [r7, #4] 8003380: 6a9b ldr r3, [r3, #40] @ 0x28 8003382: f003 0310 and.w r3, r3, #16 8003386: 2b00 cmp r3, #0 8003388: f040 8099 bne.w 80034be 800338c: 7dfb ldrb r3, [r7, #23] 800338e: 2b00 cmp r3, #0 8003390: f040 8095 bne.w 80034be (tmp_hal_status == HAL_OK) ) { /* Set ADC state */ ADC_STATE_CLR_SET(hadc->State, 8003394: 687b ldr r3, [r7, #4] 8003396: 6a9b ldr r3, [r3, #40] @ 0x28 8003398: f423 5388 bic.w r3, r3, #4352 @ 0x1100 800339c: f023 0302 bic.w r3, r3, #2 80033a0: f043 0202 orr.w r2, r3, #2 80033a4: 687b ldr r3, [r7, #4] 80033a6: 629a str r2, [r3, #40] @ 0x28 /* - continuous conversion mode */ /* Note: External trigger polarity (ADC_CR2_EXTTRIG) is set into */ /* HAL_ADC_Start_xxx functions because if set in this function, */ /* a conversion on injected group would start a conversion also on */ /* regular group after ADC enabling. */ tmp_cr2 |= (hadc->Init.DataAlign | 80033a8: 687b ldr r3, [r7, #4] 80033aa: 685a ldr r2, [r3, #4] ADC_CFGR_EXTSEL(hadc, hadc->Init.ExternalTrigConv) | 80033ac: 687b ldr r3, [r7, #4] 80033ae: 69db ldr r3, [r3, #28] tmp_cr2 |= (hadc->Init.DataAlign | 80033b0: 431a orrs r2, r3 ADC_CR2_CONTINUOUS((uint32_t)hadc->Init.ContinuousConvMode) ); 80033b2: 687b ldr r3, [r7, #4] 80033b4: 7b1b ldrb r3, [r3, #12] 80033b6: 005b lsls r3, r3, #1 ADC_CFGR_EXTSEL(hadc, hadc->Init.ExternalTrigConv) | 80033b8: 4313 orrs r3, r2 tmp_cr2 |= (hadc->Init.DataAlign | 80033ba: 68ba ldr r2, [r7, #8] 80033bc: 4313 orrs r3, r2 80033be: 60bb str r3, [r7, #8] /* Configuration of ADC: */ /* - scan mode */ /* - discontinuous mode disable/enable */ /* - discontinuous mode number of conversions */ tmp_cr1 |= (ADC_CR1_SCAN_SET(hadc->Init.ScanConvMode)); 80033c0: 687b ldr r3, [r7, #4] 80033c2: 689b ldr r3, [r3, #8] 80033c4: f5b3 7f80 cmp.w r3, #256 @ 0x100 80033c8: d003 beq.n 80033d2 80033ca: 687b ldr r3, [r7, #4] 80033cc: 689b ldr r3, [r3, #8] 80033ce: 2b01 cmp r3, #1 80033d0: d102 bne.n 80033d8 80033d2: f44f 7380 mov.w r3, #256 @ 0x100 80033d6: e000 b.n 80033da 80033d8: 2300 movs r3, #0 80033da: 693a ldr r2, [r7, #16] 80033dc: 4313 orrs r3, r2 80033de: 613b str r3, [r7, #16] /* Enable discontinuous mode only if continuous mode is disabled */ /* Note: If parameter "Init.ScanConvMode" is set to disable, parameter */ /* discontinuous is set anyway, but will have no effect on ADC HW. */ if (hadc->Init.DiscontinuousConvMode == ENABLE) 80033e0: 687b ldr r3, [r7, #4] 80033e2: 7d1b ldrb r3, [r3, #20] 80033e4: 2b01 cmp r3, #1 80033e6: d119 bne.n 800341c { if (hadc->Init.ContinuousConvMode == DISABLE) 80033e8: 687b ldr r3, [r7, #4] 80033ea: 7b1b ldrb r3, [r3, #12] 80033ec: 2b00 cmp r3, #0 80033ee: d109 bne.n 8003404 { /* Enable the selected ADC regular discontinuous mode */ /* Set the number of channels to be converted in discontinuous mode */ SET_BIT(tmp_cr1, ADC_CR1_DISCEN | 80033f0: 687b ldr r3, [r7, #4] 80033f2: 699b ldr r3, [r3, #24] 80033f4: 3b01 subs r3, #1 80033f6: 035a lsls r2, r3, #13 80033f8: 693b ldr r3, [r7, #16] 80033fa: 4313 orrs r3, r2 80033fc: f443 6300 orr.w r3, r3, #2048 @ 0x800 8003400: 613b str r3, [r7, #16] 8003402: e00b b.n 800341c { /* ADC regular group settings continuous and sequencer discontinuous*/ /* cannot be enabled simultaneously. */ /* Update ADC state machine to error */ SET_BIT(hadc->State, HAL_ADC_STATE_ERROR_CONFIG); 8003404: 687b ldr r3, [r7, #4] 8003406: 6a9b ldr r3, [r3, #40] @ 0x28 8003408: f043 0220 orr.w r2, r3, #32 800340c: 687b ldr r3, [r7, #4] 800340e: 629a str r2, [r3, #40] @ 0x28 /* Set ADC error code to ADC IP internal error */ SET_BIT(hadc->ErrorCode, HAL_ADC_ERROR_INTERNAL); 8003410: 687b ldr r3, [r7, #4] 8003412: 6adb ldr r3, [r3, #44] @ 0x2c 8003414: f043 0201 orr.w r2, r3, #1 8003418: 687b ldr r3, [r7, #4] 800341a: 62da str r2, [r3, #44] @ 0x2c } } /* Update ADC configuration register CR1 with previous settings */ MODIFY_REG(hadc->Instance->CR1, 800341c: 687b ldr r3, [r7, #4] 800341e: 681b ldr r3, [r3, #0] 8003420: 685b ldr r3, [r3, #4] 8003422: f423 4169 bic.w r1, r3, #59648 @ 0xe900 8003426: 687b ldr r3, [r7, #4] 8003428: 681b ldr r3, [r3, #0] 800342a: 693a ldr r2, [r7, #16] 800342c: 430a orrs r2, r1 800342e: 605a str r2, [r3, #4] ADC_CR1_DISCEN | ADC_CR1_DISCNUM , tmp_cr1 ); /* Update ADC configuration register CR2 with previous settings */ MODIFY_REG(hadc->Instance->CR2, 8003430: 687b ldr r3, [r7, #4] 8003432: 681b ldr r3, [r3, #0] 8003434: 689a ldr r2, [r3, #8] 8003436: 4b28 ldr r3, [pc, #160] @ (80034d8 ) 8003438: 4013 ands r3, r2 800343a: 687a ldr r2, [r7, #4] 800343c: 6812 ldr r2, [r2, #0] 800343e: 68b9 ldr r1, [r7, #8] 8003440: 430b orrs r3, r1 8003442: 6093 str r3, [r2, #8] /* Note: Scan mode is present by hardware on this device and, if */ /* disabled, discards automatically nb of conversions. Anyway, nb of */ /* conversions is forced to 0x00 for alignment over all STM32 devices. */ /* - if scan mode is enabled, regular channels sequence length is set to */ /* parameter "NbrOfConversion" */ if (ADC_CR1_SCAN_SET(hadc->Init.ScanConvMode) == ADC_SCAN_ENABLE) 8003444: 687b ldr r3, [r7, #4] 8003446: 689b ldr r3, [r3, #8] 8003448: f5b3 7f80 cmp.w r3, #256 @ 0x100 800344c: d003 beq.n 8003456 800344e: 687b ldr r3, [r7, #4] 8003450: 689b ldr r3, [r3, #8] 8003452: 2b01 cmp r3, #1 8003454: d104 bne.n 8003460 { tmp_sqr1 = ADC_SQR1_L_SHIFT(hadc->Init.NbrOfConversion); 8003456: 687b ldr r3, [r7, #4] 8003458: 691b ldr r3, [r3, #16] 800345a: 3b01 subs r3, #1 800345c: 051b lsls r3, r3, #20 800345e: 60fb str r3, [r7, #12] } MODIFY_REG(hadc->Instance->SQR1, 8003460: 687b ldr r3, [r7, #4] 8003462: 681b ldr r3, [r3, #0] 8003464: 6adb ldr r3, [r3, #44] @ 0x2c 8003466: f423 0170 bic.w r1, r3, #15728640 @ 0xf00000 800346a: 687b ldr r3, [r7, #4] 800346c: 681b ldr r3, [r3, #0] 800346e: 68fa ldr r2, [r7, #12] 8003470: 430a orrs r2, r1 8003472: 62da str r2, [r3, #44] @ 0x2c /* ensure of no potential problem of ADC core IP clocking. */ /* Check through register CR2 (excluding bits set in other functions: */ /* execution control bits (ADON, JSWSTART, SWSTART), regular group bits */ /* (DMA), injected group bits (JEXTTRIG and JEXTSEL), channel internal */ /* measurement path bit (TSVREFE). */ if (READ_BIT(hadc->Instance->CR2, ~(ADC_CR2_ADON | ADC_CR2_DMA | 8003474: 687b ldr r3, [r7, #4] 8003476: 681b ldr r3, [r3, #0] 8003478: 689a ldr r2, [r3, #8] 800347a: 4b18 ldr r3, [pc, #96] @ (80034dc ) 800347c: 4013 ands r3, r2 800347e: 68ba ldr r2, [r7, #8] 8003480: 429a cmp r2, r3 8003482: d10b bne.n 800349c ADC_CR2_JEXTTRIG | ADC_CR2_JEXTSEL | ADC_CR2_TSVREFE )) == tmp_cr2) { /* Set ADC error code to none */ ADC_CLEAR_ERRORCODE(hadc); 8003484: 687b ldr r3, [r7, #4] 8003486: 2200 movs r2, #0 8003488: 62da str r2, [r3, #44] @ 0x2c /* Set the ADC state */ ADC_STATE_CLR_SET(hadc->State, 800348a: 687b ldr r3, [r7, #4] 800348c: 6a9b ldr r3, [r3, #40] @ 0x28 800348e: f023 0303 bic.w r3, r3, #3 8003492: f043 0201 orr.w r2, r3, #1 8003496: 687b ldr r3, [r7, #4] 8003498: 629a str r2, [r3, #40] @ 0x28 if (READ_BIT(hadc->Instance->CR2, ~(ADC_CR2_ADON | ADC_CR2_DMA | 800349a: e018 b.n 80034ce HAL_ADC_STATE_READY); } else { /* Update ADC state machine to error */ ADC_STATE_CLR_SET(hadc->State, 800349c: 687b ldr r3, [r7, #4] 800349e: 6a9b ldr r3, [r3, #40] @ 0x28 80034a0: f023 0312 bic.w r3, r3, #18 80034a4: f043 0210 orr.w r2, r3, #16 80034a8: 687b ldr r3, [r7, #4] 80034aa: 629a str r2, [r3, #40] @ 0x28 HAL_ADC_STATE_BUSY_INTERNAL, HAL_ADC_STATE_ERROR_INTERNAL); /* Set ADC error code to ADC IP internal error */ SET_BIT(hadc->ErrorCode, HAL_ADC_ERROR_INTERNAL); 80034ac: 687b ldr r3, [r7, #4] 80034ae: 6adb ldr r3, [r3, #44] @ 0x2c 80034b0: f043 0201 orr.w r2, r3, #1 80034b4: 687b ldr r3, [r7, #4] 80034b6: 62da str r2, [r3, #44] @ 0x2c tmp_hal_status = HAL_ERROR; 80034b8: 2301 movs r3, #1 80034ba: 75fb strb r3, [r7, #23] if (READ_BIT(hadc->Instance->CR2, ~(ADC_CR2_ADON | ADC_CR2_DMA | 80034bc: e007 b.n 80034ce } else { /* Update ADC state machine to error */ SET_BIT(hadc->State, HAL_ADC_STATE_ERROR_INTERNAL); 80034be: 687b ldr r3, [r7, #4] 80034c0: 6a9b ldr r3, [r3, #40] @ 0x28 80034c2: f043 0210 orr.w r2, r3, #16 80034c6: 687b ldr r3, [r7, #4] 80034c8: 629a str r2, [r3, #40] @ 0x28 tmp_hal_status = HAL_ERROR; 80034ca: 2301 movs r3, #1 80034cc: 75fb strb r3, [r7, #23] } /* Return function status */ return tmp_hal_status; 80034ce: 7dfb ldrb r3, [r7, #23] } 80034d0: 4618 mov r0, r3 80034d2: 3718 adds r7, #24 80034d4: 46bd mov sp, r7 80034d6: bd80 pop {r7, pc} 80034d8: ffe1f7fd .word 0xffe1f7fd 80034dc: ff1f0efe .word 0xff1f0efe 080034e0 : * @param pData: The destination Buffer address. * @param Length: The length of data to be transferred from ADC peripheral to memory. * @retval None */ HAL_StatusTypeDef HAL_ADC_Start_DMA(ADC_HandleTypeDef* hadc, uint32_t* pData, uint32_t Length) { 80034e0: b580 push {r7, lr} 80034e2: b086 sub sp, #24 80034e4: af00 add r7, sp, #0 80034e6: 60f8 str r0, [r7, #12] 80034e8: 60b9 str r1, [r7, #8] 80034ea: 607a str r2, [r7, #4] HAL_StatusTypeDef tmp_hal_status = HAL_OK; 80034ec: 2300 movs r3, #0 80034ee: 75fb strb r3, [r7, #23] assert_param(IS_ADC_DMA_CAPABILITY_INSTANCE(hadc->Instance)); /* Verification if multimode is disabled (for devices with several ADC) */ /* If multimode is enabled, dedicated function multimode conversion */ /* start DMA must be used. */ if(ADC_MULTIMODE_IS_ENABLE(hadc) == RESET) 80034f0: 68fb ldr r3, [r7, #12] 80034f2: 681b ldr r3, [r3, #0] 80034f4: 4a64 ldr r2, [pc, #400] @ (8003688 ) 80034f6: 4293 cmp r3, r2 80034f8: d004 beq.n 8003504 80034fa: 68fb ldr r3, [r7, #12] 80034fc: 681b ldr r3, [r3, #0] 80034fe: 4a63 ldr r2, [pc, #396] @ (800368c ) 8003500: 4293 cmp r3, r2 8003502: d106 bne.n 8003512 8003504: 4b60 ldr r3, [pc, #384] @ (8003688 ) 8003506: 685b ldr r3, [r3, #4] 8003508: f403 2370 and.w r3, r3, #983040 @ 0xf0000 800350c: 2b00 cmp r3, #0 800350e: f040 80b3 bne.w 8003678 { /* Process locked */ __HAL_LOCK(hadc); 8003512: 68fb ldr r3, [r7, #12] 8003514: f893 3024 ldrb.w r3, [r3, #36] @ 0x24 8003518: 2b01 cmp r3, #1 800351a: d101 bne.n 8003520 800351c: 2302 movs r3, #2 800351e: e0ae b.n 800367e 8003520: 68fb ldr r3, [r7, #12] 8003522: 2201 movs r2, #1 8003524: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* Enable the ADC peripheral */ tmp_hal_status = ADC_Enable(hadc); 8003528: 68f8 ldr r0, [r7, #12] 800352a: f000 f9c1 bl 80038b0 800352e: 4603 mov r3, r0 8003530: 75fb strb r3, [r7, #23] /* Start conversion if ADC is effectively enabled */ if (tmp_hal_status == HAL_OK) 8003532: 7dfb ldrb r3, [r7, #23] 8003534: 2b00 cmp r3, #0 8003536: f040 809a bne.w 800366e { /* Set ADC state */ /* - Clear state bitfield related to regular group conversion results */ /* - Set state bitfield related to regular operation */ ADC_STATE_CLR_SET(hadc->State, 800353a: 68fb ldr r3, [r7, #12] 800353c: 6a9b ldr r3, [r3, #40] @ 0x28 800353e: f423 6370 bic.w r3, r3, #3840 @ 0xf00 8003542: f023 0301 bic.w r3, r3, #1 8003546: f443 7280 orr.w r2, r3, #256 @ 0x100 800354a: 68fb ldr r3, [r7, #12] 800354c: 629a str r2, [r3, #40] @ 0x28 HAL_ADC_STATE_REG_BUSY); /* Set group injected state (from auto-injection) and multimode state */ /* for all cases of multimode: independent mode, multimode ADC master */ /* or multimode ADC slave (for devices with several ADCs): */ if (ADC_NONMULTIMODE_OR_MULTIMODEMASTER(hadc)) 800354e: 68fb ldr r3, [r7, #12] 8003550: 681b ldr r3, [r3, #0] 8003552: 4a4e ldr r2, [pc, #312] @ (800368c ) 8003554: 4293 cmp r3, r2 8003556: d105 bne.n 8003564 8003558: 4b4b ldr r3, [pc, #300] @ (8003688 ) 800355a: 685b ldr r3, [r3, #4] 800355c: f403 2370 and.w r3, r3, #983040 @ 0xf0000 8003560: 2b00 cmp r3, #0 8003562: d115 bne.n 8003590 { /* Set ADC state (ADC independent or master) */ CLEAR_BIT(hadc->State, HAL_ADC_STATE_MULTIMODE_SLAVE); 8003564: 68fb ldr r3, [r7, #12] 8003566: 6a9b ldr r3, [r3, #40] @ 0x28 8003568: f423 1280 bic.w r2, r3, #1048576 @ 0x100000 800356c: 68fb ldr r3, [r7, #12] 800356e: 629a str r2, [r3, #40] @ 0x28 /* If conversions on group regular are also triggering group injected, */ /* update ADC state. */ if (READ_BIT(hadc->Instance->CR1, ADC_CR1_JAUTO) != RESET) 8003570: 68fb ldr r3, [r7, #12] 8003572: 681b ldr r3, [r3, #0] 8003574: 685b ldr r3, [r3, #4] 8003576: f403 6380 and.w r3, r3, #1024 @ 0x400 800357a: 2b00 cmp r3, #0 800357c: d026 beq.n 80035cc { ADC_STATE_CLR_SET(hadc->State, HAL_ADC_STATE_INJ_EOC, HAL_ADC_STATE_INJ_BUSY); 800357e: 68fb ldr r3, [r7, #12] 8003580: 6a9b ldr r3, [r3, #40] @ 0x28 8003582: f423 5340 bic.w r3, r3, #12288 @ 0x3000 8003586: f443 5280 orr.w r2, r3, #4096 @ 0x1000 800358a: 68fb ldr r3, [r7, #12] 800358c: 629a str r2, [r3, #40] @ 0x28 if (READ_BIT(hadc->Instance->CR1, ADC_CR1_JAUTO) != RESET) 800358e: e01d b.n 80035cc } } else { /* Set ADC state (ADC slave) */ SET_BIT(hadc->State, HAL_ADC_STATE_MULTIMODE_SLAVE); 8003590: 68fb ldr r3, [r7, #12] 8003592: 6a9b ldr r3, [r3, #40] @ 0x28 8003594: f443 1280 orr.w r2, r3, #1048576 @ 0x100000 8003598: 68fb ldr r3, [r7, #12] 800359a: 629a str r2, [r3, #40] @ 0x28 /* If conversions on group regular are also triggering group injected, */ /* update ADC state. */ if (ADC_MULTIMODE_AUTO_INJECTED(hadc)) 800359c: 68fb ldr r3, [r7, #12] 800359e: 681b ldr r3, [r3, #0] 80035a0: 4a39 ldr r2, [pc, #228] @ (8003688 ) 80035a2: 4293 cmp r3, r2 80035a4: d004 beq.n 80035b0 80035a6: 68fb ldr r3, [r7, #12] 80035a8: 681b ldr r3, [r3, #0] 80035aa: 4a38 ldr r2, [pc, #224] @ (800368c ) 80035ac: 4293 cmp r3, r2 80035ae: d10d bne.n 80035cc 80035b0: 4b35 ldr r3, [pc, #212] @ (8003688 ) 80035b2: 685b ldr r3, [r3, #4] 80035b4: f403 6380 and.w r3, r3, #1024 @ 0x400 80035b8: 2b00 cmp r3, #0 80035ba: d007 beq.n 80035cc { ADC_STATE_CLR_SET(hadc->State, HAL_ADC_STATE_INJ_EOC, HAL_ADC_STATE_INJ_BUSY); 80035bc: 68fb ldr r3, [r7, #12] 80035be: 6a9b ldr r3, [r3, #40] @ 0x28 80035c0: f423 5340 bic.w r3, r3, #12288 @ 0x3000 80035c4: f443 5280 orr.w r2, r3, #4096 @ 0x1000 80035c8: 68fb ldr r3, [r7, #12] 80035ca: 629a str r2, [r3, #40] @ 0x28 } } /* State machine update: Check if an injected conversion is ongoing */ if (HAL_IS_BIT_SET(hadc->State, HAL_ADC_STATE_INJ_BUSY)) 80035cc: 68fb ldr r3, [r7, #12] 80035ce: 6a9b ldr r3, [r3, #40] @ 0x28 80035d0: f403 5380 and.w r3, r3, #4096 @ 0x1000 80035d4: 2b00 cmp r3, #0 80035d6: d006 beq.n 80035e6 { /* Reset ADC error code fields related to conversions on group regular */ CLEAR_BIT(hadc->ErrorCode, (HAL_ADC_ERROR_OVR | HAL_ADC_ERROR_DMA)); 80035d8: 68fb ldr r3, [r7, #12] 80035da: 6adb ldr r3, [r3, #44] @ 0x2c 80035dc: f023 0206 bic.w r2, r3, #6 80035e0: 68fb ldr r3, [r7, #12] 80035e2: 62da str r2, [r3, #44] @ 0x2c 80035e4: e002 b.n 80035ec } else { /* Reset ADC all error code fields */ ADC_CLEAR_ERRORCODE(hadc); 80035e6: 68fb ldr r3, [r7, #12] 80035e8: 2200 movs r2, #0 80035ea: 62da str r2, [r3, #44] @ 0x2c } /* Process unlocked */ /* Unlock before starting ADC conversions: in case of potential */ /* interruption, to let the process to ADC IRQ Handler. */ __HAL_UNLOCK(hadc); 80035ec: 68fb ldr r3, [r7, #12] 80035ee: 2200 movs r2, #0 80035f0: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* Set the DMA transfer complete callback */ hadc->DMA_Handle->XferCpltCallback = ADC_DMAConvCplt; 80035f4: 68fb ldr r3, [r7, #12] 80035f6: 6a1b ldr r3, [r3, #32] 80035f8: 4a25 ldr r2, [pc, #148] @ (8003690 ) 80035fa: 629a str r2, [r3, #40] @ 0x28 /* Set the DMA half transfer complete callback */ hadc->DMA_Handle->XferHalfCpltCallback = ADC_DMAHalfConvCplt; 80035fc: 68fb ldr r3, [r7, #12] 80035fe: 6a1b ldr r3, [r3, #32] 8003600: 4a24 ldr r2, [pc, #144] @ (8003694 ) 8003602: 62da str r2, [r3, #44] @ 0x2c /* Set the DMA error callback */ hadc->DMA_Handle->XferErrorCallback = ADC_DMAError; 8003604: 68fb ldr r3, [r7, #12] 8003606: 6a1b ldr r3, [r3, #32] 8003608: 4a23 ldr r2, [pc, #140] @ (8003698 ) 800360a: 631a str r2, [r3, #48] @ 0x30 /* start (in case of SW start): */ /* Clear regular group conversion flag and overrun flag */ /* (To ensure of no unknown state from potential previous ADC */ /* operations) */ __HAL_ADC_CLEAR_FLAG(hadc, ADC_FLAG_EOC); 800360c: 68fb ldr r3, [r7, #12] 800360e: 681b ldr r3, [r3, #0] 8003610: f06f 0202 mvn.w r2, #2 8003614: 601a str r2, [r3, #0] /* Enable ADC DMA mode */ SET_BIT(hadc->Instance->CR2, ADC_CR2_DMA); 8003616: 68fb ldr r3, [r7, #12] 8003618: 681b ldr r3, [r3, #0] 800361a: 689a ldr r2, [r3, #8] 800361c: 68fb ldr r3, [r7, #12] 800361e: 681b ldr r3, [r3, #0] 8003620: f442 7280 orr.w r2, r2, #256 @ 0x100 8003624: 609a str r2, [r3, #8] /* Start the DMA channel */ HAL_DMA_Start_IT(hadc->DMA_Handle, (uint32_t)&hadc->Instance->DR, (uint32_t)pData, Length); 8003626: 68fb ldr r3, [r7, #12] 8003628: 6a18 ldr r0, [r3, #32] 800362a: 68fb ldr r3, [r7, #12] 800362c: 681b ldr r3, [r3, #0] 800362e: 334c adds r3, #76 @ 0x4c 8003630: 4619 mov r1, r3 8003632: 68ba ldr r2, [r7, #8] 8003634: 687b ldr r3, [r7, #4] 8003636: f000 fc53 bl 8003ee0 /* Enable conversion of regular group. */ /* If software start has been selected, conversion starts immediately. */ /* If external trigger has been selected, conversion will start at next */ /* trigger event. */ if (ADC_IS_SOFTWARE_START_REGULAR(hadc)) 800363a: 68fb ldr r3, [r7, #12] 800363c: 681b ldr r3, [r3, #0] 800363e: 689b ldr r3, [r3, #8] 8003640: f403 2360 and.w r3, r3, #917504 @ 0xe0000 8003644: f5b3 2f60 cmp.w r3, #917504 @ 0xe0000 8003648: d108 bne.n 800365c { /* Start ADC conversion on regular group with SW start */ SET_BIT(hadc->Instance->CR2, (ADC_CR2_SWSTART | ADC_CR2_EXTTRIG)); 800364a: 68fb ldr r3, [r7, #12] 800364c: 681b ldr r3, [r3, #0] 800364e: 689a ldr r2, [r3, #8] 8003650: 68fb ldr r3, [r7, #12] 8003652: 681b ldr r3, [r3, #0] 8003654: f442 02a0 orr.w r2, r2, #5242880 @ 0x500000 8003658: 609a str r2, [r3, #8] if (tmp_hal_status == HAL_OK) 800365a: e00f b.n 800367c } else { /* Start ADC conversion on regular group with external trigger */ SET_BIT(hadc->Instance->CR2, ADC_CR2_EXTTRIG); 800365c: 68fb ldr r3, [r7, #12] 800365e: 681b ldr r3, [r3, #0] 8003660: 689a ldr r2, [r3, #8] 8003662: 68fb ldr r3, [r7, #12] 8003664: 681b ldr r3, [r3, #0] 8003666: f442 1280 orr.w r2, r2, #1048576 @ 0x100000 800366a: 609a str r2, [r3, #8] if (tmp_hal_status == HAL_OK) 800366c: e006 b.n 800367c } } else { /* Process unlocked */ __HAL_UNLOCK(hadc); 800366e: 68fb ldr r3, [r7, #12] 8003670: 2200 movs r2, #0 8003672: f883 2024 strb.w r2, [r3, #36] @ 0x24 if (tmp_hal_status == HAL_OK) 8003676: e001 b.n 800367c } } else { tmp_hal_status = HAL_ERROR; 8003678: 2301 movs r3, #1 800367a: 75fb strb r3, [r7, #23] } /* Return function status */ return tmp_hal_status; 800367c: 7dfb ldrb r3, [r7, #23] } 800367e: 4618 mov r0, r3 8003680: 3718 adds r7, #24 8003682: 46bd mov sp, r7 8003684: bd80 pop {r7, pc} 8003686: bf00 nop 8003688: 40012400 .word 0x40012400 800368c: 40012800 .word 0x40012800 8003690: 080039e7 .word 0x080039e7 8003694: 08003a63 .word 0x08003a63 8003698: 08003a7f .word 0x08003a7f 0800369c : * @brief Conversion DMA half-transfer callback in non blocking mode * @param hadc: ADC handle * @retval None */ __weak void HAL_ADC_ConvHalfCpltCallback(ADC_HandleTypeDef* hadc) { 800369c: b480 push {r7} 800369e: b083 sub sp, #12 80036a0: af00 add r7, sp, #0 80036a2: 6078 str r0, [r7, #4] /* Prevent unused argument(s) compilation warning */ UNUSED(hadc); /* NOTE : This function should not be modified. When the callback is needed, function HAL_ADC_ConvHalfCpltCallback must be implemented in the user file. */ } 80036a4: bf00 nop 80036a6: 370c adds r7, #12 80036a8: 46bd mov sp, r7 80036aa: bc80 pop {r7} 80036ac: 4770 bx lr 080036ae : * (ADC conversion with interruption or transfer by DMA) * @param hadc: ADC handle * @retval None */ __weak void HAL_ADC_ErrorCallback(ADC_HandleTypeDef *hadc) { 80036ae: b480 push {r7} 80036b0: b083 sub sp, #12 80036b2: af00 add r7, sp, #0 80036b4: 6078 str r0, [r7, #4] /* Prevent unused argument(s) compilation warning */ UNUSED(hadc); /* NOTE : This function should not be modified. When the callback is needed, function HAL_ADC_ErrorCallback must be implemented in the user file. */ } 80036b6: bf00 nop 80036b8: 370c adds r7, #12 80036ba: 46bd mov sp, r7 80036bc: bc80 pop {r7} 80036be: 4770 bx lr 080036c0 : * @param hadc: ADC handle * @param sConfig: Structure of ADC channel for regular group. * @retval HAL status */ HAL_StatusTypeDef HAL_ADC_ConfigChannel(ADC_HandleTypeDef* hadc, ADC_ChannelConfTypeDef* sConfig) { 80036c0: b480 push {r7} 80036c2: b085 sub sp, #20 80036c4: af00 add r7, sp, #0 80036c6: 6078 str r0, [r7, #4] 80036c8: 6039 str r1, [r7, #0] HAL_StatusTypeDef tmp_hal_status = HAL_OK; 80036ca: 2300 movs r3, #0 80036cc: 73fb strb r3, [r7, #15] __IO uint32_t wait_loop_index = 0U; 80036ce: 2300 movs r3, #0 80036d0: 60bb str r3, [r7, #8] assert_param(IS_ADC_CHANNEL(sConfig->Channel)); assert_param(IS_ADC_REGULAR_RANK(sConfig->Rank)); assert_param(IS_ADC_SAMPLE_TIME(sConfig->SamplingTime)); /* Process locked */ __HAL_LOCK(hadc); 80036d2: 687b ldr r3, [r7, #4] 80036d4: f893 3024 ldrb.w r3, [r3, #36] @ 0x24 80036d8: 2b01 cmp r3, #1 80036da: d101 bne.n 80036e0 80036dc: 2302 movs r3, #2 80036de: e0dc b.n 800389a 80036e0: 687b ldr r3, [r7, #4] 80036e2: 2201 movs r2, #1 80036e4: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* Regular sequence configuration */ /* For Rank 1 to 6 */ if (sConfig->Rank < 7U) 80036e8: 683b ldr r3, [r7, #0] 80036ea: 685b ldr r3, [r3, #4] 80036ec: 2b06 cmp r3, #6 80036ee: d81c bhi.n 800372a { MODIFY_REG(hadc->Instance->SQR3 , 80036f0: 687b ldr r3, [r7, #4] 80036f2: 681b ldr r3, [r3, #0] 80036f4: 6b59 ldr r1, [r3, #52] @ 0x34 80036f6: 683b ldr r3, [r7, #0] 80036f8: 685a ldr r2, [r3, #4] 80036fa: 4613 mov r3, r2 80036fc: 009b lsls r3, r3, #2 80036fe: 4413 add r3, r2 8003700: 3b05 subs r3, #5 8003702: 221f movs r2, #31 8003704: fa02 f303 lsl.w r3, r2, r3 8003708: 43db mvns r3, r3 800370a: 4019 ands r1, r3 800370c: 683b ldr r3, [r7, #0] 800370e: 6818 ldr r0, [r3, #0] 8003710: 683b ldr r3, [r7, #0] 8003712: 685a ldr r2, [r3, #4] 8003714: 4613 mov r3, r2 8003716: 009b lsls r3, r3, #2 8003718: 4413 add r3, r2 800371a: 3b05 subs r3, #5 800371c: fa00 f203 lsl.w r2, r0, r3 8003720: 687b ldr r3, [r7, #4] 8003722: 681b ldr r3, [r3, #0] 8003724: 430a orrs r2, r1 8003726: 635a str r2, [r3, #52] @ 0x34 8003728: e03c b.n 80037a4 ADC_SQR3_RK(ADC_SQR3_SQ1, sConfig->Rank) , ADC_SQR3_RK(sConfig->Channel, sConfig->Rank) ); } /* For Rank 7 to 12 */ else if (sConfig->Rank < 13U) 800372a: 683b ldr r3, [r7, #0] 800372c: 685b ldr r3, [r3, #4] 800372e: 2b0c cmp r3, #12 8003730: d81c bhi.n 800376c { MODIFY_REG(hadc->Instance->SQR2 , 8003732: 687b ldr r3, [r7, #4] 8003734: 681b ldr r3, [r3, #0] 8003736: 6b19 ldr r1, [r3, #48] @ 0x30 8003738: 683b ldr r3, [r7, #0] 800373a: 685a ldr r2, [r3, #4] 800373c: 4613 mov r3, r2 800373e: 009b lsls r3, r3, #2 8003740: 4413 add r3, r2 8003742: 3b23 subs r3, #35 @ 0x23 8003744: 221f movs r2, #31 8003746: fa02 f303 lsl.w r3, r2, r3 800374a: 43db mvns r3, r3 800374c: 4019 ands r1, r3 800374e: 683b ldr r3, [r7, #0] 8003750: 6818 ldr r0, [r3, #0] 8003752: 683b ldr r3, [r7, #0] 8003754: 685a ldr r2, [r3, #4] 8003756: 4613 mov r3, r2 8003758: 009b lsls r3, r3, #2 800375a: 4413 add r3, r2 800375c: 3b23 subs r3, #35 @ 0x23 800375e: fa00 f203 lsl.w r2, r0, r3 8003762: 687b ldr r3, [r7, #4] 8003764: 681b ldr r3, [r3, #0] 8003766: 430a orrs r2, r1 8003768: 631a str r2, [r3, #48] @ 0x30 800376a: e01b b.n 80037a4 ADC_SQR2_RK(sConfig->Channel, sConfig->Rank) ); } /* For Rank 13 to 16 */ else { MODIFY_REG(hadc->Instance->SQR1 , 800376c: 687b ldr r3, [r7, #4] 800376e: 681b ldr r3, [r3, #0] 8003770: 6ad9 ldr r1, [r3, #44] @ 0x2c 8003772: 683b ldr r3, [r7, #0] 8003774: 685a ldr r2, [r3, #4] 8003776: 4613 mov r3, r2 8003778: 009b lsls r3, r3, #2 800377a: 4413 add r3, r2 800377c: 3b41 subs r3, #65 @ 0x41 800377e: 221f movs r2, #31 8003780: fa02 f303 lsl.w r3, r2, r3 8003784: 43db mvns r3, r3 8003786: 4019 ands r1, r3 8003788: 683b ldr r3, [r7, #0] 800378a: 6818 ldr r0, [r3, #0] 800378c: 683b ldr r3, [r7, #0] 800378e: 685a ldr r2, [r3, #4] 8003790: 4613 mov r3, r2 8003792: 009b lsls r3, r3, #2 8003794: 4413 add r3, r2 8003796: 3b41 subs r3, #65 @ 0x41 8003798: fa00 f203 lsl.w r2, r0, r3 800379c: 687b ldr r3, [r7, #4] 800379e: 681b ldr r3, [r3, #0] 80037a0: 430a orrs r2, r1 80037a2: 62da str r2, [r3, #44] @ 0x2c } /* Channel sampling time configuration */ /* For channels 10 to 17 */ if (sConfig->Channel >= ADC_CHANNEL_10) 80037a4: 683b ldr r3, [r7, #0] 80037a6: 681b ldr r3, [r3, #0] 80037a8: 2b09 cmp r3, #9 80037aa: d91c bls.n 80037e6 { MODIFY_REG(hadc->Instance->SMPR1 , 80037ac: 687b ldr r3, [r7, #4] 80037ae: 681b ldr r3, [r3, #0] 80037b0: 68d9 ldr r1, [r3, #12] 80037b2: 683b ldr r3, [r7, #0] 80037b4: 681a ldr r2, [r3, #0] 80037b6: 4613 mov r3, r2 80037b8: 005b lsls r3, r3, #1 80037ba: 4413 add r3, r2 80037bc: 3b1e subs r3, #30 80037be: 2207 movs r2, #7 80037c0: fa02 f303 lsl.w r3, r2, r3 80037c4: 43db mvns r3, r3 80037c6: 4019 ands r1, r3 80037c8: 683b ldr r3, [r7, #0] 80037ca: 6898 ldr r0, [r3, #8] 80037cc: 683b ldr r3, [r7, #0] 80037ce: 681a ldr r2, [r3, #0] 80037d0: 4613 mov r3, r2 80037d2: 005b lsls r3, r3, #1 80037d4: 4413 add r3, r2 80037d6: 3b1e subs r3, #30 80037d8: fa00 f203 lsl.w r2, r0, r3 80037dc: 687b ldr r3, [r7, #4] 80037de: 681b ldr r3, [r3, #0] 80037e0: 430a orrs r2, r1 80037e2: 60da str r2, [r3, #12] 80037e4: e019 b.n 800381a ADC_SMPR1(ADC_SMPR1_SMP10, sConfig->Channel) , ADC_SMPR1(sConfig->SamplingTime, sConfig->Channel) ); } else /* For channels 0 to 9 */ { MODIFY_REG(hadc->Instance->SMPR2 , 80037e6: 687b ldr r3, [r7, #4] 80037e8: 681b ldr r3, [r3, #0] 80037ea: 6919 ldr r1, [r3, #16] 80037ec: 683b ldr r3, [r7, #0] 80037ee: 681a ldr r2, [r3, #0] 80037f0: 4613 mov r3, r2 80037f2: 005b lsls r3, r3, #1 80037f4: 4413 add r3, r2 80037f6: 2207 movs r2, #7 80037f8: fa02 f303 lsl.w r3, r2, r3 80037fc: 43db mvns r3, r3 80037fe: 4019 ands r1, r3 8003800: 683b ldr r3, [r7, #0] 8003802: 6898 ldr r0, [r3, #8] 8003804: 683b ldr r3, [r7, #0] 8003806: 681a ldr r2, [r3, #0] 8003808: 4613 mov r3, r2 800380a: 005b lsls r3, r3, #1 800380c: 4413 add r3, r2 800380e: fa00 f203 lsl.w r2, r0, r3 8003812: 687b ldr r3, [r7, #4] 8003814: 681b ldr r3, [r3, #0] 8003816: 430a orrs r2, r1 8003818: 611a str r2, [r3, #16] ADC_SMPR2(sConfig->SamplingTime, sConfig->Channel) ); } /* If ADC1 Channel_16 or Channel_17 is selected, enable Temperature sensor */ /* and VREFINT measurement path. */ if ((sConfig->Channel == ADC_CHANNEL_TEMPSENSOR) || 800381a: 683b ldr r3, [r7, #0] 800381c: 681b ldr r3, [r3, #0] 800381e: 2b10 cmp r3, #16 8003820: d003 beq.n 800382a (sConfig->Channel == ADC_CHANNEL_VREFINT) ) 8003822: 683b ldr r3, [r7, #0] 8003824: 681b ldr r3, [r3, #0] if ((sConfig->Channel == ADC_CHANNEL_TEMPSENSOR) || 8003826: 2b11 cmp r3, #17 8003828: d132 bne.n 8003890 { /* For STM32F1 devices with several ADC: Only ADC1 can access internal */ /* measurement channels (VrefInt/TempSensor). If these channels are */ /* intended to be set on other ADC instances, an error is reported. */ if (hadc->Instance == ADC1) 800382a: 687b ldr r3, [r7, #4] 800382c: 681b ldr r3, [r3, #0] 800382e: 4a1d ldr r2, [pc, #116] @ (80038a4 ) 8003830: 4293 cmp r3, r2 8003832: d125 bne.n 8003880 { if (READ_BIT(hadc->Instance->CR2, ADC_CR2_TSVREFE) == RESET) 8003834: 687b ldr r3, [r7, #4] 8003836: 681b ldr r3, [r3, #0] 8003838: 689b ldr r3, [r3, #8] 800383a: f403 0300 and.w r3, r3, #8388608 @ 0x800000 800383e: 2b00 cmp r3, #0 8003840: d126 bne.n 8003890 { SET_BIT(hadc->Instance->CR2, ADC_CR2_TSVREFE); 8003842: 687b ldr r3, [r7, #4] 8003844: 681b ldr r3, [r3, #0] 8003846: 689a ldr r2, [r3, #8] 8003848: 687b ldr r3, [r7, #4] 800384a: 681b ldr r3, [r3, #0] 800384c: f442 0200 orr.w r2, r2, #8388608 @ 0x800000 8003850: 609a str r2, [r3, #8] if (sConfig->Channel == ADC_CHANNEL_TEMPSENSOR) 8003852: 683b ldr r3, [r7, #0] 8003854: 681b ldr r3, [r3, #0] 8003856: 2b10 cmp r3, #16 8003858: d11a bne.n 8003890 { /* Delay for temperature sensor stabilization time */ /* Compute number of CPU cycles to wait for */ wait_loop_index = (ADC_TEMPSENSOR_DELAY_US * (SystemCoreClock / 1000000U)); 800385a: 4b13 ldr r3, [pc, #76] @ (80038a8 ) 800385c: 681b ldr r3, [r3, #0] 800385e: 4a13 ldr r2, [pc, #76] @ (80038ac ) 8003860: fba2 2303 umull r2, r3, r2, r3 8003864: 0c9a lsrs r2, r3, #18 8003866: 4613 mov r3, r2 8003868: 009b lsls r3, r3, #2 800386a: 4413 add r3, r2 800386c: 005b lsls r3, r3, #1 800386e: 60bb str r3, [r7, #8] while(wait_loop_index != 0U) 8003870: e002 b.n 8003878 { wait_loop_index--; 8003872: 68bb ldr r3, [r7, #8] 8003874: 3b01 subs r3, #1 8003876: 60bb str r3, [r7, #8] while(wait_loop_index != 0U) 8003878: 68bb ldr r3, [r7, #8] 800387a: 2b00 cmp r3, #0 800387c: d1f9 bne.n 8003872 800387e: e007 b.n 8003890 } } else { /* Update ADC state machine to error */ SET_BIT(hadc->State, HAL_ADC_STATE_ERROR_CONFIG); 8003880: 687b ldr r3, [r7, #4] 8003882: 6a9b ldr r3, [r3, #40] @ 0x28 8003884: f043 0220 orr.w r2, r3, #32 8003888: 687b ldr r3, [r7, #4] 800388a: 629a str r2, [r3, #40] @ 0x28 tmp_hal_status = HAL_ERROR; 800388c: 2301 movs r3, #1 800388e: 73fb strb r3, [r7, #15] } } /* Process unlocked */ __HAL_UNLOCK(hadc); 8003890: 687b ldr r3, [r7, #4] 8003892: 2200 movs r2, #0 8003894: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* Return function status */ return tmp_hal_status; 8003898: 7bfb ldrb r3, [r7, #15] } 800389a: 4618 mov r0, r3 800389c: 3714 adds r7, #20 800389e: 46bd mov sp, r7 80038a0: bc80 pop {r7} 80038a2: 4770 bx lr 80038a4: 40012400 .word 0x40012400 80038a8: 20000024 .word 0x20000024 80038ac: 431bde83 .word 0x431bde83 080038b0 : * and voltage regulator must be enabled (done into HAL_ADC_Init()). * @param hadc: ADC handle * @retval HAL status. */ HAL_StatusTypeDef ADC_Enable(ADC_HandleTypeDef* hadc) { 80038b0: b580 push {r7, lr} 80038b2: b084 sub sp, #16 80038b4: af00 add r7, sp, #0 80038b6: 6078 str r0, [r7, #4] uint32_t tickstart = 0U; 80038b8: 2300 movs r3, #0 80038ba: 60fb str r3, [r7, #12] __IO uint32_t wait_loop_index = 0U; 80038bc: 2300 movs r3, #0 80038be: 60bb str r3, [r7, #8] /* ADC enable and wait for ADC ready (in case of ADC is disabled or */ /* enabling phase not yet completed: flag ADC ready not yet set). */ /* Timeout implemented to not be stuck if ADC cannot be enabled (possible */ /* causes: ADC clock not running, ...). */ if (ADC_IS_ENABLE(hadc) == RESET) 80038c0: 687b ldr r3, [r7, #4] 80038c2: 681b ldr r3, [r3, #0] 80038c4: 689b ldr r3, [r3, #8] 80038c6: f003 0301 and.w r3, r3, #1 80038ca: 2b01 cmp r3, #1 80038cc: d040 beq.n 8003950 { /* Enable the Peripheral */ __HAL_ADC_ENABLE(hadc); 80038ce: 687b ldr r3, [r7, #4] 80038d0: 681b ldr r3, [r3, #0] 80038d2: 689a ldr r2, [r3, #8] 80038d4: 687b ldr r3, [r7, #4] 80038d6: 681b ldr r3, [r3, #0] 80038d8: f042 0201 orr.w r2, r2, #1 80038dc: 609a str r2, [r3, #8] /* Delay for ADC stabilization time */ /* Compute number of CPU cycles to wait for */ wait_loop_index = (ADC_STAB_DELAY_US * (SystemCoreClock / 1000000U)); 80038de: 4b1f ldr r3, [pc, #124] @ (800395c ) 80038e0: 681b ldr r3, [r3, #0] 80038e2: 4a1f ldr r2, [pc, #124] @ (8003960 ) 80038e4: fba2 2303 umull r2, r3, r2, r3 80038e8: 0c9b lsrs r3, r3, #18 80038ea: 60bb str r3, [r7, #8] while(wait_loop_index != 0U) 80038ec: e002 b.n 80038f4 { wait_loop_index--; 80038ee: 68bb ldr r3, [r7, #8] 80038f0: 3b01 subs r3, #1 80038f2: 60bb str r3, [r7, #8] while(wait_loop_index != 0U) 80038f4: 68bb ldr r3, [r7, #8] 80038f6: 2b00 cmp r3, #0 80038f8: d1f9 bne.n 80038ee } /* Get tick count */ tickstart = HAL_GetTick(); 80038fa: f7ff fceb bl 80032d4 80038fe: 60f8 str r0, [r7, #12] /* Wait for ADC effectively enabled */ while(ADC_IS_ENABLE(hadc) == RESET) 8003900: e01f b.n 8003942 { if((HAL_GetTick() - tickstart) > ADC_ENABLE_TIMEOUT) 8003902: f7ff fce7 bl 80032d4 8003906: 4602 mov r2, r0 8003908: 68fb ldr r3, [r7, #12] 800390a: 1ad3 subs r3, r2, r3 800390c: 2b02 cmp r3, #2 800390e: d918 bls.n 8003942 { /* New check to avoid false timeout detection in case of preemption */ if(ADC_IS_ENABLE(hadc) == RESET) 8003910: 687b ldr r3, [r7, #4] 8003912: 681b ldr r3, [r3, #0] 8003914: 689b ldr r3, [r3, #8] 8003916: f003 0301 and.w r3, r3, #1 800391a: 2b01 cmp r3, #1 800391c: d011 beq.n 8003942 { /* Update ADC state machine to error */ SET_BIT(hadc->State, HAL_ADC_STATE_ERROR_INTERNAL); 800391e: 687b ldr r3, [r7, #4] 8003920: 6a9b ldr r3, [r3, #40] @ 0x28 8003922: f043 0210 orr.w r2, r3, #16 8003926: 687b ldr r3, [r7, #4] 8003928: 629a str r2, [r3, #40] @ 0x28 /* Set ADC error code to ADC IP internal error */ SET_BIT(hadc->ErrorCode, HAL_ADC_ERROR_INTERNAL); 800392a: 687b ldr r3, [r7, #4] 800392c: 6adb ldr r3, [r3, #44] @ 0x2c 800392e: f043 0201 orr.w r2, r3, #1 8003932: 687b ldr r3, [r7, #4] 8003934: 62da str r2, [r3, #44] @ 0x2c /* Process unlocked */ __HAL_UNLOCK(hadc); 8003936: 687b ldr r3, [r7, #4] 8003938: 2200 movs r2, #0 800393a: f883 2024 strb.w r2, [r3, #36] @ 0x24 return HAL_ERROR; 800393e: 2301 movs r3, #1 8003940: e007 b.n 8003952 while(ADC_IS_ENABLE(hadc) == RESET) 8003942: 687b ldr r3, [r7, #4] 8003944: 681b ldr r3, [r3, #0] 8003946: 689b ldr r3, [r3, #8] 8003948: f003 0301 and.w r3, r3, #1 800394c: 2b01 cmp r3, #1 800394e: d1d8 bne.n 8003902 } } } /* Return HAL status */ return HAL_OK; 8003950: 2300 movs r3, #0 } 8003952: 4618 mov r0, r3 8003954: 3710 adds r7, #16 8003956: 46bd mov sp, r7 8003958: bd80 pop {r7, pc} 800395a: bf00 nop 800395c: 20000024 .word 0x20000024 8003960: 431bde83 .word 0x431bde83 08003964 : * stopped to disable the ADC. * @param hadc: ADC handle * @retval HAL status. */ HAL_StatusTypeDef ADC_ConversionStop_Disable(ADC_HandleTypeDef* hadc) { 8003964: b580 push {r7, lr} 8003966: b084 sub sp, #16 8003968: af00 add r7, sp, #0 800396a: 6078 str r0, [r7, #4] uint32_t tickstart = 0U; 800396c: 2300 movs r3, #0 800396e: 60fb str r3, [r7, #12] /* Verification if ADC is not already disabled */ if (ADC_IS_ENABLE(hadc) != RESET) 8003970: 687b ldr r3, [r7, #4] 8003972: 681b ldr r3, [r3, #0] 8003974: 689b ldr r3, [r3, #8] 8003976: f003 0301 and.w r3, r3, #1 800397a: 2b01 cmp r3, #1 800397c: d12e bne.n 80039dc { /* Disable the ADC peripheral */ __HAL_ADC_DISABLE(hadc); 800397e: 687b ldr r3, [r7, #4] 8003980: 681b ldr r3, [r3, #0] 8003982: 689a ldr r2, [r3, #8] 8003984: 687b ldr r3, [r7, #4] 8003986: 681b ldr r3, [r3, #0] 8003988: f022 0201 bic.w r2, r2, #1 800398c: 609a str r2, [r3, #8] /* Get tick count */ tickstart = HAL_GetTick(); 800398e: f7ff fca1 bl 80032d4 8003992: 60f8 str r0, [r7, #12] /* Wait for ADC effectively disabled */ while(ADC_IS_ENABLE(hadc) != RESET) 8003994: e01b b.n 80039ce { if((HAL_GetTick() - tickstart) > ADC_DISABLE_TIMEOUT) 8003996: f7ff fc9d bl 80032d4 800399a: 4602 mov r2, r0 800399c: 68fb ldr r3, [r7, #12] 800399e: 1ad3 subs r3, r2, r3 80039a0: 2b02 cmp r3, #2 80039a2: d914 bls.n 80039ce { /* New check to avoid false timeout detection in case of preemption */ if(ADC_IS_ENABLE(hadc) != RESET) 80039a4: 687b ldr r3, [r7, #4] 80039a6: 681b ldr r3, [r3, #0] 80039a8: 689b ldr r3, [r3, #8] 80039aa: f003 0301 and.w r3, r3, #1 80039ae: 2b01 cmp r3, #1 80039b0: d10d bne.n 80039ce { /* Update ADC state machine to error */ SET_BIT(hadc->State, HAL_ADC_STATE_ERROR_INTERNAL); 80039b2: 687b ldr r3, [r7, #4] 80039b4: 6a9b ldr r3, [r3, #40] @ 0x28 80039b6: f043 0210 orr.w r2, r3, #16 80039ba: 687b ldr r3, [r7, #4] 80039bc: 629a str r2, [r3, #40] @ 0x28 /* Set ADC error code to ADC IP internal error */ SET_BIT(hadc->ErrorCode, HAL_ADC_ERROR_INTERNAL); 80039be: 687b ldr r3, [r7, #4] 80039c0: 6adb ldr r3, [r3, #44] @ 0x2c 80039c2: f043 0201 orr.w r2, r3, #1 80039c6: 687b ldr r3, [r7, #4] 80039c8: 62da str r2, [r3, #44] @ 0x2c return HAL_ERROR; 80039ca: 2301 movs r3, #1 80039cc: e007 b.n 80039de while(ADC_IS_ENABLE(hadc) != RESET) 80039ce: 687b ldr r3, [r7, #4] 80039d0: 681b ldr r3, [r3, #0] 80039d2: 689b ldr r3, [r3, #8] 80039d4: f003 0301 and.w r3, r3, #1 80039d8: 2b01 cmp r3, #1 80039da: d0dc beq.n 8003996 } } } /* Return HAL status */ return HAL_OK; 80039dc: 2300 movs r3, #0 } 80039de: 4618 mov r0, r3 80039e0: 3710 adds r7, #16 80039e2: 46bd mov sp, r7 80039e4: bd80 pop {r7, pc} 080039e6 : * @brief DMA transfer complete callback. * @param hdma: pointer to DMA handle. * @retval None */ void ADC_DMAConvCplt(DMA_HandleTypeDef *hdma) { 80039e6: b580 push {r7, lr} 80039e8: b084 sub sp, #16 80039ea: af00 add r7, sp, #0 80039ec: 6078 str r0, [r7, #4] /* Retrieve ADC handle corresponding to current DMA handle */ ADC_HandleTypeDef* hadc = ( ADC_HandleTypeDef* )((DMA_HandleTypeDef* )hdma)->Parent; 80039ee: 687b ldr r3, [r7, #4] 80039f0: 6a5b ldr r3, [r3, #36] @ 0x24 80039f2: 60fb str r3, [r7, #12] /* Update state machine on conversion status if not in error state */ if (HAL_IS_BIT_CLR(hadc->State, HAL_ADC_STATE_ERROR_INTERNAL | HAL_ADC_STATE_ERROR_DMA)) 80039f4: 68fb ldr r3, [r7, #12] 80039f6: 6a9b ldr r3, [r3, #40] @ 0x28 80039f8: f003 0350 and.w r3, r3, #80 @ 0x50 80039fc: 2b00 cmp r3, #0 80039fe: d127 bne.n 8003a50 { /* Update ADC state machine */ SET_BIT(hadc->State, HAL_ADC_STATE_REG_EOC); 8003a00: 68fb ldr r3, [r7, #12] 8003a02: 6a9b ldr r3, [r3, #40] @ 0x28 8003a04: f443 7200 orr.w r2, r3, #512 @ 0x200 8003a08: 68fb ldr r3, [r7, #12] 8003a0a: 629a str r2, [r3, #40] @ 0x28 /* Determine whether any further conversion upcoming on group regular */ /* by external trigger, continuous mode or scan sequence on going. */ /* Note: On STM32F1 devices, in case of sequencer enabled */ /* (several ranks selected), end of conversion flag is raised */ /* at the end of the sequence. */ if(ADC_IS_SOFTWARE_START_REGULAR(hadc) && 8003a0c: 68fb ldr r3, [r7, #12] 8003a0e: 681b ldr r3, [r3, #0] 8003a10: 689b ldr r3, [r3, #8] 8003a12: f403 2360 and.w r3, r3, #917504 @ 0xe0000 8003a16: f5b3 2f60 cmp.w r3, #917504 @ 0xe0000 8003a1a: d115 bne.n 8003a48 (hadc->Init.ContinuousConvMode == DISABLE) ) 8003a1c: 68fb ldr r3, [r7, #12] 8003a1e: 7b1b ldrb r3, [r3, #12] if(ADC_IS_SOFTWARE_START_REGULAR(hadc) && 8003a20: 2b00 cmp r3, #0 8003a22: d111 bne.n 8003a48 { /* Set ADC state */ CLEAR_BIT(hadc->State, HAL_ADC_STATE_REG_BUSY); 8003a24: 68fb ldr r3, [r7, #12] 8003a26: 6a9b ldr r3, [r3, #40] @ 0x28 8003a28: f423 7280 bic.w r2, r3, #256 @ 0x100 8003a2c: 68fb ldr r3, [r7, #12] 8003a2e: 629a str r2, [r3, #40] @ 0x28 if (HAL_IS_BIT_CLR(hadc->State, HAL_ADC_STATE_INJ_BUSY)) 8003a30: 68fb ldr r3, [r7, #12] 8003a32: 6a9b ldr r3, [r3, #40] @ 0x28 8003a34: f403 5380 and.w r3, r3, #4096 @ 0x1000 8003a38: 2b00 cmp r3, #0 8003a3a: d105 bne.n 8003a48 { SET_BIT(hadc->State, HAL_ADC_STATE_READY); 8003a3c: 68fb ldr r3, [r7, #12] 8003a3e: 6a9b ldr r3, [r3, #40] @ 0x28 8003a40: f043 0201 orr.w r2, r3, #1 8003a44: 68fb ldr r3, [r7, #12] 8003a46: 629a str r2, [r3, #40] @ 0x28 /* Conversion complete callback */ #if (USE_HAL_ADC_REGISTER_CALLBACKS == 1) hadc->ConvCpltCallback(hadc); #else HAL_ADC_ConvCpltCallback(hadc); 8003a48: 68f8 ldr r0, [r7, #12] 8003a4a: f7ff f953 bl 8002cf4 else { /* Call DMA error callback */ hadc->DMA_Handle->XferErrorCallback(hdma); } } 8003a4e: e004 b.n 8003a5a hadc->DMA_Handle->XferErrorCallback(hdma); 8003a50: 68fb ldr r3, [r7, #12] 8003a52: 6a1b ldr r3, [r3, #32] 8003a54: 6b1b ldr r3, [r3, #48] @ 0x30 8003a56: 6878 ldr r0, [r7, #4] 8003a58: 4798 blx r3 } 8003a5a: bf00 nop 8003a5c: 3710 adds r7, #16 8003a5e: 46bd mov sp, r7 8003a60: bd80 pop {r7, pc} 08003a62 : * @brief DMA half transfer complete callback. * @param hdma: pointer to DMA handle. * @retval None */ void ADC_DMAHalfConvCplt(DMA_HandleTypeDef *hdma) { 8003a62: b580 push {r7, lr} 8003a64: b084 sub sp, #16 8003a66: af00 add r7, sp, #0 8003a68: 6078 str r0, [r7, #4] /* Retrieve ADC handle corresponding to current DMA handle */ ADC_HandleTypeDef* hadc = ( ADC_HandleTypeDef* )((DMA_HandleTypeDef* )hdma)->Parent; 8003a6a: 687b ldr r3, [r7, #4] 8003a6c: 6a5b ldr r3, [r3, #36] @ 0x24 8003a6e: 60fb str r3, [r7, #12] /* Half conversion callback */ #if (USE_HAL_ADC_REGISTER_CALLBACKS == 1) hadc->ConvHalfCpltCallback(hadc); #else HAL_ADC_ConvHalfCpltCallback(hadc); 8003a70: 68f8 ldr r0, [r7, #12] 8003a72: f7ff fe13 bl 800369c #endif /* USE_HAL_ADC_REGISTER_CALLBACKS */ } 8003a76: bf00 nop 8003a78: 3710 adds r7, #16 8003a7a: 46bd mov sp, r7 8003a7c: bd80 pop {r7, pc} 08003a7e : * @brief DMA error callback * @param hdma: pointer to DMA handle. * @retval None */ void ADC_DMAError(DMA_HandleTypeDef *hdma) { 8003a7e: b580 push {r7, lr} 8003a80: b084 sub sp, #16 8003a82: af00 add r7, sp, #0 8003a84: 6078 str r0, [r7, #4] /* Retrieve ADC handle corresponding to current DMA handle */ ADC_HandleTypeDef* hadc = ( ADC_HandleTypeDef* )((DMA_HandleTypeDef* )hdma)->Parent; 8003a86: 687b ldr r3, [r7, #4] 8003a88: 6a5b ldr r3, [r3, #36] @ 0x24 8003a8a: 60fb str r3, [r7, #12] /* Set ADC state */ SET_BIT(hadc->State, HAL_ADC_STATE_ERROR_DMA); 8003a8c: 68fb ldr r3, [r7, #12] 8003a8e: 6a9b ldr r3, [r3, #40] @ 0x28 8003a90: f043 0240 orr.w r2, r3, #64 @ 0x40 8003a94: 68fb ldr r3, [r7, #12] 8003a96: 629a str r2, [r3, #40] @ 0x28 /* Set ADC error code to DMA error */ SET_BIT(hadc->ErrorCode, HAL_ADC_ERROR_DMA); 8003a98: 68fb ldr r3, [r7, #12] 8003a9a: 6adb ldr r3, [r3, #44] @ 0x2c 8003a9c: f043 0204 orr.w r2, r3, #4 8003aa0: 68fb ldr r3, [r7, #12] 8003aa2: 62da str r2, [r3, #44] @ 0x2c /* Error callback */ #if (USE_HAL_ADC_REGISTER_CALLBACKS == 1) hadc->ErrorCallback(hadc); #else HAL_ADC_ErrorCallback(hadc); 8003aa4: 68f8 ldr r0, [r7, #12] 8003aa6: f7ff fe02 bl 80036ae #endif /* USE_HAL_ADC_REGISTER_CALLBACKS */ } 8003aaa: bf00 nop 8003aac: 3710 adds r7, #16 8003aae: 46bd mov sp, r7 8003ab0: bd80 pop {r7, pc} ... 08003ab4 : * the completion of this function. * @param hadc: ADC handle * @retval HAL status */ HAL_StatusTypeDef HAL_ADCEx_Calibration_Start(ADC_HandleTypeDef* hadc) { 8003ab4: b590 push {r4, r7, lr} 8003ab6: b087 sub sp, #28 8003ab8: af00 add r7, sp, #0 8003aba: 6078 str r0, [r7, #4] HAL_StatusTypeDef tmp_hal_status = HAL_OK; 8003abc: 2300 movs r3, #0 8003abe: 75fb strb r3, [r7, #23] uint32_t tickstart; __IO uint32_t wait_loop_index = 0U; 8003ac0: 2300 movs r3, #0 8003ac2: 60fb str r3, [r7, #12] /* Check the parameters */ assert_param(IS_ADC_ALL_INSTANCE(hadc->Instance)); /* Process locked */ __HAL_LOCK(hadc); 8003ac4: 687b ldr r3, [r7, #4] 8003ac6: f893 3024 ldrb.w r3, [r3, #36] @ 0x24 8003aca: 2b01 cmp r3, #1 8003acc: d101 bne.n 8003ad2 8003ace: 2302 movs r3, #2 8003ad0: e097 b.n 8003c02 8003ad2: 687b ldr r3, [r7, #4] 8003ad4: 2201 movs r2, #1 8003ad6: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* 1. Disable ADC peripheral */ tmp_hal_status = ADC_ConversionStop_Disable(hadc); 8003ada: 6878 ldr r0, [r7, #4] 8003adc: f7ff ff42 bl 8003964 8003ae0: 4603 mov r3, r0 8003ae2: 75fb strb r3, [r7, #23] /* 2. Calibration prerequisite delay before starting the calibration. */ /* - ADC must be enabled for at least two ADC clock cycles */ tmp_hal_status = ADC_Enable(hadc); 8003ae4: 6878 ldr r0, [r7, #4] 8003ae6: f7ff fee3 bl 80038b0 8003aea: 4603 mov r3, r0 8003aec: 75fb strb r3, [r7, #23] /* Check if ADC is effectively enabled */ if (tmp_hal_status == HAL_OK) 8003aee: 7dfb ldrb r3, [r7, #23] 8003af0: 2b00 cmp r3, #0 8003af2: f040 8081 bne.w 8003bf8 { /* Set ADC state */ ADC_STATE_CLR_SET(hadc->State, 8003af6: 687b ldr r3, [r7, #4] 8003af8: 6a9b ldr r3, [r3, #40] @ 0x28 8003afa: f423 5388 bic.w r3, r3, #4352 @ 0x1100 8003afe: f023 0302 bic.w r3, r3, #2 8003b02: f043 0202 orr.w r2, r3, #2 8003b06: 687b ldr r3, [r7, #4] 8003b08: 629a str r2, [r3, #40] @ 0x28 /* Hardware prerequisite: delay before starting the calibration. */ /* - Computation of CPU clock cycles corresponding to ADC clock cycles. */ /* - Wait for the expected ADC clock cycles delay */ wait_loop_index = ((SystemCoreClock / HAL_RCCEx_GetPeriphCLKFreq(RCC_PERIPHCLK_ADC)) 8003b0a: 4b40 ldr r3, [pc, #256] @ (8003c0c ) 8003b0c: 681c ldr r4, [r3, #0] 8003b0e: 2002 movs r0, #2 8003b10: f002 fcf6 bl 8006500 8003b14: 4603 mov r3, r0 8003b16: fbb4 f3f3 udiv r3, r4, r3 * ADC_PRECALIBRATION_DELAY_ADCCLOCKCYCLES ); 8003b1a: 005b lsls r3, r3, #1 wait_loop_index = ((SystemCoreClock 8003b1c: 60fb str r3, [r7, #12] while(wait_loop_index != 0U) 8003b1e: e002 b.n 8003b26 { wait_loop_index--; 8003b20: 68fb ldr r3, [r7, #12] 8003b22: 3b01 subs r3, #1 8003b24: 60fb str r3, [r7, #12] while(wait_loop_index != 0U) 8003b26: 68fb ldr r3, [r7, #12] 8003b28: 2b00 cmp r3, #0 8003b2a: d1f9 bne.n 8003b20 } /* 3. Resets ADC calibration registers */ SET_BIT(hadc->Instance->CR2, ADC_CR2_RSTCAL); 8003b2c: 687b ldr r3, [r7, #4] 8003b2e: 681b ldr r3, [r3, #0] 8003b30: 689a ldr r2, [r3, #8] 8003b32: 687b ldr r3, [r7, #4] 8003b34: 681b ldr r3, [r3, #0] 8003b36: f042 0208 orr.w r2, r2, #8 8003b3a: 609a str r2, [r3, #8] tickstart = HAL_GetTick(); 8003b3c: f7ff fbca bl 80032d4 8003b40: 6138 str r0, [r7, #16] /* Wait for calibration reset completion */ while(HAL_IS_BIT_SET(hadc->Instance->CR2, ADC_CR2_RSTCAL)) 8003b42: e01b b.n 8003b7c { if((HAL_GetTick() - tickstart) > ADC_CALIBRATION_TIMEOUT) 8003b44: f7ff fbc6 bl 80032d4 8003b48: 4602 mov r2, r0 8003b4a: 693b ldr r3, [r7, #16] 8003b4c: 1ad3 subs r3, r2, r3 8003b4e: 2b0a cmp r3, #10 8003b50: d914 bls.n 8003b7c { /* New check to avoid false timeout detection in case of preemption */ if(HAL_IS_BIT_SET(hadc->Instance->CR2, ADC_CR2_RSTCAL)) 8003b52: 687b ldr r3, [r7, #4] 8003b54: 681b ldr r3, [r3, #0] 8003b56: 689b ldr r3, [r3, #8] 8003b58: f003 0308 and.w r3, r3, #8 8003b5c: 2b00 cmp r3, #0 8003b5e: d00d beq.n 8003b7c { /* Update ADC state machine to error */ ADC_STATE_CLR_SET(hadc->State, 8003b60: 687b ldr r3, [r7, #4] 8003b62: 6a9b ldr r3, [r3, #40] @ 0x28 8003b64: f023 0312 bic.w r3, r3, #18 8003b68: f043 0210 orr.w r2, r3, #16 8003b6c: 687b ldr r3, [r7, #4] 8003b6e: 629a str r2, [r3, #40] @ 0x28 HAL_ADC_STATE_BUSY_INTERNAL, HAL_ADC_STATE_ERROR_INTERNAL); /* Process unlocked */ __HAL_UNLOCK(hadc); 8003b70: 687b ldr r3, [r7, #4] 8003b72: 2200 movs r2, #0 8003b74: f883 2024 strb.w r2, [r3, #36] @ 0x24 return HAL_ERROR; 8003b78: 2301 movs r3, #1 8003b7a: e042 b.n 8003c02 while(HAL_IS_BIT_SET(hadc->Instance->CR2, ADC_CR2_RSTCAL)) 8003b7c: 687b ldr r3, [r7, #4] 8003b7e: 681b ldr r3, [r3, #0] 8003b80: 689b ldr r3, [r3, #8] 8003b82: f003 0308 and.w r3, r3, #8 8003b86: 2b00 cmp r3, #0 8003b88: d1dc bne.n 8003b44 } } } /* 4. Start ADC calibration */ SET_BIT(hadc->Instance->CR2, ADC_CR2_CAL); 8003b8a: 687b ldr r3, [r7, #4] 8003b8c: 681b ldr r3, [r3, #0] 8003b8e: 689a ldr r2, [r3, #8] 8003b90: 687b ldr r3, [r7, #4] 8003b92: 681b ldr r3, [r3, #0] 8003b94: f042 0204 orr.w r2, r2, #4 8003b98: 609a str r2, [r3, #8] tickstart = HAL_GetTick(); 8003b9a: f7ff fb9b bl 80032d4 8003b9e: 6138 str r0, [r7, #16] /* Wait for calibration completion */ while(HAL_IS_BIT_SET(hadc->Instance->CR2, ADC_CR2_CAL)) 8003ba0: e01b b.n 8003bda { if((HAL_GetTick() - tickstart) > ADC_CALIBRATION_TIMEOUT) 8003ba2: f7ff fb97 bl 80032d4 8003ba6: 4602 mov r2, r0 8003ba8: 693b ldr r3, [r7, #16] 8003baa: 1ad3 subs r3, r2, r3 8003bac: 2b0a cmp r3, #10 8003bae: d914 bls.n 8003bda { /* New check to avoid false timeout detection in case of preemption */ if(HAL_IS_BIT_SET(hadc->Instance->CR2, ADC_CR2_CAL)) 8003bb0: 687b ldr r3, [r7, #4] 8003bb2: 681b ldr r3, [r3, #0] 8003bb4: 689b ldr r3, [r3, #8] 8003bb6: f003 0304 and.w r3, r3, #4 8003bba: 2b00 cmp r3, #0 8003bbc: d00d beq.n 8003bda { /* Update ADC state machine to error */ ADC_STATE_CLR_SET(hadc->State, 8003bbe: 687b ldr r3, [r7, #4] 8003bc0: 6a9b ldr r3, [r3, #40] @ 0x28 8003bc2: f023 0312 bic.w r3, r3, #18 8003bc6: f043 0210 orr.w r2, r3, #16 8003bca: 687b ldr r3, [r7, #4] 8003bcc: 629a str r2, [r3, #40] @ 0x28 HAL_ADC_STATE_BUSY_INTERNAL, HAL_ADC_STATE_ERROR_INTERNAL); /* Process unlocked */ __HAL_UNLOCK(hadc); 8003bce: 687b ldr r3, [r7, #4] 8003bd0: 2200 movs r2, #0 8003bd2: f883 2024 strb.w r2, [r3, #36] @ 0x24 return HAL_ERROR; 8003bd6: 2301 movs r3, #1 8003bd8: e013 b.n 8003c02 while(HAL_IS_BIT_SET(hadc->Instance->CR2, ADC_CR2_CAL)) 8003bda: 687b ldr r3, [r7, #4] 8003bdc: 681b ldr r3, [r3, #0] 8003bde: 689b ldr r3, [r3, #8] 8003be0: f003 0304 and.w r3, r3, #4 8003be4: 2b00 cmp r3, #0 8003be6: d1dc bne.n 8003ba2 } } } /* Set ADC state */ ADC_STATE_CLR_SET(hadc->State, 8003be8: 687b ldr r3, [r7, #4] 8003bea: 6a9b ldr r3, [r3, #40] @ 0x28 8003bec: f023 0303 bic.w r3, r3, #3 8003bf0: f043 0201 orr.w r2, r3, #1 8003bf4: 687b ldr r3, [r7, #4] 8003bf6: 629a str r2, [r3, #40] @ 0x28 HAL_ADC_STATE_BUSY_INTERNAL, HAL_ADC_STATE_READY); } /* Process unlocked */ __HAL_UNLOCK(hadc); 8003bf8: 687b ldr r3, [r7, #4] 8003bfa: 2200 movs r2, #0 8003bfc: f883 2024 strb.w r2, [r3, #36] @ 0x24 /* Return function status */ return tmp_hal_status; 8003c00: 7dfb ldrb r3, [r7, #23] } 8003c02: 4618 mov r0, r3 8003c04: 371c adds r7, #28 8003c06: 46bd mov sp, r7 8003c08: bd90 pop {r4, r7, pc} 8003c0a: bf00 nop 8003c0c: 20000024 .word 0x20000024 08003c10 <__NVIC_SetPriorityGrouping>: In case of a conflict between priority grouping and available priority bits (__NVIC_PRIO_BITS), the smallest possible priority group is set. \param [in] PriorityGroup Priority grouping field. */ __STATIC_INLINE void __NVIC_SetPriorityGrouping(uint32_t PriorityGroup) { 8003c10: b480 push {r7} 8003c12: b085 sub sp, #20 8003c14: af00 add r7, sp, #0 8003c16: 6078 str r0, [r7, #4] uint32_t reg_value; uint32_t PriorityGroupTmp = (PriorityGroup & (uint32_t)0x07UL); /* only values 0..7 are used */ 8003c18: 687b ldr r3, [r7, #4] 8003c1a: f003 0307 and.w r3, r3, #7 8003c1e: 60fb str r3, [r7, #12] reg_value = SCB->AIRCR; /* read old register configuration */ 8003c20: 4b0c ldr r3, [pc, #48] @ (8003c54 <__NVIC_SetPriorityGrouping+0x44>) 8003c22: 68db ldr r3, [r3, #12] 8003c24: 60bb str r3, [r7, #8] reg_value &= ~((uint32_t)(SCB_AIRCR_VECTKEY_Msk | SCB_AIRCR_PRIGROUP_Msk)); /* clear bits to change */ 8003c26: 68ba ldr r2, [r7, #8] 8003c28: f64f 03ff movw r3, #63743 @ 0xf8ff 8003c2c: 4013 ands r3, r2 8003c2e: 60bb str r3, [r7, #8] reg_value = (reg_value | ((uint32_t)0x5FAUL << SCB_AIRCR_VECTKEY_Pos) | (PriorityGroupTmp << SCB_AIRCR_PRIGROUP_Pos) ); /* Insert write key and priority group */ 8003c30: 68fb ldr r3, [r7, #12] 8003c32: 021a lsls r2, r3, #8 ((uint32_t)0x5FAUL << SCB_AIRCR_VECTKEY_Pos) | 8003c34: 68bb ldr r3, [r7, #8] 8003c36: 4313 orrs r3, r2 reg_value = (reg_value | 8003c38: f043 63bf orr.w r3, r3, #100139008 @ 0x5f80000 8003c3c: f443 3300 orr.w r3, r3, #131072 @ 0x20000 8003c40: 60bb str r3, [r7, #8] SCB->AIRCR = reg_value; 8003c42: 4a04 ldr r2, [pc, #16] @ (8003c54 <__NVIC_SetPriorityGrouping+0x44>) 8003c44: 68bb ldr r3, [r7, #8] 8003c46: 60d3 str r3, [r2, #12] } 8003c48: bf00 nop 8003c4a: 3714 adds r7, #20 8003c4c: 46bd mov sp, r7 8003c4e: bc80 pop {r7} 8003c50: 4770 bx lr 8003c52: bf00 nop 8003c54: e000ed00 .word 0xe000ed00 08003c58 <__NVIC_GetPriorityGrouping>: \brief Get Priority Grouping \details Reads the priority grouping field from the NVIC Interrupt Controller. \return Priority grouping field (SCB->AIRCR [10:8] PRIGROUP field). */ __STATIC_INLINE uint32_t __NVIC_GetPriorityGrouping(void) { 8003c58: b480 push {r7} 8003c5a: af00 add r7, sp, #0 return ((uint32_t)((SCB->AIRCR & SCB_AIRCR_PRIGROUP_Msk) >> SCB_AIRCR_PRIGROUP_Pos)); 8003c5c: 4b04 ldr r3, [pc, #16] @ (8003c70 <__NVIC_GetPriorityGrouping+0x18>) 8003c5e: 68db ldr r3, [r3, #12] 8003c60: 0a1b lsrs r3, r3, #8 8003c62: f003 0307 and.w r3, r3, #7 } 8003c66: 4618 mov r0, r3 8003c68: 46bd mov sp, r7 8003c6a: bc80 pop {r7} 8003c6c: 4770 bx lr 8003c6e: bf00 nop 8003c70: e000ed00 .word 0xe000ed00 08003c74 <__NVIC_EnableIRQ>: \details Enables a device specific interrupt in the NVIC interrupt controller. \param [in] IRQn Device specific interrupt number. \note IRQn must not be negative. */ __STATIC_INLINE void __NVIC_EnableIRQ(IRQn_Type IRQn) { 8003c74: b480 push {r7} 8003c76: b083 sub sp, #12 8003c78: af00 add r7, sp, #0 8003c7a: 4603 mov r3, r0 8003c7c: 71fb strb r3, [r7, #7] if ((int32_t)(IRQn) >= 0) 8003c7e: f997 3007 ldrsb.w r3, [r7, #7] 8003c82: 2b00 cmp r3, #0 8003c84: db0b blt.n 8003c9e <__NVIC_EnableIRQ+0x2a> { NVIC->ISER[(((uint32_t)IRQn) >> 5UL)] = (uint32_t)(1UL << (((uint32_t)IRQn) & 0x1FUL)); 8003c86: 79fb ldrb r3, [r7, #7] 8003c88: f003 021f and.w r2, r3, #31 8003c8c: 4906 ldr r1, [pc, #24] @ (8003ca8 <__NVIC_EnableIRQ+0x34>) 8003c8e: f997 3007 ldrsb.w r3, [r7, #7] 8003c92: 095b lsrs r3, r3, #5 8003c94: 2001 movs r0, #1 8003c96: fa00 f202 lsl.w r2, r0, r2 8003c9a: f841 2023 str.w r2, [r1, r3, lsl #2] } } 8003c9e: bf00 nop 8003ca0: 370c adds r7, #12 8003ca2: 46bd mov sp, r7 8003ca4: bc80 pop {r7} 8003ca6: 4770 bx lr 8003ca8: e000e100 .word 0xe000e100 08003cac <__NVIC_SetPriority>: \param [in] IRQn Interrupt number. \param [in] priority Priority to set. \note The priority cannot be set for every processor exception. */ __STATIC_INLINE void __NVIC_SetPriority(IRQn_Type IRQn, uint32_t priority) { 8003cac: b480 push {r7} 8003cae: b083 sub sp, #12 8003cb0: af00 add r7, sp, #0 8003cb2: 4603 mov r3, r0 8003cb4: 6039 str r1, [r7, #0] 8003cb6: 71fb strb r3, [r7, #7] if ((int32_t)(IRQn) >= 0) 8003cb8: f997 3007 ldrsb.w r3, [r7, #7] 8003cbc: 2b00 cmp r3, #0 8003cbe: db0a blt.n 8003cd6 <__NVIC_SetPriority+0x2a> { NVIC->IP[((uint32_t)IRQn)] = (uint8_t)((priority << (8U - __NVIC_PRIO_BITS)) & (uint32_t)0xFFUL); 8003cc0: 683b ldr r3, [r7, #0] 8003cc2: b2da uxtb r2, r3 8003cc4: 490c ldr r1, [pc, #48] @ (8003cf8 <__NVIC_SetPriority+0x4c>) 8003cc6: f997 3007 ldrsb.w r3, [r7, #7] 8003cca: 0112 lsls r2, r2, #4 8003ccc: b2d2 uxtb r2, r2 8003cce: 440b add r3, r1 8003cd0: f883 2300 strb.w r2, [r3, #768] @ 0x300 } else { SCB->SHP[(((uint32_t)IRQn) & 0xFUL)-4UL] = (uint8_t)((priority << (8U - __NVIC_PRIO_BITS)) & (uint32_t)0xFFUL); } } 8003cd4: e00a b.n 8003cec <__NVIC_SetPriority+0x40> SCB->SHP[(((uint32_t)IRQn) & 0xFUL)-4UL] = (uint8_t)((priority << (8U - __NVIC_PRIO_BITS)) & (uint32_t)0xFFUL); 8003cd6: 683b ldr r3, [r7, #0] 8003cd8: b2da uxtb r2, r3 8003cda: 4908 ldr r1, [pc, #32] @ (8003cfc <__NVIC_SetPriority+0x50>) 8003cdc: 79fb ldrb r3, [r7, #7] 8003cde: f003 030f and.w r3, r3, #15 8003ce2: 3b04 subs r3, #4 8003ce4: 0112 lsls r2, r2, #4 8003ce6: b2d2 uxtb r2, r2 8003ce8: 440b add r3, r1 8003cea: 761a strb r2, [r3, #24] } 8003cec: bf00 nop 8003cee: 370c adds r7, #12 8003cf0: 46bd mov sp, r7 8003cf2: bc80 pop {r7} 8003cf4: 4770 bx lr 8003cf6: bf00 nop 8003cf8: e000e100 .word 0xe000e100 8003cfc: e000ed00 .word 0xe000ed00 08003d00 : \param [in] PreemptPriority Preemptive priority value (starting from 0). \param [in] SubPriority Subpriority value (starting from 0). \return Encoded priority. Value can be used in the function \ref NVIC_SetPriority(). */ __STATIC_INLINE uint32_t NVIC_EncodePriority (uint32_t PriorityGroup, uint32_t PreemptPriority, uint32_t SubPriority) { 8003d00: b480 push {r7} 8003d02: b089 sub sp, #36 @ 0x24 8003d04: af00 add r7, sp, #0 8003d06: 60f8 str r0, [r7, #12] 8003d08: 60b9 str r1, [r7, #8] 8003d0a: 607a str r2, [r7, #4] uint32_t PriorityGroupTmp = (PriorityGroup & (uint32_t)0x07UL); /* only values 0..7 are used */ 8003d0c: 68fb ldr r3, [r7, #12] 8003d0e: f003 0307 and.w r3, r3, #7 8003d12: 61fb str r3, [r7, #28] uint32_t PreemptPriorityBits; uint32_t SubPriorityBits; PreemptPriorityBits = ((7UL - PriorityGroupTmp) > (uint32_t)(__NVIC_PRIO_BITS)) ? (uint32_t)(__NVIC_PRIO_BITS) : (uint32_t)(7UL - PriorityGroupTmp); 8003d14: 69fb ldr r3, [r7, #28] 8003d16: f1c3 0307 rsb r3, r3, #7 8003d1a: 2b04 cmp r3, #4 8003d1c: bf28 it cs 8003d1e: 2304 movcs r3, #4 8003d20: 61bb str r3, [r7, #24] SubPriorityBits = ((PriorityGroupTmp + (uint32_t)(__NVIC_PRIO_BITS)) < (uint32_t)7UL) ? (uint32_t)0UL : (uint32_t)((PriorityGroupTmp - 7UL) + (uint32_t)(__NVIC_PRIO_BITS)); 8003d22: 69fb ldr r3, [r7, #28] 8003d24: 3304 adds r3, #4 8003d26: 2b06 cmp r3, #6 8003d28: d902 bls.n 8003d30 8003d2a: 69fb ldr r3, [r7, #28] 8003d2c: 3b03 subs r3, #3 8003d2e: e000 b.n 8003d32 8003d30: 2300 movs r3, #0 8003d32: 617b str r3, [r7, #20] return ( ((PreemptPriority & (uint32_t)((1UL << (PreemptPriorityBits)) - 1UL)) << SubPriorityBits) | 8003d34: f04f 32ff mov.w r2, #4294967295 8003d38: 69bb ldr r3, [r7, #24] 8003d3a: fa02 f303 lsl.w r3, r2, r3 8003d3e: 43da mvns r2, r3 8003d40: 68bb ldr r3, [r7, #8] 8003d42: 401a ands r2, r3 8003d44: 697b ldr r3, [r7, #20] 8003d46: 409a lsls r2, r3 ((SubPriority & (uint32_t)((1UL << (SubPriorityBits )) - 1UL))) 8003d48: f04f 31ff mov.w r1, #4294967295 8003d4c: 697b ldr r3, [r7, #20] 8003d4e: fa01 f303 lsl.w r3, r1, r3 8003d52: 43d9 mvns r1, r3 8003d54: 687b ldr r3, [r7, #4] 8003d56: 400b ands r3, r1 ((PreemptPriority & (uint32_t)((1UL << (PreemptPriorityBits)) - 1UL)) << SubPriorityBits) | 8003d58: 4313 orrs r3, r2 ); } 8003d5a: 4618 mov r0, r3 8003d5c: 3724 adds r7, #36 @ 0x24 8003d5e: 46bd mov sp, r7 8003d60: bc80 pop {r7} 8003d62: 4770 bx lr 08003d64 : \note When the variable __Vendor_SysTickConfig is set to 1, then the function SysTick_Config is not included. In this case, the file device.h must contain a vendor-specific implementation of this function. */ __STATIC_INLINE uint32_t SysTick_Config(uint32_t ticks) { 8003d64: b580 push {r7, lr} 8003d66: b082 sub sp, #8 8003d68: af00 add r7, sp, #0 8003d6a: 6078 str r0, [r7, #4] if ((ticks - 1UL) > SysTick_LOAD_RELOAD_Msk) 8003d6c: 687b ldr r3, [r7, #4] 8003d6e: 3b01 subs r3, #1 8003d70: f1b3 7f80 cmp.w r3, #16777216 @ 0x1000000 8003d74: d301 bcc.n 8003d7a { return (1UL); /* Reload value impossible */ 8003d76: 2301 movs r3, #1 8003d78: e00f b.n 8003d9a } SysTick->LOAD = (uint32_t)(ticks - 1UL); /* set reload register */ 8003d7a: 4a0a ldr r2, [pc, #40] @ (8003da4 ) 8003d7c: 687b ldr r3, [r7, #4] 8003d7e: 3b01 subs r3, #1 8003d80: 6053 str r3, [r2, #4] NVIC_SetPriority (SysTick_IRQn, (1UL << __NVIC_PRIO_BITS) - 1UL); /* set Priority for Systick Interrupt */ 8003d82: 210f movs r1, #15 8003d84: f04f 30ff mov.w r0, #4294967295 8003d88: f7ff ff90 bl 8003cac <__NVIC_SetPriority> SysTick->VAL = 0UL; /* Load the SysTick Counter Value */ 8003d8c: 4b05 ldr r3, [pc, #20] @ (8003da4 ) 8003d8e: 2200 movs r2, #0 8003d90: 609a str r2, [r3, #8] SysTick->CTRL = SysTick_CTRL_CLKSOURCE_Msk | 8003d92: 4b04 ldr r3, [pc, #16] @ (8003da4 ) 8003d94: 2207 movs r2, #7 8003d96: 601a str r2, [r3, #0] SysTick_CTRL_TICKINT_Msk | SysTick_CTRL_ENABLE_Msk; /* Enable SysTick IRQ and SysTick Timer */ return (0UL); /* Function successful */ 8003d98: 2300 movs r3, #0 } 8003d9a: 4618 mov r0, r3 8003d9c: 3708 adds r7, #8 8003d9e: 46bd mov sp, r7 8003da0: bd80 pop {r7, pc} 8003da2: bf00 nop 8003da4: e000e010 .word 0xe000e010 08003da8 : * @note When the NVIC_PriorityGroup_0 is selected, IRQ preemption is no more possible. * The pending IRQ priority will be managed only by the subpriority. * @retval None */ void HAL_NVIC_SetPriorityGrouping(uint32_t PriorityGroup) { 8003da8: b580 push {r7, lr} 8003daa: b082 sub sp, #8 8003dac: af00 add r7, sp, #0 8003dae: 6078 str r0, [r7, #4] /* Check the parameters */ assert_param(IS_NVIC_PRIORITY_GROUP(PriorityGroup)); /* Set the PRIGROUP[10:8] bits according to the PriorityGroup parameter value */ NVIC_SetPriorityGrouping(PriorityGroup); 8003db0: 6878 ldr r0, [r7, #4] 8003db2: f7ff ff2d bl 8003c10 <__NVIC_SetPriorityGrouping> } 8003db6: bf00 nop 8003db8: 3708 adds r7, #8 8003dba: 46bd mov sp, r7 8003dbc: bd80 pop {r7, pc} 08003dbe : * This parameter can be a value between 0 and 15 * A lower priority value indicates a higher priority. * @retval None */ void HAL_NVIC_SetPriority(IRQn_Type IRQn, uint32_t PreemptPriority, uint32_t SubPriority) { 8003dbe: b580 push {r7, lr} 8003dc0: b086 sub sp, #24 8003dc2: af00 add r7, sp, #0 8003dc4: 4603 mov r3, r0 8003dc6: 60b9 str r1, [r7, #8] 8003dc8: 607a str r2, [r7, #4] 8003dca: 73fb strb r3, [r7, #15] uint32_t prioritygroup = 0x00U; 8003dcc: 2300 movs r3, #0 8003dce: 617b str r3, [r7, #20] /* Check the parameters */ assert_param(IS_NVIC_SUB_PRIORITY(SubPriority)); assert_param(IS_NVIC_PREEMPTION_PRIORITY(PreemptPriority)); prioritygroup = NVIC_GetPriorityGrouping(); 8003dd0: f7ff ff42 bl 8003c58 <__NVIC_GetPriorityGrouping> 8003dd4: 6178 str r0, [r7, #20] NVIC_SetPriority(IRQn, NVIC_EncodePriority(prioritygroup, PreemptPriority, SubPriority)); 8003dd6: 687a ldr r2, [r7, #4] 8003dd8: 68b9 ldr r1, [r7, #8] 8003dda: 6978 ldr r0, [r7, #20] 8003ddc: f7ff ff90 bl 8003d00 8003de0: 4602 mov r2, r0 8003de2: f997 300f ldrsb.w r3, [r7, #15] 8003de6: 4611 mov r1, r2 8003de8: 4618 mov r0, r3 8003dea: f7ff ff5f bl 8003cac <__NVIC_SetPriority> } 8003dee: bf00 nop 8003df0: 3718 adds r7, #24 8003df2: 46bd mov sp, r7 8003df4: bd80 pop {r7, pc} 08003df6 : * This parameter can be an enumerator of IRQn_Type enumeration * (For the complete STM32 Devices IRQ Channels list, please refer to the appropriate CMSIS device file (stm32f10xxx.h)) * @retval None */ void HAL_NVIC_EnableIRQ(IRQn_Type IRQn) { 8003df6: b580 push {r7, lr} 8003df8: b082 sub sp, #8 8003dfa: af00 add r7, sp, #0 8003dfc: 4603 mov r3, r0 8003dfe: 71fb strb r3, [r7, #7] /* Check the parameters */ assert_param(IS_NVIC_DEVICE_IRQ(IRQn)); /* Enable interrupt */ NVIC_EnableIRQ(IRQn); 8003e00: f997 3007 ldrsb.w r3, [r7, #7] 8003e04: 4618 mov r0, r3 8003e06: f7ff ff35 bl 8003c74 <__NVIC_EnableIRQ> } 8003e0a: bf00 nop 8003e0c: 3708 adds r7, #8 8003e0e: 46bd mov sp, r7 8003e10: bd80 pop {r7, pc} 08003e12 : * @param TicksNumb: Specifies the ticks Number of ticks between two interrupts. * @retval status: - 0 Function succeeded. * - 1 Function failed. */ uint32_t HAL_SYSTICK_Config(uint32_t TicksNumb) { 8003e12: b580 push {r7, lr} 8003e14: b082 sub sp, #8 8003e16: af00 add r7, sp, #0 8003e18: 6078 str r0, [r7, #4] return SysTick_Config(TicksNumb); 8003e1a: 6878 ldr r0, [r7, #4] 8003e1c: f7ff ffa2 bl 8003d64 8003e20: 4603 mov r3, r0 } 8003e22: 4618 mov r0, r3 8003e24: 3708 adds r7, #8 8003e26: 46bd mov sp, r7 8003e28: bd80 pop {r7, pc} ... 08003e2c : * @param hdma: Pointer to a DMA_HandleTypeDef structure that contains * the configuration information for the specified DMA Channel. * @retval HAL status */ HAL_StatusTypeDef HAL_DMA_Init(DMA_HandleTypeDef *hdma) { 8003e2c: b480 push {r7} 8003e2e: b085 sub sp, #20 8003e30: af00 add r7, sp, #0 8003e32: 6078 str r0, [r7, #4] uint32_t tmp = 0U; 8003e34: 2300 movs r3, #0 8003e36: 60fb str r3, [r7, #12] /* Check the DMA handle allocation */ if(hdma == NULL) 8003e38: 687b ldr r3, [r7, #4] 8003e3a: 2b00 cmp r3, #0 8003e3c: d101 bne.n 8003e42 { return HAL_ERROR; 8003e3e: 2301 movs r3, #1 8003e40: e043 b.n 8003eca hdma->ChannelIndex = (((uint32_t)hdma->Instance - (uint32_t)DMA2_Channel1) / ((uint32_t)DMA2_Channel2 - (uint32_t)DMA2_Channel1)) << 2; hdma->DmaBaseAddress = DMA2; } #else /* DMA1 */ hdma->ChannelIndex = (((uint32_t)hdma->Instance - (uint32_t)DMA1_Channel1) / ((uint32_t)DMA1_Channel2 - (uint32_t)DMA1_Channel1)) << 2; 8003e42: 687b ldr r3, [r7, #4] 8003e44: 681b ldr r3, [r3, #0] 8003e46: 461a mov r2, r3 8003e48: 4b22 ldr r3, [pc, #136] @ (8003ed4 ) 8003e4a: 4413 add r3, r2 8003e4c: 4a22 ldr r2, [pc, #136] @ (8003ed8 ) 8003e4e: fba2 2303 umull r2, r3, r2, r3 8003e52: 091b lsrs r3, r3, #4 8003e54: 009a lsls r2, r3, #2 8003e56: 687b ldr r3, [r7, #4] 8003e58: 641a str r2, [r3, #64] @ 0x40 hdma->DmaBaseAddress = DMA1; 8003e5a: 687b ldr r3, [r7, #4] 8003e5c: 4a1f ldr r2, [pc, #124] @ (8003edc ) 8003e5e: 63da str r2, [r3, #60] @ 0x3c #endif /* DMA2 */ /* Change DMA peripheral state */ hdma->State = HAL_DMA_STATE_BUSY; 8003e60: 687b ldr r3, [r7, #4] 8003e62: 2202 movs r2, #2 8003e64: f883 2021 strb.w r2, [r3, #33] @ 0x21 /* Get the CR register value */ tmp = hdma->Instance->CCR; 8003e68: 687b ldr r3, [r7, #4] 8003e6a: 681b ldr r3, [r3, #0] 8003e6c: 681b ldr r3, [r3, #0] 8003e6e: 60fb str r3, [r7, #12] /* Clear PL, MSIZE, PSIZE, MINC, PINC, CIRC and DIR bits */ tmp &= ((uint32_t)~(DMA_CCR_PL | DMA_CCR_MSIZE | DMA_CCR_PSIZE | \ 8003e70: 68fb ldr r3, [r7, #12] 8003e72: f423 537f bic.w r3, r3, #16320 @ 0x3fc0 8003e76: f023 0330 bic.w r3, r3, #48 @ 0x30 8003e7a: 60fb str r3, [r7, #12] DMA_CCR_MINC | DMA_CCR_PINC | DMA_CCR_CIRC | \ DMA_CCR_DIR)); /* Prepare the DMA Channel configuration */ tmp |= hdma->Init.Direction | 8003e7c: 687b ldr r3, [r7, #4] 8003e7e: 685a ldr r2, [r3, #4] hdma->Init.PeriphInc | hdma->Init.MemInc | 8003e80: 687b ldr r3, [r7, #4] 8003e82: 689b ldr r3, [r3, #8] tmp |= hdma->Init.Direction | 8003e84: 431a orrs r2, r3 hdma->Init.PeriphInc | hdma->Init.MemInc | 8003e86: 687b ldr r3, [r7, #4] 8003e88: 68db ldr r3, [r3, #12] 8003e8a: 431a orrs r2, r3 hdma->Init.PeriphDataAlignment | hdma->Init.MemDataAlignment | 8003e8c: 687b ldr r3, [r7, #4] 8003e8e: 691b ldr r3, [r3, #16] hdma->Init.PeriphInc | hdma->Init.MemInc | 8003e90: 431a orrs r2, r3 hdma->Init.PeriphDataAlignment | hdma->Init.MemDataAlignment | 8003e92: 687b ldr r3, [r7, #4] 8003e94: 695b ldr r3, [r3, #20] 8003e96: 431a orrs r2, r3 hdma->Init.Mode | hdma->Init.Priority; 8003e98: 687b ldr r3, [r7, #4] 8003e9a: 699b ldr r3, [r3, #24] hdma->Init.PeriphDataAlignment | hdma->Init.MemDataAlignment | 8003e9c: 431a orrs r2, r3 hdma->Init.Mode | hdma->Init.Priority; 8003e9e: 687b ldr r3, [r7, #4] 8003ea0: 69db ldr r3, [r3, #28] 8003ea2: 4313 orrs r3, r2 tmp |= hdma->Init.Direction | 8003ea4: 68fa ldr r2, [r7, #12] 8003ea6: 4313 orrs r3, r2 8003ea8: 60fb str r3, [r7, #12] /* Write to DMA Channel CR register */ hdma->Instance->CCR = tmp; 8003eaa: 687b ldr r3, [r7, #4] 8003eac: 681b ldr r3, [r3, #0] 8003eae: 68fa ldr r2, [r7, #12] 8003eb0: 601a str r2, [r3, #0] /* Initialise the error code */ hdma->ErrorCode = HAL_DMA_ERROR_NONE; 8003eb2: 687b ldr r3, [r7, #4] 8003eb4: 2200 movs r2, #0 8003eb6: 639a str r2, [r3, #56] @ 0x38 /* Initialize the DMA state*/ hdma->State = HAL_DMA_STATE_READY; 8003eb8: 687b ldr r3, [r7, #4] 8003eba: 2201 movs r2, #1 8003ebc: f883 2021 strb.w r2, [r3, #33] @ 0x21 /* Allocate lock resource and initialize it */ hdma->Lock = HAL_UNLOCKED; 8003ec0: 687b ldr r3, [r7, #4] 8003ec2: 2200 movs r2, #0 8003ec4: f883 2020 strb.w r2, [r3, #32] return HAL_OK; 8003ec8: 2300 movs r3, #0 } 8003eca: 4618 mov r0, r3 8003ecc: 3714 adds r7, #20 8003ece: 46bd mov sp, r7 8003ed0: bc80 pop {r7} 8003ed2: 4770 bx lr 8003ed4: bffdfff8 .word 0xbffdfff8 8003ed8: cccccccd .word 0xcccccccd 8003edc: 40020000 .word 0x40020000 08003ee0 : * @param DstAddress: The destination memory Buffer address * @param DataLength: The length of data to be transferred from source to destination * @retval HAL status */ HAL_StatusTypeDef HAL_DMA_Start_IT(DMA_HandleTypeDef *hdma, uint32_t SrcAddress, uint32_t DstAddress, uint32_t DataLength) { 8003ee0: b580 push {r7, lr} 8003ee2: b086 sub sp, #24 8003ee4: af00 add r7, sp, #0 8003ee6: 60f8 str r0, [r7, #12] 8003ee8: 60b9 str r1, [r7, #8] 8003eea: 607a str r2, [r7, #4] 8003eec: 603b str r3, [r7, #0] HAL_StatusTypeDef status = HAL_OK; 8003eee: 2300 movs r3, #0 8003ef0: 75fb strb r3, [r7, #23] /* Check the parameters */ assert_param(IS_DMA_BUFFER_SIZE(DataLength)); /* Process locked */ __HAL_LOCK(hdma); 8003ef2: 68fb ldr r3, [r7, #12] 8003ef4: f893 3020 ldrb.w r3, [r3, #32] 8003ef8: 2b01 cmp r3, #1 8003efa: d101 bne.n 8003f00 8003efc: 2302 movs r3, #2 8003efe: e04b b.n 8003f98 8003f00: 68fb ldr r3, [r7, #12] 8003f02: 2201 movs r2, #1 8003f04: f883 2020 strb.w r2, [r3, #32] if(HAL_DMA_STATE_READY == hdma->State) 8003f08: 68fb ldr r3, [r7, #12] 8003f0a: f893 3021 ldrb.w r3, [r3, #33] @ 0x21 8003f0e: b2db uxtb r3, r3 8003f10: 2b01 cmp r3, #1 8003f12: d13a bne.n 8003f8a { /* Change DMA peripheral state */ hdma->State = HAL_DMA_STATE_BUSY; 8003f14: 68fb ldr r3, [r7, #12] 8003f16: 2202 movs r2, #2 8003f18: f883 2021 strb.w r2, [r3, #33] @ 0x21 hdma->ErrorCode = HAL_DMA_ERROR_NONE; 8003f1c: 68fb ldr r3, [r7, #12] 8003f1e: 2200 movs r2, #0 8003f20: 639a str r2, [r3, #56] @ 0x38 /* Disable the peripheral */ __HAL_DMA_DISABLE(hdma); 8003f22: 68fb ldr r3, [r7, #12] 8003f24: 681b ldr r3, [r3, #0] 8003f26: 681a ldr r2, [r3, #0] 8003f28: 68fb ldr r3, [r7, #12] 8003f2a: 681b ldr r3, [r3, #0] 8003f2c: f022 0201 bic.w r2, r2, #1 8003f30: 601a str r2, [r3, #0] /* Configure the source, destination address and the data length & clear flags*/ DMA_SetConfig(hdma, SrcAddress, DstAddress, DataLength); 8003f32: 683b ldr r3, [r7, #0] 8003f34: 687a ldr r2, [r7, #4] 8003f36: 68b9 ldr r1, [r7, #8] 8003f38: 68f8 ldr r0, [r7, #12] 8003f3a: f000 f9eb bl 8004314 /* Enable the transfer complete interrupt */ /* Enable the transfer Error interrupt */ if(NULL != hdma->XferHalfCpltCallback) 8003f3e: 68fb ldr r3, [r7, #12] 8003f40: 6adb ldr r3, [r3, #44] @ 0x2c 8003f42: 2b00 cmp r3, #0 8003f44: d008 beq.n 8003f58 { /* Enable the Half transfer complete interrupt as well */ __HAL_DMA_ENABLE_IT(hdma, (DMA_IT_TC | DMA_IT_HT | DMA_IT_TE)); 8003f46: 68fb ldr r3, [r7, #12] 8003f48: 681b ldr r3, [r3, #0] 8003f4a: 681a ldr r2, [r3, #0] 8003f4c: 68fb ldr r3, [r7, #12] 8003f4e: 681b ldr r3, [r3, #0] 8003f50: f042 020e orr.w r2, r2, #14 8003f54: 601a str r2, [r3, #0] 8003f56: e00f b.n 8003f78 } else { __HAL_DMA_DISABLE_IT(hdma, DMA_IT_HT); 8003f58: 68fb ldr r3, [r7, #12] 8003f5a: 681b ldr r3, [r3, #0] 8003f5c: 681a ldr r2, [r3, #0] 8003f5e: 68fb ldr r3, [r7, #12] 8003f60: 681b ldr r3, [r3, #0] 8003f62: f022 0204 bic.w r2, r2, #4 8003f66: 601a str r2, [r3, #0] __HAL_DMA_ENABLE_IT(hdma, (DMA_IT_TC | DMA_IT_TE)); 8003f68: 68fb ldr r3, [r7, #12] 8003f6a: 681b ldr r3, [r3, #0] 8003f6c: 681a ldr r2, [r3, #0] 8003f6e: 68fb ldr r3, [r7, #12] 8003f70: 681b ldr r3, [r3, #0] 8003f72: f042 020a orr.w r2, r2, #10 8003f76: 601a str r2, [r3, #0] } /* Enable the Peripheral */ __HAL_DMA_ENABLE(hdma); 8003f78: 68fb ldr r3, [r7, #12] 8003f7a: 681b ldr r3, [r3, #0] 8003f7c: 681a ldr r2, [r3, #0] 8003f7e: 68fb ldr r3, [r7, #12] 8003f80: 681b ldr r3, [r3, #0] 8003f82: f042 0201 orr.w r2, r2, #1 8003f86: 601a str r2, [r3, #0] 8003f88: e005 b.n 8003f96 } else { /* Process Unlocked */ __HAL_UNLOCK(hdma); 8003f8a: 68fb ldr r3, [r7, #12] 8003f8c: 2200 movs r2, #0 8003f8e: f883 2020 strb.w r2, [r3, #32] /* Remain BUSY */ status = HAL_BUSY; 8003f92: 2302 movs r3, #2 8003f94: 75fb strb r3, [r7, #23] } return status; 8003f96: 7dfb ldrb r3, [r7, #23] } 8003f98: 4618 mov r0, r3 8003f9a: 3718 adds r7, #24 8003f9c: 46bd mov sp, r7 8003f9e: bd80 pop {r7, pc} 08003fa0 : * @param hdma: pointer to a DMA_HandleTypeDef structure that contains * the configuration information for the specified DMA Channel. * @retval HAL status */ HAL_StatusTypeDef HAL_DMA_Abort(DMA_HandleTypeDef *hdma) { 8003fa0: b480 push {r7} 8003fa2: b085 sub sp, #20 8003fa4: af00 add r7, sp, #0 8003fa6: 6078 str r0, [r7, #4] HAL_StatusTypeDef status = HAL_OK; 8003fa8: 2300 movs r3, #0 8003faa: 73fb strb r3, [r7, #15] if(hdma->State != HAL_DMA_STATE_BUSY) 8003fac: 687b ldr r3, [r7, #4] 8003fae: f893 3021 ldrb.w r3, [r3, #33] @ 0x21 8003fb2: b2db uxtb r3, r3 8003fb4: 2b02 cmp r3, #2 8003fb6: d008 beq.n 8003fca { /* no transfer ongoing */ hdma->ErrorCode = HAL_DMA_ERROR_NO_XFER; 8003fb8: 687b ldr r3, [r7, #4] 8003fba: 2204 movs r2, #4 8003fbc: 639a str r2, [r3, #56] @ 0x38 /* Process Unlocked */ __HAL_UNLOCK(hdma); 8003fbe: 687b ldr r3, [r7, #4] 8003fc0: 2200 movs r2, #0 8003fc2: f883 2020 strb.w r2, [r3, #32] return HAL_ERROR; 8003fc6: 2301 movs r3, #1 8003fc8: e020 b.n 800400c } else { /* Disable DMA IT */ __HAL_DMA_DISABLE_IT(hdma, (DMA_IT_TC | DMA_IT_HT | DMA_IT_TE)); 8003fca: 687b ldr r3, [r7, #4] 8003fcc: 681b ldr r3, [r3, #0] 8003fce: 681a ldr r2, [r3, #0] 8003fd0: 687b ldr r3, [r7, #4] 8003fd2: 681b ldr r3, [r3, #0] 8003fd4: f022 020e bic.w r2, r2, #14 8003fd8: 601a str r2, [r3, #0] /* Disable the channel */ __HAL_DMA_DISABLE(hdma); 8003fda: 687b ldr r3, [r7, #4] 8003fdc: 681b ldr r3, [r3, #0] 8003fde: 681a ldr r2, [r3, #0] 8003fe0: 687b ldr r3, [r7, #4] 8003fe2: 681b ldr r3, [r3, #0] 8003fe4: f022 0201 bic.w r2, r2, #1 8003fe8: 601a str r2, [r3, #0] /* Clear all flags */ hdma->DmaBaseAddress->IFCR = (DMA_ISR_GIF1 << hdma->ChannelIndex); 8003fea: 687b ldr r3, [r7, #4] 8003fec: 6c1a ldr r2, [r3, #64] @ 0x40 8003fee: 687b ldr r3, [r7, #4] 8003ff0: 6bdb ldr r3, [r3, #60] @ 0x3c 8003ff2: 2101 movs r1, #1 8003ff4: fa01 f202 lsl.w r2, r1, r2 8003ff8: 605a str r2, [r3, #4] } /* Change the DMA state */ hdma->State = HAL_DMA_STATE_READY; 8003ffa: 687b ldr r3, [r7, #4] 8003ffc: 2201 movs r2, #1 8003ffe: f883 2021 strb.w r2, [r3, #33] @ 0x21 /* Process Unlocked */ __HAL_UNLOCK(hdma); 8004002: 687b ldr r3, [r7, #4] 8004004: 2200 movs r2, #0 8004006: f883 2020 strb.w r2, [r3, #32] return status; 800400a: 7bfb ldrb r3, [r7, #15] } 800400c: 4618 mov r0, r3 800400e: 3714 adds r7, #20 8004010: 46bd mov sp, r7 8004012: bc80 pop {r7} 8004014: 4770 bx lr ... 08004018 : * @param hdma : pointer to a DMA_HandleTypeDef structure that contains * the configuration information for the specified DMA Channel. * @retval HAL status */ HAL_StatusTypeDef HAL_DMA_Abort_IT(DMA_HandleTypeDef *hdma) { 8004018: b580 push {r7, lr} 800401a: b084 sub sp, #16 800401c: af00 add r7, sp, #0 800401e: 6078 str r0, [r7, #4] HAL_StatusTypeDef status = HAL_OK; 8004020: 2300 movs r3, #0 8004022: 73fb strb r3, [r7, #15] if(HAL_DMA_STATE_BUSY != hdma->State) 8004024: 687b ldr r3, [r7, #4] 8004026: f893 3021 ldrb.w r3, [r3, #33] @ 0x21 800402a: b2db uxtb r3, r3 800402c: 2b02 cmp r3, #2 800402e: d005 beq.n 800403c { /* no transfer ongoing */ hdma->ErrorCode = HAL_DMA_ERROR_NO_XFER; 8004030: 687b ldr r3, [r7, #4] 8004032: 2204 movs r2, #4 8004034: 639a str r2, [r3, #56] @ 0x38 status = HAL_ERROR; 8004036: 2301 movs r3, #1 8004038: 73fb strb r3, [r7, #15] 800403a: e051 b.n 80040e0 } else { /* Disable DMA IT */ __HAL_DMA_DISABLE_IT(hdma, (DMA_IT_TC | DMA_IT_HT | DMA_IT_TE)); 800403c: 687b ldr r3, [r7, #4] 800403e: 681b ldr r3, [r3, #0] 8004040: 681a ldr r2, [r3, #0] 8004042: 687b ldr r3, [r7, #4] 8004044: 681b ldr r3, [r3, #0] 8004046: f022 020e bic.w r2, r2, #14 800404a: 601a str r2, [r3, #0] /* Disable the channel */ __HAL_DMA_DISABLE(hdma); 800404c: 687b ldr r3, [r7, #4] 800404e: 681b ldr r3, [r3, #0] 8004050: 681a ldr r2, [r3, #0] 8004052: 687b ldr r3, [r7, #4] 8004054: 681b ldr r3, [r3, #0] 8004056: f022 0201 bic.w r2, r2, #1 800405a: 601a str r2, [r3, #0] /* Clear all flags */ __HAL_DMA_CLEAR_FLAG(hdma, __HAL_DMA_GET_GI_FLAG_INDEX(hdma)); 800405c: 687b ldr r3, [r7, #4] 800405e: 681b ldr r3, [r3, #0] 8004060: 4a22 ldr r2, [pc, #136] @ (80040ec ) 8004062: 4293 cmp r3, r2 8004064: d029 beq.n 80040ba 8004066: 687b ldr r3, [r7, #4] 8004068: 681b ldr r3, [r3, #0] 800406a: 4a21 ldr r2, [pc, #132] @ (80040f0 ) 800406c: 4293 cmp r3, r2 800406e: d022 beq.n 80040b6 8004070: 687b ldr r3, [r7, #4] 8004072: 681b ldr r3, [r3, #0] 8004074: 4a1f ldr r2, [pc, #124] @ (80040f4 ) 8004076: 4293 cmp r3, r2 8004078: d01a beq.n 80040b0 800407a: 687b ldr r3, [r7, #4] 800407c: 681b ldr r3, [r3, #0] 800407e: 4a1e ldr r2, [pc, #120] @ (80040f8 ) 8004080: 4293 cmp r3, r2 8004082: d012 beq.n 80040aa 8004084: 687b ldr r3, [r7, #4] 8004086: 681b ldr r3, [r3, #0] 8004088: 4a1c ldr r2, [pc, #112] @ (80040fc ) 800408a: 4293 cmp r3, r2 800408c: d00a beq.n 80040a4 800408e: 687b ldr r3, [r7, #4] 8004090: 681b ldr r3, [r3, #0] 8004092: 4a1b ldr r2, [pc, #108] @ (8004100 ) 8004094: 4293 cmp r3, r2 8004096: d102 bne.n 800409e 8004098: f44f 1380 mov.w r3, #1048576 @ 0x100000 800409c: e00e b.n 80040bc 800409e: f04f 7380 mov.w r3, #16777216 @ 0x1000000 80040a2: e00b b.n 80040bc 80040a4: f44f 3380 mov.w r3, #65536 @ 0x10000 80040a8: e008 b.n 80040bc 80040aa: f44f 5380 mov.w r3, #4096 @ 0x1000 80040ae: e005 b.n 80040bc 80040b0: f44f 7380 mov.w r3, #256 @ 0x100 80040b4: e002 b.n 80040bc 80040b6: 2310 movs r3, #16 80040b8: e000 b.n 80040bc 80040ba: 2301 movs r3, #1 80040bc: 4a11 ldr r2, [pc, #68] @ (8004104 ) 80040be: 6053 str r3, [r2, #4] /* Change the DMA state */ hdma->State = HAL_DMA_STATE_READY; 80040c0: 687b ldr r3, [r7, #4] 80040c2: 2201 movs r2, #1 80040c4: f883 2021 strb.w r2, [r3, #33] @ 0x21 /* Process Unlocked */ __HAL_UNLOCK(hdma); 80040c8: 687b ldr r3, [r7, #4] 80040ca: 2200 movs r2, #0 80040cc: f883 2020 strb.w r2, [r3, #32] /* Call User Abort callback */ if(hdma->XferAbortCallback != NULL) 80040d0: 687b ldr r3, [r7, #4] 80040d2: 6b5b ldr r3, [r3, #52] @ 0x34 80040d4: 2b00 cmp r3, #0 80040d6: d003 beq.n 80040e0 { hdma->XferAbortCallback(hdma); 80040d8: 687b ldr r3, [r7, #4] 80040da: 6b5b ldr r3, [r3, #52] @ 0x34 80040dc: 6878 ldr r0, [r7, #4] 80040de: 4798 blx r3 } } return status; 80040e0: 7bfb ldrb r3, [r7, #15] } 80040e2: 4618 mov r0, r3 80040e4: 3710 adds r7, #16 80040e6: 46bd mov sp, r7 80040e8: bd80 pop {r7, pc} 80040ea: bf00 nop 80040ec: 40020008 .word 0x40020008 80040f0: 4002001c .word 0x4002001c 80040f4: 40020030 .word 0x40020030 80040f8: 40020044 .word 0x40020044 80040fc: 40020058 .word 0x40020058 8004100: 4002006c .word 0x4002006c 8004104: 40020000 .word 0x40020000 08004108 : * @param hdma: pointer to a DMA_HandleTypeDef structure that contains * the configuration information for the specified DMA Channel. * @retval None */ void HAL_DMA_IRQHandler(DMA_HandleTypeDef *hdma) { 8004108: b580 push {r7, lr} 800410a: b084 sub sp, #16 800410c: af00 add r7, sp, #0 800410e: 6078 str r0, [r7, #4] uint32_t flag_it = hdma->DmaBaseAddress->ISR; 8004110: 687b ldr r3, [r7, #4] 8004112: 6bdb ldr r3, [r3, #60] @ 0x3c 8004114: 681b ldr r3, [r3, #0] 8004116: 60fb str r3, [r7, #12] uint32_t source_it = hdma->Instance->CCR; 8004118: 687b ldr r3, [r7, #4] 800411a: 681b ldr r3, [r3, #0] 800411c: 681b ldr r3, [r3, #0] 800411e: 60bb str r3, [r7, #8] /* Half Transfer Complete Interrupt management ******************************/ if (((flag_it & (DMA_FLAG_HT1 << hdma->ChannelIndex)) != RESET) && ((source_it & DMA_IT_HT) != RESET)) 8004120: 687b ldr r3, [r7, #4] 8004122: 6c1b ldr r3, [r3, #64] @ 0x40 8004124: 2204 movs r2, #4 8004126: 409a lsls r2, r3 8004128: 68fb ldr r3, [r7, #12] 800412a: 4013 ands r3, r2 800412c: 2b00 cmp r3, #0 800412e: d04f beq.n 80041d0 8004130: 68bb ldr r3, [r7, #8] 8004132: f003 0304 and.w r3, r3, #4 8004136: 2b00 cmp r3, #0 8004138: d04a beq.n 80041d0 { /* Disable the half transfer interrupt if the DMA mode is not CIRCULAR */ if((hdma->Instance->CCR & DMA_CCR_CIRC) == 0U) 800413a: 687b ldr r3, [r7, #4] 800413c: 681b ldr r3, [r3, #0] 800413e: 681b ldr r3, [r3, #0] 8004140: f003 0320 and.w r3, r3, #32 8004144: 2b00 cmp r3, #0 8004146: d107 bne.n 8004158 { /* Disable the half transfer interrupt */ __HAL_DMA_DISABLE_IT(hdma, DMA_IT_HT); 8004148: 687b ldr r3, [r7, #4] 800414a: 681b ldr r3, [r3, #0] 800414c: 681a ldr r2, [r3, #0] 800414e: 687b ldr r3, [r7, #4] 8004150: 681b ldr r3, [r3, #0] 8004152: f022 0204 bic.w r2, r2, #4 8004156: 601a str r2, [r3, #0] } /* Clear the half transfer complete flag */ __HAL_DMA_CLEAR_FLAG(hdma, __HAL_DMA_GET_HT_FLAG_INDEX(hdma)); 8004158: 687b ldr r3, [r7, #4] 800415a: 681b ldr r3, [r3, #0] 800415c: 4a66 ldr r2, [pc, #408] @ (80042f8 ) 800415e: 4293 cmp r3, r2 8004160: d029 beq.n 80041b6 8004162: 687b ldr r3, [r7, #4] 8004164: 681b ldr r3, [r3, #0] 8004166: 4a65 ldr r2, [pc, #404] @ (80042fc ) 8004168: 4293 cmp r3, r2 800416a: d022 beq.n 80041b2 800416c: 687b ldr r3, [r7, #4] 800416e: 681b ldr r3, [r3, #0] 8004170: 4a63 ldr r2, [pc, #396] @ (8004300 ) 8004172: 4293 cmp r3, r2 8004174: d01a beq.n 80041ac 8004176: 687b ldr r3, [r7, #4] 8004178: 681b ldr r3, [r3, #0] 800417a: 4a62 ldr r2, [pc, #392] @ (8004304 ) 800417c: 4293 cmp r3, r2 800417e: d012 beq.n 80041a6 8004180: 687b ldr r3, [r7, #4] 8004182: 681b ldr r3, [r3, #0] 8004184: 4a60 ldr r2, [pc, #384] @ (8004308 ) 8004186: 4293 cmp r3, r2 8004188: d00a beq.n 80041a0 800418a: 687b ldr r3, [r7, #4] 800418c: 681b ldr r3, [r3, #0] 800418e: 4a5f ldr r2, [pc, #380] @ (800430c ) 8004190: 4293 cmp r3, r2 8004192: d102 bne.n 800419a 8004194: f44f 0380 mov.w r3, #4194304 @ 0x400000 8004198: e00e b.n 80041b8 800419a: f04f 6380 mov.w r3, #67108864 @ 0x4000000 800419e: e00b b.n 80041b8 80041a0: f44f 2380 mov.w r3, #262144 @ 0x40000 80041a4: e008 b.n 80041b8 80041a6: f44f 4380 mov.w r3, #16384 @ 0x4000 80041aa: e005 b.n 80041b8 80041ac: f44f 6380 mov.w r3, #1024 @ 0x400 80041b0: e002 b.n 80041b8 80041b2: 2340 movs r3, #64 @ 0x40 80041b4: e000 b.n 80041b8 80041b6: 2304 movs r3, #4 80041b8: 4a55 ldr r2, [pc, #340] @ (8004310 ) 80041ba: 6053 str r3, [r2, #4] /* DMA peripheral state is not updated in Half Transfer */ /* but in Transfer Complete case */ if(hdma->XferHalfCpltCallback != NULL) 80041bc: 687b ldr r3, [r7, #4] 80041be: 6adb ldr r3, [r3, #44] @ 0x2c 80041c0: 2b00 cmp r3, #0 80041c2: f000 8094 beq.w 80042ee { /* Half transfer callback */ hdma->XferHalfCpltCallback(hdma); 80041c6: 687b ldr r3, [r7, #4] 80041c8: 6adb ldr r3, [r3, #44] @ 0x2c 80041ca: 6878 ldr r0, [r7, #4] 80041cc: 4798 blx r3 if(hdma->XferHalfCpltCallback != NULL) 80041ce: e08e b.n 80042ee } } /* Transfer Complete Interrupt management ***********************************/ else if (((flag_it & (DMA_FLAG_TC1 << hdma->ChannelIndex)) != RESET) && ((source_it & DMA_IT_TC) != RESET)) 80041d0: 687b ldr r3, [r7, #4] 80041d2: 6c1b ldr r3, [r3, #64] @ 0x40 80041d4: 2202 movs r2, #2 80041d6: 409a lsls r2, r3 80041d8: 68fb ldr r3, [r7, #12] 80041da: 4013 ands r3, r2 80041dc: 2b00 cmp r3, #0 80041de: d056 beq.n 800428e 80041e0: 68bb ldr r3, [r7, #8] 80041e2: f003 0302 and.w r3, r3, #2 80041e6: 2b00 cmp r3, #0 80041e8: d051 beq.n 800428e { if((hdma->Instance->CCR & DMA_CCR_CIRC) == 0U) 80041ea: 687b ldr r3, [r7, #4] 80041ec: 681b ldr r3, [r3, #0] 80041ee: 681b ldr r3, [r3, #0] 80041f0: f003 0320 and.w r3, r3, #32 80041f4: 2b00 cmp r3, #0 80041f6: d10b bne.n 8004210 { /* Disable the transfer complete and error interrupt */ __HAL_DMA_DISABLE_IT(hdma, DMA_IT_TE | DMA_IT_TC); 80041f8: 687b ldr r3, [r7, #4] 80041fa: 681b ldr r3, [r3, #0] 80041fc: 681a ldr r2, [r3, #0] 80041fe: 687b ldr r3, [r7, #4] 8004200: 681b ldr r3, [r3, #0] 8004202: f022 020a bic.w r2, r2, #10 8004206: 601a str r2, [r3, #0] /* Change the DMA state */ hdma->State = HAL_DMA_STATE_READY; 8004208: 687b ldr r3, [r7, #4] 800420a: 2201 movs r2, #1 800420c: f883 2021 strb.w r2, [r3, #33] @ 0x21 } /* Clear the transfer complete flag */ __HAL_DMA_CLEAR_FLAG(hdma, __HAL_DMA_GET_TC_FLAG_INDEX(hdma)); 8004210: 687b ldr r3, [r7, #4] 8004212: 681b ldr r3, [r3, #0] 8004214: 4a38 ldr r2, [pc, #224] @ (80042f8 ) 8004216: 4293 cmp r3, r2 8004218: d029 beq.n 800426e 800421a: 687b ldr r3, [r7, #4] 800421c: 681b ldr r3, [r3, #0] 800421e: 4a37 ldr r2, [pc, #220] @ (80042fc ) 8004220: 4293 cmp r3, r2 8004222: d022 beq.n 800426a 8004224: 687b ldr r3, [r7, #4] 8004226: 681b ldr r3, [r3, #0] 8004228: 4a35 ldr r2, [pc, #212] @ (8004300 ) 800422a: 4293 cmp r3, r2 800422c: d01a beq.n 8004264 800422e: 687b ldr r3, [r7, #4] 8004230: 681b ldr r3, [r3, #0] 8004232: 4a34 ldr r2, [pc, #208] @ (8004304 ) 8004234: 4293 cmp r3, r2 8004236: d012 beq.n 800425e 8004238: 687b ldr r3, [r7, #4] 800423a: 681b ldr r3, [r3, #0] 800423c: 4a32 ldr r2, [pc, #200] @ (8004308 ) 800423e: 4293 cmp r3, r2 8004240: d00a beq.n 8004258 8004242: 687b ldr r3, [r7, #4] 8004244: 681b ldr r3, [r3, #0] 8004246: 4a31 ldr r2, [pc, #196] @ (800430c ) 8004248: 4293 cmp r3, r2 800424a: d102 bne.n 8004252 800424c: f44f 1300 mov.w r3, #2097152 @ 0x200000 8004250: e00e b.n 8004270 8004252: f04f 7300 mov.w r3, #33554432 @ 0x2000000 8004256: e00b b.n 8004270 8004258: f44f 3300 mov.w r3, #131072 @ 0x20000 800425c: e008 b.n 8004270 800425e: f44f 5300 mov.w r3, #8192 @ 0x2000 8004262: e005 b.n 8004270 8004264: f44f 7300 mov.w r3, #512 @ 0x200 8004268: e002 b.n 8004270 800426a: 2320 movs r3, #32 800426c: e000 b.n 8004270 800426e: 2302 movs r3, #2 8004270: 4a27 ldr r2, [pc, #156] @ (8004310 ) 8004272: 6053 str r3, [r2, #4] /* Process Unlocked */ __HAL_UNLOCK(hdma); 8004274: 687b ldr r3, [r7, #4] 8004276: 2200 movs r2, #0 8004278: f883 2020 strb.w r2, [r3, #32] if(hdma->XferCpltCallback != NULL) 800427c: 687b ldr r3, [r7, #4] 800427e: 6a9b ldr r3, [r3, #40] @ 0x28 8004280: 2b00 cmp r3, #0 8004282: d034 beq.n 80042ee { /* Transfer complete callback */ hdma->XferCpltCallback(hdma); 8004284: 687b ldr r3, [r7, #4] 8004286: 6a9b ldr r3, [r3, #40] @ 0x28 8004288: 6878 ldr r0, [r7, #4] 800428a: 4798 blx r3 if(hdma->XferCpltCallback != NULL) 800428c: e02f b.n 80042ee } } /* Transfer Error Interrupt management **************************************/ else if (( RESET != (flag_it & (DMA_FLAG_TE1 << hdma->ChannelIndex))) && (RESET != (source_it & DMA_IT_TE))) 800428e: 687b ldr r3, [r7, #4] 8004290: 6c1b ldr r3, [r3, #64] @ 0x40 8004292: 2208 movs r2, #8 8004294: 409a lsls r2, r3 8004296: 68fb ldr r3, [r7, #12] 8004298: 4013 ands r3, r2 800429a: 2b00 cmp r3, #0 800429c: d028 beq.n 80042f0 800429e: 68bb ldr r3, [r7, #8] 80042a0: f003 0308 and.w r3, r3, #8 80042a4: 2b00 cmp r3, #0 80042a6: d023 beq.n 80042f0 { /* When a DMA transfer error occurs */ /* A hardware clear of its EN bits is performed */ /* Disable ALL DMA IT */ __HAL_DMA_DISABLE_IT(hdma, (DMA_IT_TC | DMA_IT_HT | DMA_IT_TE)); 80042a8: 687b ldr r3, [r7, #4] 80042aa: 681b ldr r3, [r3, #0] 80042ac: 681a ldr r2, [r3, #0] 80042ae: 687b ldr r3, [r7, #4] 80042b0: 681b ldr r3, [r3, #0] 80042b2: f022 020e bic.w r2, r2, #14 80042b6: 601a str r2, [r3, #0] /* Clear all flags */ hdma->DmaBaseAddress->IFCR = (DMA_ISR_GIF1 << hdma->ChannelIndex); 80042b8: 687b ldr r3, [r7, #4] 80042ba: 6c1a ldr r2, [r3, #64] @ 0x40 80042bc: 687b ldr r3, [r7, #4] 80042be: 6bdb ldr r3, [r3, #60] @ 0x3c 80042c0: 2101 movs r1, #1 80042c2: fa01 f202 lsl.w r2, r1, r2 80042c6: 605a str r2, [r3, #4] /* Update error code */ hdma->ErrorCode = HAL_DMA_ERROR_TE; 80042c8: 687b ldr r3, [r7, #4] 80042ca: 2201 movs r2, #1 80042cc: 639a str r2, [r3, #56] @ 0x38 /* Change the DMA state */ hdma->State = HAL_DMA_STATE_READY; 80042ce: 687b ldr r3, [r7, #4] 80042d0: 2201 movs r2, #1 80042d2: f883 2021 strb.w r2, [r3, #33] @ 0x21 /* Process Unlocked */ __HAL_UNLOCK(hdma); 80042d6: 687b ldr r3, [r7, #4] 80042d8: 2200 movs r2, #0 80042da: f883 2020 strb.w r2, [r3, #32] if (hdma->XferErrorCallback != NULL) 80042de: 687b ldr r3, [r7, #4] 80042e0: 6b1b ldr r3, [r3, #48] @ 0x30 80042e2: 2b00 cmp r3, #0 80042e4: d004 beq.n 80042f0 { /* Transfer error callback */ hdma->XferErrorCallback(hdma); 80042e6: 687b ldr r3, [r7, #4] 80042e8: 6b1b ldr r3, [r3, #48] @ 0x30 80042ea: 6878 ldr r0, [r7, #4] 80042ec: 4798 blx r3 } } return; 80042ee: bf00 nop 80042f0: bf00 nop } 80042f2: 3710 adds r7, #16 80042f4: 46bd mov sp, r7 80042f6: bd80 pop {r7, pc} 80042f8: 40020008 .word 0x40020008 80042fc: 4002001c .word 0x4002001c 8004300: 40020030 .word 0x40020030 8004304: 40020044 .word 0x40020044 8004308: 40020058 .word 0x40020058 800430c: 4002006c .word 0x4002006c 8004310: 40020000 .word 0x40020000 08004314 : * @param DstAddress: The destination memory Buffer address * @param DataLength: The length of data to be transferred from source to destination * @retval HAL status */ static void DMA_SetConfig(DMA_HandleTypeDef *hdma, uint32_t SrcAddress, uint32_t DstAddress, uint32_t DataLength) { 8004314: b480 push {r7} 8004316: b085 sub sp, #20 8004318: af00 add r7, sp, #0 800431a: 60f8 str r0, [r7, #12] 800431c: 60b9 str r1, [r7, #8] 800431e: 607a str r2, [r7, #4] 8004320: 603b str r3, [r7, #0] /* Clear all flags */ hdma->DmaBaseAddress->IFCR = (DMA_ISR_GIF1 << hdma->ChannelIndex); 8004322: 68fb ldr r3, [r7, #12] 8004324: 6c1a ldr r2, [r3, #64] @ 0x40 8004326: 68fb ldr r3, [r7, #12] 8004328: 6bdb ldr r3, [r3, #60] @ 0x3c 800432a: 2101 movs r1, #1 800432c: fa01 f202 lsl.w r2, r1, r2 8004330: 605a str r2, [r3, #4] /* Configure DMA Channel data length */ hdma->Instance->CNDTR = DataLength; 8004332: 68fb ldr r3, [r7, #12] 8004334: 681b ldr r3, [r3, #0] 8004336: 683a ldr r2, [r7, #0] 8004338: 605a str r2, [r3, #4] /* Memory to Peripheral */ if((hdma->Init.Direction) == DMA_MEMORY_TO_PERIPH) 800433a: 68fb ldr r3, [r7, #12] 800433c: 685b ldr r3, [r3, #4] 800433e: 2b10 cmp r3, #16 8004340: d108 bne.n 8004354 { /* Configure DMA Channel destination address */ hdma->Instance->CPAR = DstAddress; 8004342: 68fb ldr r3, [r7, #12] 8004344: 681b ldr r3, [r3, #0] 8004346: 687a ldr r2, [r7, #4] 8004348: 609a str r2, [r3, #8] /* Configure DMA Channel source address */ hdma->Instance->CMAR = SrcAddress; 800434a: 68fb ldr r3, [r7, #12] 800434c: 681b ldr r3, [r3, #0] 800434e: 68ba ldr r2, [r7, #8] 8004350: 60da str r2, [r3, #12] hdma->Instance->CPAR = SrcAddress; /* Configure DMA Channel destination address */ hdma->Instance->CMAR = DstAddress; } } 8004352: e007 b.n 8004364 hdma->Instance->CPAR = SrcAddress; 8004354: 68fb ldr r3, [r7, #12] 8004356: 681b ldr r3, [r3, #0] 8004358: 68ba ldr r2, [r7, #8] 800435a: 609a str r2, [r3, #8] hdma->Instance->CMAR = DstAddress; 800435c: 68fb ldr r3, [r7, #12] 800435e: 681b ldr r3, [r3, #0] 8004360: 687a ldr r2, [r7, #4] 8004362: 60da str r2, [r3, #12] } 8004364: bf00 nop 8004366: 3714 adds r7, #20 8004368: 46bd mov sp, r7 800436a: bc80 pop {r7} 800436c: 4770 bx lr ... 08004370 : * @param Data: Specifies the data to be programmed * * @retval HAL_StatusTypeDef HAL Status */ HAL_StatusTypeDef HAL_FLASH_Program(uint32_t TypeProgram, uint32_t Address, uint64_t Data) { 8004370: b5f0 push {r4, r5, r6, r7, lr} 8004372: b087 sub sp, #28 8004374: af00 add r7, sp, #0 8004376: 60f8 str r0, [r7, #12] 8004378: 60b9 str r1, [r7, #8] 800437a: e9c7 2300 strd r2, r3, [r7] HAL_StatusTypeDef status = HAL_ERROR; 800437e: 2301 movs r3, #1 8004380: 75fb strb r3, [r7, #23] uint8_t index = 0; 8004382: 2300 movs r3, #0 8004384: 75bb strb r3, [r7, #22] uint8_t nbiterations = 0; 8004386: 2300 movs r3, #0 8004388: 757b strb r3, [r7, #21] /* Process Locked */ __HAL_LOCK(&pFlash); 800438a: 4b2f ldr r3, [pc, #188] @ (8004448 ) 800438c: 7e1b ldrb r3, [r3, #24] 800438e: 2b01 cmp r3, #1 8004390: d101 bne.n 8004396 8004392: 2302 movs r3, #2 8004394: e054 b.n 8004440 8004396: 4b2c ldr r3, [pc, #176] @ (8004448 ) 8004398: 2201 movs r2, #1 800439a: 761a strb r2, [r3, #24] #if defined(FLASH_BANK2_END) if(Address <= FLASH_BANK1_END) { #endif /* FLASH_BANK2_END */ /* Wait for last operation to be completed */ status = FLASH_WaitForLastOperation(FLASH_TIMEOUT_VALUE); 800439c: f24c 3050 movw r0, #50000 @ 0xc350 80043a0: f000 f8a8 bl 80044f4 80043a4: 4603 mov r3, r0 80043a6: 75fb strb r3, [r7, #23] /* Wait for last operation to be completed */ status = FLASH_WaitForLastOperationBank2(FLASH_TIMEOUT_VALUE); } #endif /* FLASH_BANK2_END */ if(status == HAL_OK) 80043a8: 7dfb ldrb r3, [r7, #23] 80043aa: 2b00 cmp r3, #0 80043ac: d144 bne.n 8004438 { if(TypeProgram == FLASH_TYPEPROGRAM_HALFWORD) 80043ae: 68fb ldr r3, [r7, #12] 80043b0: 2b01 cmp r3, #1 80043b2: d102 bne.n 80043ba { /* Program halfword (16-bit) at a specified address. */ nbiterations = 1U; 80043b4: 2301 movs r3, #1 80043b6: 757b strb r3, [r7, #21] 80043b8: e007 b.n 80043ca } else if(TypeProgram == FLASH_TYPEPROGRAM_WORD) 80043ba: 68fb ldr r3, [r7, #12] 80043bc: 2b02 cmp r3, #2 80043be: d102 bne.n 80043c6 { /* Program word (32-bit = 2*16-bit) at a specified address. */ nbiterations = 2U; 80043c0: 2302 movs r3, #2 80043c2: 757b strb r3, [r7, #21] 80043c4: e001 b.n 80043ca } else { /* Program double word (64-bit = 4*16-bit) at a specified address. */ nbiterations = 4U; 80043c6: 2304 movs r3, #4 80043c8: 757b strb r3, [r7, #21] } for (index = 0U; index < nbiterations; index++) 80043ca: 2300 movs r3, #0 80043cc: 75bb strb r3, [r7, #22] 80043ce: e02d b.n 800442c { FLASH_Program_HalfWord((Address + (2U*index)), (uint16_t)(Data >> (16U*index))); 80043d0: 7dbb ldrb r3, [r7, #22] 80043d2: 005a lsls r2, r3, #1 80043d4: 68bb ldr r3, [r7, #8] 80043d6: eb02 0c03 add.w ip, r2, r3 80043da: 7dbb ldrb r3, [r7, #22] 80043dc: 0119 lsls r1, r3, #4 80043de: e9d7 2300 ldrd r2, r3, [r7] 80043e2: f1c1 0620 rsb r6, r1, #32 80043e6: f1a1 0020 sub.w r0, r1, #32 80043ea: fa22 f401 lsr.w r4, r2, r1 80043ee: fa03 f606 lsl.w r6, r3, r6 80043f2: 4334 orrs r4, r6 80043f4: fa23 f000 lsr.w r0, r3, r0 80043f8: 4304 orrs r4, r0 80043fa: fa23 f501 lsr.w r5, r3, r1 80043fe: b2a3 uxth r3, r4 8004400: 4619 mov r1, r3 8004402: 4660 mov r0, ip 8004404: f000 f85a bl 80044bc #if defined(FLASH_BANK2_END) if(Address <= FLASH_BANK1_END) { #endif /* FLASH_BANK2_END */ /* Wait for last operation to be completed */ status = FLASH_WaitForLastOperation(FLASH_TIMEOUT_VALUE); 8004408: f24c 3050 movw r0, #50000 @ 0xc350 800440c: f000 f872 bl 80044f4 8004410: 4603 mov r3, r0 8004412: 75fb strb r3, [r7, #23] /* If the program operation is completed, disable the PG Bit */ CLEAR_BIT(FLASH->CR, FLASH_CR_PG); 8004414: 4b0d ldr r3, [pc, #52] @ (800444c ) 8004416: 691b ldr r3, [r3, #16] 8004418: 4a0c ldr r2, [pc, #48] @ (800444c ) 800441a: f023 0301 bic.w r3, r3, #1 800441e: 6113 str r3, [r2, #16] /* If the program operation is completed, disable the PG Bit */ CLEAR_BIT(FLASH->CR2, FLASH_CR2_PG); } #endif /* FLASH_BANK2_END */ /* In case of error, stop programation procedure */ if (status != HAL_OK) 8004420: 7dfb ldrb r3, [r7, #23] 8004422: 2b00 cmp r3, #0 8004424: d107 bne.n 8004436 for (index = 0U; index < nbiterations; index++) 8004426: 7dbb ldrb r3, [r7, #22] 8004428: 3301 adds r3, #1 800442a: 75bb strb r3, [r7, #22] 800442c: 7dba ldrb r2, [r7, #22] 800442e: 7d7b ldrb r3, [r7, #21] 8004430: 429a cmp r2, r3 8004432: d3cd bcc.n 80043d0 8004434: e000 b.n 8004438 { break; 8004436: bf00 nop } } } /* Process Unlocked */ __HAL_UNLOCK(&pFlash); 8004438: 4b03 ldr r3, [pc, #12] @ (8004448 ) 800443a: 2200 movs r2, #0 800443c: 761a strb r2, [r3, #24] return status; 800443e: 7dfb ldrb r3, [r7, #23] } 8004440: 4618 mov r0, r3 8004442: 371c adds r7, #28 8004444: 46bd mov sp, r7 8004446: bdf0 pop {r4, r5, r6, r7, pc} 8004448: 200007b8 .word 0x200007b8 800444c: 40022000 .word 0x40022000 08004450 : /** * @brief Unlock the FLASH control register access * @retval HAL Status */ HAL_StatusTypeDef HAL_FLASH_Unlock(void) { 8004450: b480 push {r7} 8004452: b083 sub sp, #12 8004454: af00 add r7, sp, #0 HAL_StatusTypeDef status = HAL_OK; 8004456: 2300 movs r3, #0 8004458: 71fb strb r3, [r7, #7] if(READ_BIT(FLASH->CR, FLASH_CR_LOCK) != RESET) 800445a: 4b0d ldr r3, [pc, #52] @ (8004490 ) 800445c: 691b ldr r3, [r3, #16] 800445e: f003 0380 and.w r3, r3, #128 @ 0x80 8004462: 2b00 cmp r3, #0 8004464: d00d beq.n 8004482 { /* Authorize the FLASH Registers access */ WRITE_REG(FLASH->KEYR, FLASH_KEY1); 8004466: 4b0a ldr r3, [pc, #40] @ (8004490 ) 8004468: 4a0a ldr r2, [pc, #40] @ (8004494 ) 800446a: 605a str r2, [r3, #4] WRITE_REG(FLASH->KEYR, FLASH_KEY2); 800446c: 4b08 ldr r3, [pc, #32] @ (8004490 ) 800446e: 4a0a ldr r2, [pc, #40] @ (8004498 ) 8004470: 605a str r2, [r3, #4] /* Verify Flash is unlocked */ if(READ_BIT(FLASH->CR, FLASH_CR_LOCK) != RESET) 8004472: 4b07 ldr r3, [pc, #28] @ (8004490 ) 8004474: 691b ldr r3, [r3, #16] 8004476: f003 0380 and.w r3, r3, #128 @ 0x80 800447a: 2b00 cmp r3, #0 800447c: d001 beq.n 8004482 { status = HAL_ERROR; 800447e: 2301 movs r3, #1 8004480: 71fb strb r3, [r7, #7] status = HAL_ERROR; } } #endif /* FLASH_BANK2_END */ return status; 8004482: 79fb ldrb r3, [r7, #7] } 8004484: 4618 mov r0, r3 8004486: 370c adds r7, #12 8004488: 46bd mov sp, r7 800448a: bc80 pop {r7} 800448c: 4770 bx lr 800448e: bf00 nop 8004490: 40022000 .word 0x40022000 8004494: 45670123 .word 0x45670123 8004498: cdef89ab .word 0xcdef89ab 0800449c : /** * @brief Locks the FLASH control register access * @retval HAL Status */ HAL_StatusTypeDef HAL_FLASH_Lock(void) { 800449c: b480 push {r7} 800449e: af00 add r7, sp, #0 /* Set the LOCK Bit to lock the FLASH Registers access */ SET_BIT(FLASH->CR, FLASH_CR_LOCK); 80044a0: 4b05 ldr r3, [pc, #20] @ (80044b8 ) 80044a2: 691b ldr r3, [r3, #16] 80044a4: 4a04 ldr r2, [pc, #16] @ (80044b8 ) 80044a6: f043 0380 orr.w r3, r3, #128 @ 0x80 80044aa: 6113 str r3, [r2, #16] #if defined(FLASH_BANK2_END) /* Set the LOCK Bit to lock the FLASH BANK2 Registers access */ SET_BIT(FLASH->CR2, FLASH_CR2_LOCK); #endif /* FLASH_BANK2_END */ return HAL_OK; 80044ac: 2300 movs r3, #0 } 80044ae: 4618 mov r0, r3 80044b0: 46bd mov sp, r7 80044b2: bc80 pop {r7} 80044b4: 4770 bx lr 80044b6: bf00 nop 80044b8: 40022000 .word 0x40022000 080044bc : * @param Address specify the address to be programmed. * @param Data specify the data to be programmed. * @retval None */ static void FLASH_Program_HalfWord(uint32_t Address, uint16_t Data) { 80044bc: b480 push {r7} 80044be: b083 sub sp, #12 80044c0: af00 add r7, sp, #0 80044c2: 6078 str r0, [r7, #4] 80044c4: 460b mov r3, r1 80044c6: 807b strh r3, [r7, #2] /* Clean the error context */ pFlash.ErrorCode = HAL_FLASH_ERROR_NONE; 80044c8: 4b08 ldr r3, [pc, #32] @ (80044ec ) 80044ca: 2200 movs r2, #0 80044cc: 61da str r2, [r3, #28] #if defined(FLASH_BANK2_END) if(Address <= FLASH_BANK1_END) { #endif /* FLASH_BANK2_END */ /* Proceed to program the new data */ SET_BIT(FLASH->CR, FLASH_CR_PG); 80044ce: 4b08 ldr r3, [pc, #32] @ (80044f0 ) 80044d0: 691b ldr r3, [r3, #16] 80044d2: 4a07 ldr r2, [pc, #28] @ (80044f0 ) 80044d4: f043 0301 orr.w r3, r3, #1 80044d8: 6113 str r3, [r2, #16] SET_BIT(FLASH->CR2, FLASH_CR2_PG); } #endif /* FLASH_BANK2_END */ /* Write data in the address */ *(__IO uint16_t*)Address = Data; 80044da: 687b ldr r3, [r7, #4] 80044dc: 887a ldrh r2, [r7, #2] 80044de: 801a strh r2, [r3, #0] } 80044e0: bf00 nop 80044e2: 370c adds r7, #12 80044e4: 46bd mov sp, r7 80044e6: bc80 pop {r7} 80044e8: 4770 bx lr 80044ea: bf00 nop 80044ec: 200007b8 .word 0x200007b8 80044f0: 40022000 .word 0x40022000 080044f4 : * @brief Wait for a FLASH operation to complete. * @param Timeout maximum flash operation timeout * @retval HAL Status */ HAL_StatusTypeDef FLASH_WaitForLastOperation(uint32_t Timeout) { 80044f4: b580 push {r7, lr} 80044f6: b084 sub sp, #16 80044f8: af00 add r7, sp, #0 80044fa: 6078 str r0, [r7, #4] /* Wait for the FLASH operation to complete by polling on BUSY flag to be reset. Even if the FLASH operation fails, the BUSY flag will be reset and an error flag will be set */ uint32_t tickstart = HAL_GetTick(); 80044fc: f7fe feea bl 80032d4 8004500: 60f8 str r0, [r7, #12] while(__HAL_FLASH_GET_FLAG(FLASH_FLAG_BSY)) 8004502: e010 b.n 8004526 { if (Timeout != HAL_MAX_DELAY) 8004504: 687b ldr r3, [r7, #4] 8004506: f1b3 3fff cmp.w r3, #4294967295 800450a: d00c beq.n 8004526 { if((Timeout == 0U) || ((HAL_GetTick()-tickstart) > Timeout)) 800450c: 687b ldr r3, [r7, #4] 800450e: 2b00 cmp r3, #0 8004510: d007 beq.n 8004522 8004512: f7fe fedf bl 80032d4 8004516: 4602 mov r2, r0 8004518: 68fb ldr r3, [r7, #12] 800451a: 1ad3 subs r3, r2, r3 800451c: 687a ldr r2, [r7, #4] 800451e: 429a cmp r2, r3 8004520: d201 bcs.n 8004526 { return HAL_TIMEOUT; 8004522: 2303 movs r3, #3 8004524: e025 b.n 8004572 while(__HAL_FLASH_GET_FLAG(FLASH_FLAG_BSY)) 8004526: 4b15 ldr r3, [pc, #84] @ (800457c ) 8004528: 68db ldr r3, [r3, #12] 800452a: f003 0301 and.w r3, r3, #1 800452e: 2b00 cmp r3, #0 8004530: d1e8 bne.n 8004504 } } } /* Check FLASH End of Operation flag */ if (__HAL_FLASH_GET_FLAG(FLASH_FLAG_EOP)) 8004532: 4b12 ldr r3, [pc, #72] @ (800457c ) 8004534: 68db ldr r3, [r3, #12] 8004536: f003 0320 and.w r3, r3, #32 800453a: 2b00 cmp r3, #0 800453c: d002 beq.n 8004544 { /* Clear FLASH End of Operation pending bit */ __HAL_FLASH_CLEAR_FLAG(FLASH_FLAG_EOP); 800453e: 4b0f ldr r3, [pc, #60] @ (800457c ) 8004540: 2220 movs r2, #32 8004542: 60da str r2, [r3, #12] } if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_WRPERR) || 8004544: 4b0d ldr r3, [pc, #52] @ (800457c ) 8004546: 68db ldr r3, [r3, #12] 8004548: f003 0310 and.w r3, r3, #16 800454c: 2b00 cmp r3, #0 800454e: d10b bne.n 8004568 __HAL_FLASH_GET_FLAG(FLASH_FLAG_OPTVERR) || 8004550: 4b0a ldr r3, [pc, #40] @ (800457c ) 8004552: 69db ldr r3, [r3, #28] 8004554: f003 0301 and.w r3, r3, #1 if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_WRPERR) || 8004558: 2b00 cmp r3, #0 800455a: d105 bne.n 8004568 __HAL_FLASH_GET_FLAG(FLASH_FLAG_PGERR)) 800455c: 4b07 ldr r3, [pc, #28] @ (800457c ) 800455e: 68db ldr r3, [r3, #12] 8004560: f003 0304 and.w r3, r3, #4 __HAL_FLASH_GET_FLAG(FLASH_FLAG_OPTVERR) || 8004564: 2b00 cmp r3, #0 8004566: d003 beq.n 8004570 { /*Save the error code*/ FLASH_SetErrorCode(); 8004568: f000 f80a bl 8004580 return HAL_ERROR; 800456c: 2301 movs r3, #1 800456e: e000 b.n 8004572 } /* There is no error flag set */ return HAL_OK; 8004570: 2300 movs r3, #0 } 8004572: 4618 mov r0, r3 8004574: 3710 adds r7, #16 8004576: 46bd mov sp, r7 8004578: bd80 pop {r7, pc} 800457a: bf00 nop 800457c: 40022000 .word 0x40022000 08004580 : /** * @brief Set the specific FLASH error flag. * @retval None */ static void FLASH_SetErrorCode(void) { 8004580: b480 push {r7} 8004582: b083 sub sp, #12 8004584: af00 add r7, sp, #0 uint32_t flags = 0U; 8004586: 2300 movs r3, #0 8004588: 607b str r3, [r7, #4] #if defined(FLASH_BANK2_END) if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_WRPERR) || __HAL_FLASH_GET_FLAG(FLASH_FLAG_WRPERR_BANK2)) #else if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_WRPERR)) 800458a: 4b23 ldr r3, [pc, #140] @ (8004618 ) 800458c: 68db ldr r3, [r3, #12] 800458e: f003 0310 and.w r3, r3, #16 8004592: 2b00 cmp r3, #0 8004594: d009 beq.n 80045aa #endif /* FLASH_BANK2_END */ { pFlash.ErrorCode |= HAL_FLASH_ERROR_WRP; 8004596: 4b21 ldr r3, [pc, #132] @ (800461c ) 8004598: 69db ldr r3, [r3, #28] 800459a: f043 0302 orr.w r3, r3, #2 800459e: 4a1f ldr r2, [pc, #124] @ (800461c ) 80045a0: 61d3 str r3, [r2, #28] #if defined(FLASH_BANK2_END) flags |= FLASH_FLAG_WRPERR | FLASH_FLAG_WRPERR_BANK2; #else flags |= FLASH_FLAG_WRPERR; 80045a2: 687b ldr r3, [r7, #4] 80045a4: f043 0310 orr.w r3, r3, #16 80045a8: 607b str r3, [r7, #4] #endif /* FLASH_BANK2_END */ } #if defined(FLASH_BANK2_END) if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_PGERR) || __HAL_FLASH_GET_FLAG(FLASH_FLAG_PGERR_BANK2)) #else if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_PGERR)) 80045aa: 4b1b ldr r3, [pc, #108] @ (8004618 ) 80045ac: 68db ldr r3, [r3, #12] 80045ae: f003 0304 and.w r3, r3, #4 80045b2: 2b00 cmp r3, #0 80045b4: d009 beq.n 80045ca #endif /* FLASH_BANK2_END */ { pFlash.ErrorCode |= HAL_FLASH_ERROR_PROG; 80045b6: 4b19 ldr r3, [pc, #100] @ (800461c ) 80045b8: 69db ldr r3, [r3, #28] 80045ba: f043 0301 orr.w r3, r3, #1 80045be: 4a17 ldr r2, [pc, #92] @ (800461c ) 80045c0: 61d3 str r3, [r2, #28] #if defined(FLASH_BANK2_END) flags |= FLASH_FLAG_PGERR | FLASH_FLAG_PGERR_BANK2; #else flags |= FLASH_FLAG_PGERR; 80045c2: 687b ldr r3, [r7, #4] 80045c4: f043 0304 orr.w r3, r3, #4 80045c8: 607b str r3, [r7, #4] #endif /* FLASH_BANK2_END */ } if(__HAL_FLASH_GET_FLAG(FLASH_FLAG_OPTVERR)) 80045ca: 4b13 ldr r3, [pc, #76] @ (8004618 ) 80045cc: 69db ldr r3, [r3, #28] 80045ce: f003 0301 and.w r3, r3, #1 80045d2: 2b00 cmp r3, #0 80045d4: d00b beq.n 80045ee { pFlash.ErrorCode |= HAL_FLASH_ERROR_OPTV; 80045d6: 4b11 ldr r3, [pc, #68] @ (800461c ) 80045d8: 69db ldr r3, [r3, #28] 80045da: f043 0304 orr.w r3, r3, #4 80045de: 4a0f ldr r2, [pc, #60] @ (800461c ) 80045e0: 61d3 str r3, [r2, #28] __HAL_FLASH_CLEAR_FLAG(FLASH_FLAG_OPTVERR); 80045e2: 4b0d ldr r3, [pc, #52] @ (8004618 ) 80045e4: 69db ldr r3, [r3, #28] 80045e6: 4a0c ldr r2, [pc, #48] @ (8004618 ) 80045e8: f023 0301 bic.w r3, r3, #1 80045ec: 61d3 str r3, [r2, #28] } /* Clear FLASH error pending bits */ __HAL_FLASH_CLEAR_FLAG(flags); 80045ee: 687b ldr r3, [r7, #4] 80045f0: f240 1201 movw r2, #257 @ 0x101 80045f4: 4293 cmp r3, r2 80045f6: d106 bne.n 8004606 80045f8: 4b07 ldr r3, [pc, #28] @ (8004618 ) 80045fa: 69db ldr r3, [r3, #28] 80045fc: 4a06 ldr r2, [pc, #24] @ (8004618 ) 80045fe: f023 0301 bic.w r3, r3, #1 8004602: 61d3 str r3, [r2, #28] } 8004604: e002 b.n 800460c __HAL_FLASH_CLEAR_FLAG(flags); 8004606: 4a04 ldr r2, [pc, #16] @ (8004618 ) 8004608: 687b ldr r3, [r7, #4] 800460a: 60d3 str r3, [r2, #12] } 800460c: bf00 nop 800460e: 370c adds r7, #12 8004610: 46bd mov sp, r7 8004612: bc80 pop {r7} 8004614: 4770 bx lr 8004616: bf00 nop 8004618: 40022000 .word 0x40022000 800461c: 200007b8 .word 0x200007b8 08004620 : * (0xFFFFFFFF means that all the pages have been correctly erased) * * @retval HAL_StatusTypeDef HAL Status */ HAL_StatusTypeDef HAL_FLASHEx_Erase(FLASH_EraseInitTypeDef *pEraseInit, uint32_t *PageError) { 8004620: b580 push {r7, lr} 8004622: b084 sub sp, #16 8004624: af00 add r7, sp, #0 8004626: 6078 str r0, [r7, #4] 8004628: 6039 str r1, [r7, #0] HAL_StatusTypeDef status = HAL_ERROR; 800462a: 2301 movs r3, #1 800462c: 73fb strb r3, [r7, #15] uint32_t address = 0U; 800462e: 2300 movs r3, #0 8004630: 60bb str r3, [r7, #8] /* Process Locked */ __HAL_LOCK(&pFlash); 8004632: 4b2f ldr r3, [pc, #188] @ (80046f0 ) 8004634: 7e1b ldrb r3, [r3, #24] 8004636: 2b01 cmp r3, #1 8004638: d101 bne.n 800463e 800463a: 2302 movs r3, #2 800463c: e053 b.n 80046e6 800463e: 4b2c ldr r3, [pc, #176] @ (80046f0 ) 8004640: 2201 movs r2, #1 8004642: 761a strb r2, [r3, #24] /* Check the parameters */ assert_param(IS_FLASH_TYPEERASE(pEraseInit->TypeErase)); if (pEraseInit->TypeErase == FLASH_TYPEERASE_MASSERASE) 8004644: 687b ldr r3, [r7, #4] 8004646: 681b ldr r3, [r3, #0] 8004648: 2b02 cmp r3, #2 800464a: d116 bne.n 800467a else #endif /* FLASH_BANK2_END */ { /* Mass Erase requested for Bank1 */ /* Wait for last operation to be completed */ if (FLASH_WaitForLastOperation((uint32_t)FLASH_TIMEOUT_VALUE) == HAL_OK) 800464c: f24c 3050 movw r0, #50000 @ 0xc350 8004650: f7ff ff50 bl 80044f4 8004654: 4603 mov r3, r0 8004656: 2b00 cmp r3, #0 8004658: d141 bne.n 80046de { /*Mass erase to be done*/ FLASH_MassErase(FLASH_BANK_1); 800465a: 2001 movs r0, #1 800465c: f000 f84c bl 80046f8 /* Wait for last operation to be completed */ status = FLASH_WaitForLastOperation((uint32_t)FLASH_TIMEOUT_VALUE); 8004660: f24c 3050 movw r0, #50000 @ 0xc350 8004664: f7ff ff46 bl 80044f4 8004668: 4603 mov r3, r0 800466a: 73fb strb r3, [r7, #15] /* If the erase operation is completed, disable the MER Bit */ CLEAR_BIT(FLASH->CR, FLASH_CR_MER); 800466c: 4b21 ldr r3, [pc, #132] @ (80046f4 ) 800466e: 691b ldr r3, [r3, #16] 8004670: 4a20 ldr r2, [pc, #128] @ (80046f4 ) 8004672: f023 0304 bic.w r3, r3, #4 8004676: 6113 str r3, [r2, #16] 8004678: e031 b.n 80046de else #endif /* FLASH_BANK2_END */ { /* Page Erase requested on address located on bank1 */ /* Wait for last operation to be completed */ if (FLASH_WaitForLastOperation((uint32_t)FLASH_TIMEOUT_VALUE) == HAL_OK) 800467a: f24c 3050 movw r0, #50000 @ 0xc350 800467e: f7ff ff39 bl 80044f4 8004682: 4603 mov r3, r0 8004684: 2b00 cmp r3, #0 8004686: d12a bne.n 80046de { /*Initialization of PageError variable*/ *PageError = 0xFFFFFFFFU; 8004688: 683b ldr r3, [r7, #0] 800468a: f04f 32ff mov.w r2, #4294967295 800468e: 601a str r2, [r3, #0] /* Erase page by page to be done*/ for(address = pEraseInit->PageAddress; 8004690: 687b ldr r3, [r7, #4] 8004692: 689b ldr r3, [r3, #8] 8004694: 60bb str r3, [r7, #8] 8004696: e019 b.n 80046cc address < ((pEraseInit->NbPages * FLASH_PAGE_SIZE) + pEraseInit->PageAddress); address += FLASH_PAGE_SIZE) { FLASH_PageErase(address); 8004698: 68b8 ldr r0, [r7, #8] 800469a: f000 f849 bl 8004730 /* Wait for last operation to be completed */ status = FLASH_WaitForLastOperation((uint32_t)FLASH_TIMEOUT_VALUE); 800469e: f24c 3050 movw r0, #50000 @ 0xc350 80046a2: f7ff ff27 bl 80044f4 80046a6: 4603 mov r3, r0 80046a8: 73fb strb r3, [r7, #15] /* If the erase operation is completed, disable the PER Bit */ CLEAR_BIT(FLASH->CR, FLASH_CR_PER); 80046aa: 4b12 ldr r3, [pc, #72] @ (80046f4 ) 80046ac: 691b ldr r3, [r3, #16] 80046ae: 4a11 ldr r2, [pc, #68] @ (80046f4 ) 80046b0: f023 0302 bic.w r3, r3, #2 80046b4: 6113 str r3, [r2, #16] if (status != HAL_OK) 80046b6: 7bfb ldrb r3, [r7, #15] 80046b8: 2b00 cmp r3, #0 80046ba: d003 beq.n 80046c4 { /* In case of error, stop erase procedure and return the faulty address */ *PageError = address; 80046bc: 683b ldr r3, [r7, #0] 80046be: 68ba ldr r2, [r7, #8] 80046c0: 601a str r2, [r3, #0] break; 80046c2: e00c b.n 80046de address += FLASH_PAGE_SIZE) 80046c4: 68bb ldr r3, [r7, #8] 80046c6: f503 6380 add.w r3, r3, #1024 @ 0x400 80046ca: 60bb str r3, [r7, #8] address < ((pEraseInit->NbPages * FLASH_PAGE_SIZE) + pEraseInit->PageAddress); 80046cc: 687b ldr r3, [r7, #4] 80046ce: 68db ldr r3, [r3, #12] 80046d0: 029a lsls r2, r3, #10 80046d2: 687b ldr r3, [r7, #4] 80046d4: 689b ldr r3, [r3, #8] 80046d6: 4413 add r3, r2 80046d8: 68ba ldr r2, [r7, #8] 80046da: 429a cmp r2, r3 80046dc: d3dc bcc.n 8004698 } } } /* Process Unlocked */ __HAL_UNLOCK(&pFlash); 80046de: 4b04 ldr r3, [pc, #16] @ (80046f0 ) 80046e0: 2200 movs r2, #0 80046e2: 761a strb r2, [r3, #24] return status; 80046e4: 7bfb ldrb r3, [r7, #15] } 80046e6: 4618 mov r0, r3 80046e8: 3710 adds r7, #16 80046ea: 46bd mov sp, r7 80046ec: bd80 pop {r7, pc} 80046ee: bf00 nop 80046f0: 200007b8 .word 0x200007b8 80046f4: 40022000 .word 0x40022000 080046f8 : @endif * * @retval None */ static void FLASH_MassErase(uint32_t Banks) { 80046f8: b480 push {r7} 80046fa: b083 sub sp, #12 80046fc: af00 add r7, sp, #0 80046fe: 6078 str r0, [r7, #4] /* Check the parameters */ assert_param(IS_FLASH_BANK(Banks)); /* Clean the error context */ pFlash.ErrorCode = HAL_FLASH_ERROR_NONE; 8004700: 4b09 ldr r3, [pc, #36] @ (8004728 ) 8004702: 2200 movs r2, #0 8004704: 61da str r2, [r3, #28] #if !defined(FLASH_BANK2_END) /* Prevent unused argument(s) compilation warning */ UNUSED(Banks); #endif /* FLASH_BANK2_END */ /* Only bank1 will be erased*/ SET_BIT(FLASH->CR, FLASH_CR_MER); 8004706: 4b09 ldr r3, [pc, #36] @ (800472c ) 8004708: 691b ldr r3, [r3, #16] 800470a: 4a08 ldr r2, [pc, #32] @ (800472c ) 800470c: f043 0304 orr.w r3, r3, #4 8004710: 6113 str r3, [r2, #16] SET_BIT(FLASH->CR, FLASH_CR_STRT); 8004712: 4b06 ldr r3, [pc, #24] @ (800472c ) 8004714: 691b ldr r3, [r3, #16] 8004716: 4a05 ldr r2, [pc, #20] @ (800472c ) 8004718: f043 0340 orr.w r3, r3, #64 @ 0x40 800471c: 6113 str r3, [r2, #16] #if defined(FLASH_BANK2_END) } #endif /* FLASH_BANK2_END */ } 800471e: bf00 nop 8004720: 370c adds r7, #12 8004722: 46bd mov sp, r7 8004724: bc80 pop {r7} 8004726: 4770 bx lr 8004728: 200007b8 .word 0x200007b8 800472c: 40022000 .word 0x40022000 08004730 : * The value of this parameter depend on device used within the same series * * @retval None */ void FLASH_PageErase(uint32_t PageAddress) { 8004730: b480 push {r7} 8004732: b083 sub sp, #12 8004734: af00 add r7, sp, #0 8004736: 6078 str r0, [r7, #4] /* Clean the error context */ pFlash.ErrorCode = HAL_FLASH_ERROR_NONE; 8004738: 4b0b ldr r3, [pc, #44] @ (8004768 ) 800473a: 2200 movs r2, #0 800473c: 61da str r2, [r3, #28] } else { #endif /* FLASH_BANK2_END */ /* Proceed to erase the page */ SET_BIT(FLASH->CR, FLASH_CR_PER); 800473e: 4b0b ldr r3, [pc, #44] @ (800476c ) 8004740: 691b ldr r3, [r3, #16] 8004742: 4a0a ldr r2, [pc, #40] @ (800476c ) 8004744: f043 0302 orr.w r3, r3, #2 8004748: 6113 str r3, [r2, #16] WRITE_REG(FLASH->AR, PageAddress); 800474a: 4a08 ldr r2, [pc, #32] @ (800476c ) 800474c: 687b ldr r3, [r7, #4] 800474e: 6153 str r3, [r2, #20] SET_BIT(FLASH->CR, FLASH_CR_STRT); 8004750: 4b06 ldr r3, [pc, #24] @ (800476c ) 8004752: 691b ldr r3, [r3, #16] 8004754: 4a05 ldr r2, [pc, #20] @ (800476c ) 8004756: f043 0340 orr.w r3, r3, #64 @ 0x40 800475a: 6113 str r3, [r2, #16] #if defined(FLASH_BANK2_END) } #endif /* FLASH_BANK2_END */ } 800475c: bf00 nop 800475e: 370c adds r7, #12 8004760: 46bd mov sp, r7 8004762: bc80 pop {r7} 8004764: 4770 bx lr 8004766: bf00 nop 8004768: 200007b8 .word 0x200007b8 800476c: 40022000 .word 0x40022000 08004770 : * @param GPIO_Init: pointer to a GPIO_InitTypeDef structure that contains * the configuration information for the specified GPIO peripheral. * @retval None */ void HAL_GPIO_Init(GPIO_TypeDef *GPIOx, GPIO_InitTypeDef *GPIO_Init) { 8004770: b480 push {r7} 8004772: b08b sub sp, #44 @ 0x2c 8004774: af00 add r7, sp, #0 8004776: 6078 str r0, [r7, #4] 8004778: 6039 str r1, [r7, #0] uint32_t position = 0x00u; 800477a: 2300 movs r3, #0 800477c: 627b str r3, [r7, #36] @ 0x24 uint32_t ioposition; uint32_t iocurrent; uint32_t temp; uint32_t config = 0x00u; 800477e: 2300 movs r3, #0 8004780: 623b str r3, [r7, #32] assert_param(IS_GPIO_ALL_INSTANCE(GPIOx)); assert_param(IS_GPIO_PIN(GPIO_Init->Pin)); assert_param(IS_GPIO_MODE(GPIO_Init->Mode)); /* Configure the port pins */ while (((GPIO_Init->Pin) >> position) != 0x00u) 8004782: e169 b.n 8004a58 { /* Get the IO position */ ioposition = (0x01uL << position); 8004784: 2201 movs r2, #1 8004786: 6a7b ldr r3, [r7, #36] @ 0x24 8004788: fa02 f303 lsl.w r3, r2, r3 800478c: 61fb str r3, [r7, #28] /* Get the current IO position */ iocurrent = (uint32_t)(GPIO_Init->Pin) & ioposition; 800478e: 683b ldr r3, [r7, #0] 8004790: 681b ldr r3, [r3, #0] 8004792: 69fa ldr r2, [r7, #28] 8004794: 4013 ands r3, r2 8004796: 61bb str r3, [r7, #24] if (iocurrent == ioposition) 8004798: 69ba ldr r2, [r7, #24] 800479a: 69fb ldr r3, [r7, #28] 800479c: 429a cmp r2, r3 800479e: f040 8158 bne.w 8004a52 { /* Check the Alternate function parameters */ assert_param(IS_GPIO_AF_INSTANCE(GPIOx)); /* Based on the required mode, filling config variable with MODEy[1:0] and CNFy[3:2] corresponding bits */ switch (GPIO_Init->Mode) 80047a2: 683b ldr r3, [r7, #0] 80047a4: 685b ldr r3, [r3, #4] 80047a6: 4a9a ldr r2, [pc, #616] @ (8004a10 ) 80047a8: 4293 cmp r3, r2 80047aa: d05e beq.n 800486a 80047ac: 4a98 ldr r2, [pc, #608] @ (8004a10 ) 80047ae: 4293 cmp r3, r2 80047b0: d875 bhi.n 800489e 80047b2: 4a98 ldr r2, [pc, #608] @ (8004a14 ) 80047b4: 4293 cmp r3, r2 80047b6: d058 beq.n 800486a 80047b8: 4a96 ldr r2, [pc, #600] @ (8004a14 ) 80047ba: 4293 cmp r3, r2 80047bc: d86f bhi.n 800489e 80047be: 4a96 ldr r2, [pc, #600] @ (8004a18 ) 80047c0: 4293 cmp r3, r2 80047c2: d052 beq.n 800486a 80047c4: 4a94 ldr r2, [pc, #592] @ (8004a18 ) 80047c6: 4293 cmp r3, r2 80047c8: d869 bhi.n 800489e 80047ca: 4a94 ldr r2, [pc, #592] @ (8004a1c ) 80047cc: 4293 cmp r3, r2 80047ce: d04c beq.n 800486a 80047d0: 4a92 ldr r2, [pc, #584] @ (8004a1c ) 80047d2: 4293 cmp r3, r2 80047d4: d863 bhi.n 800489e 80047d6: 4a92 ldr r2, [pc, #584] @ (8004a20 ) 80047d8: 4293 cmp r3, r2 80047da: d046 beq.n 800486a 80047dc: 4a90 ldr r2, [pc, #576] @ (8004a20 ) 80047de: 4293 cmp r3, r2 80047e0: d85d bhi.n 800489e 80047e2: 2b12 cmp r3, #18 80047e4: d82a bhi.n 800483c 80047e6: 2b12 cmp r3, #18 80047e8: d859 bhi.n 800489e 80047ea: a201 add r2, pc, #4 @ (adr r2, 80047f0 ) 80047ec: f852 f023 ldr.w pc, [r2, r3, lsl #2] 80047f0: 0800486b .word 0x0800486b 80047f4: 08004845 .word 0x08004845 80047f8: 08004857 .word 0x08004857 80047fc: 08004899 .word 0x08004899 8004800: 0800489f .word 0x0800489f 8004804: 0800489f .word 0x0800489f 8004808: 0800489f .word 0x0800489f 800480c: 0800489f .word 0x0800489f 8004810: 0800489f .word 0x0800489f 8004814: 0800489f .word 0x0800489f 8004818: 0800489f .word 0x0800489f 800481c: 0800489f .word 0x0800489f 8004820: 0800489f .word 0x0800489f 8004824: 0800489f .word 0x0800489f 8004828: 0800489f .word 0x0800489f 800482c: 0800489f .word 0x0800489f 8004830: 0800489f .word 0x0800489f 8004834: 0800484d .word 0x0800484d 8004838: 08004861 .word 0x08004861 800483c: 4a79 ldr r2, [pc, #484] @ (8004a24 ) 800483e: 4293 cmp r3, r2 8004840: d013 beq.n 800486a config = GPIO_CR_MODE_INPUT + GPIO_CR_CNF_ANALOG; break; /* Parameters are checked with assert_param */ default: break; 8004842: e02c b.n 800489e config = GPIO_Init->Speed + GPIO_CR_CNF_GP_OUTPUT_PP; 8004844: 683b ldr r3, [r7, #0] 8004846: 68db ldr r3, [r3, #12] 8004848: 623b str r3, [r7, #32] break; 800484a: e029 b.n 80048a0 config = GPIO_Init->Speed + GPIO_CR_CNF_GP_OUTPUT_OD; 800484c: 683b ldr r3, [r7, #0] 800484e: 68db ldr r3, [r3, #12] 8004850: 3304 adds r3, #4 8004852: 623b str r3, [r7, #32] break; 8004854: e024 b.n 80048a0 config = GPIO_Init->Speed + GPIO_CR_CNF_AF_OUTPUT_PP; 8004856: 683b ldr r3, [r7, #0] 8004858: 68db ldr r3, [r3, #12] 800485a: 3308 adds r3, #8 800485c: 623b str r3, [r7, #32] break; 800485e: e01f b.n 80048a0 config = GPIO_Init->Speed + GPIO_CR_CNF_AF_OUTPUT_OD; 8004860: 683b ldr r3, [r7, #0] 8004862: 68db ldr r3, [r3, #12] 8004864: 330c adds r3, #12 8004866: 623b str r3, [r7, #32] break; 8004868: e01a b.n 80048a0 if (GPIO_Init->Pull == GPIO_NOPULL) 800486a: 683b ldr r3, [r7, #0] 800486c: 689b ldr r3, [r3, #8] 800486e: 2b00 cmp r3, #0 8004870: d102 bne.n 8004878 config = GPIO_CR_MODE_INPUT + GPIO_CR_CNF_INPUT_FLOATING; 8004872: 2304 movs r3, #4 8004874: 623b str r3, [r7, #32] break; 8004876: e013 b.n 80048a0 else if (GPIO_Init->Pull == GPIO_PULLUP) 8004878: 683b ldr r3, [r7, #0] 800487a: 689b ldr r3, [r3, #8] 800487c: 2b01 cmp r3, #1 800487e: d105 bne.n 800488c config = GPIO_CR_MODE_INPUT + GPIO_CR_CNF_INPUT_PU_PD; 8004880: 2308 movs r3, #8 8004882: 623b str r3, [r7, #32] GPIOx->BSRR = ioposition; 8004884: 687b ldr r3, [r7, #4] 8004886: 69fa ldr r2, [r7, #28] 8004888: 611a str r2, [r3, #16] break; 800488a: e009 b.n 80048a0 config = GPIO_CR_MODE_INPUT + GPIO_CR_CNF_INPUT_PU_PD; 800488c: 2308 movs r3, #8 800488e: 623b str r3, [r7, #32] GPIOx->BRR = ioposition; 8004890: 687b ldr r3, [r7, #4] 8004892: 69fa ldr r2, [r7, #28] 8004894: 615a str r2, [r3, #20] break; 8004896: e003 b.n 80048a0 config = GPIO_CR_MODE_INPUT + GPIO_CR_CNF_ANALOG; 8004898: 2300 movs r3, #0 800489a: 623b str r3, [r7, #32] break; 800489c: e000 b.n 80048a0 break; 800489e: bf00 nop } /* Check if the current bit belongs to first half or last half of the pin count number in order to address CRH or CRL register*/ configregister = (iocurrent < GPIO_PIN_8) ? &GPIOx->CRL : &GPIOx->CRH; 80048a0: 69bb ldr r3, [r7, #24] 80048a2: 2bff cmp r3, #255 @ 0xff 80048a4: d801 bhi.n 80048aa 80048a6: 687b ldr r3, [r7, #4] 80048a8: e001 b.n 80048ae 80048aa: 687b ldr r3, [r7, #4] 80048ac: 3304 adds r3, #4 80048ae: 617b str r3, [r7, #20] registeroffset = (iocurrent < GPIO_PIN_8) ? (position << 2u) : ((position - 8u) << 2u); 80048b0: 69bb ldr r3, [r7, #24] 80048b2: 2bff cmp r3, #255 @ 0xff 80048b4: d802 bhi.n 80048bc 80048b6: 6a7b ldr r3, [r7, #36] @ 0x24 80048b8: 009b lsls r3, r3, #2 80048ba: e002 b.n 80048c2 80048bc: 6a7b ldr r3, [r7, #36] @ 0x24 80048be: 3b08 subs r3, #8 80048c0: 009b lsls r3, r3, #2 80048c2: 613b str r3, [r7, #16] /* Apply the new configuration of the pin to the register */ MODIFY_REG((*configregister), ((GPIO_CRL_MODE0 | GPIO_CRL_CNF0) << registeroffset), (config << registeroffset)); 80048c4: 697b ldr r3, [r7, #20] 80048c6: 681a ldr r2, [r3, #0] 80048c8: 210f movs r1, #15 80048ca: 693b ldr r3, [r7, #16] 80048cc: fa01 f303 lsl.w r3, r1, r3 80048d0: 43db mvns r3, r3 80048d2: 401a ands r2, r3 80048d4: 6a39 ldr r1, [r7, #32] 80048d6: 693b ldr r3, [r7, #16] 80048d8: fa01 f303 lsl.w r3, r1, r3 80048dc: 431a orrs r2, r3 80048de: 697b ldr r3, [r7, #20] 80048e0: 601a str r2, [r3, #0] /*--------------------- EXTI Mode Configuration ------------------------*/ /* Configure the External Interrupt or event for the current IO */ if ((GPIO_Init->Mode & EXTI_MODE) == EXTI_MODE) 80048e2: 683b ldr r3, [r7, #0] 80048e4: 685b ldr r3, [r3, #4] 80048e6: f003 5380 and.w r3, r3, #268435456 @ 0x10000000 80048ea: 2b00 cmp r3, #0 80048ec: f000 80b1 beq.w 8004a52 { /* Enable AFIO Clock */ __HAL_RCC_AFIO_CLK_ENABLE(); 80048f0: 4b4d ldr r3, [pc, #308] @ (8004a28 ) 80048f2: 699b ldr r3, [r3, #24] 80048f4: 4a4c ldr r2, [pc, #304] @ (8004a28 ) 80048f6: f043 0301 orr.w r3, r3, #1 80048fa: 6193 str r3, [r2, #24] 80048fc: 4b4a ldr r3, [pc, #296] @ (8004a28 ) 80048fe: 699b ldr r3, [r3, #24] 8004900: f003 0301 and.w r3, r3, #1 8004904: 60bb str r3, [r7, #8] 8004906: 68bb ldr r3, [r7, #8] temp = AFIO->EXTICR[position >> 2u]; 8004908: 4a48 ldr r2, [pc, #288] @ (8004a2c ) 800490a: 6a7b ldr r3, [r7, #36] @ 0x24 800490c: 089b lsrs r3, r3, #2 800490e: 3302 adds r3, #2 8004910: f852 3023 ldr.w r3, [r2, r3, lsl #2] 8004914: 60fb str r3, [r7, #12] CLEAR_BIT(temp, (0x0Fu) << (4u * (position & 0x03u))); 8004916: 6a7b ldr r3, [r7, #36] @ 0x24 8004918: f003 0303 and.w r3, r3, #3 800491c: 009b lsls r3, r3, #2 800491e: 220f movs r2, #15 8004920: fa02 f303 lsl.w r3, r2, r3 8004924: 43db mvns r3, r3 8004926: 68fa ldr r2, [r7, #12] 8004928: 4013 ands r3, r2 800492a: 60fb str r3, [r7, #12] SET_BIT(temp, (GPIO_GET_INDEX(GPIOx)) << (4u * (position & 0x03u))); 800492c: 687b ldr r3, [r7, #4] 800492e: 4a40 ldr r2, [pc, #256] @ (8004a30 ) 8004930: 4293 cmp r3, r2 8004932: d013 beq.n 800495c 8004934: 687b ldr r3, [r7, #4] 8004936: 4a3f ldr r2, [pc, #252] @ (8004a34 ) 8004938: 4293 cmp r3, r2 800493a: d00d beq.n 8004958 800493c: 687b ldr r3, [r7, #4] 800493e: 4a3e ldr r2, [pc, #248] @ (8004a38 ) 8004940: 4293 cmp r3, r2 8004942: d007 beq.n 8004954 8004944: 687b ldr r3, [r7, #4] 8004946: 4a3d ldr r2, [pc, #244] @ (8004a3c ) 8004948: 4293 cmp r3, r2 800494a: d101 bne.n 8004950 800494c: 2303 movs r3, #3 800494e: e006 b.n 800495e 8004950: 2304 movs r3, #4 8004952: e004 b.n 800495e 8004954: 2302 movs r3, #2 8004956: e002 b.n 800495e 8004958: 2301 movs r3, #1 800495a: e000 b.n 800495e 800495c: 2300 movs r3, #0 800495e: 6a7a ldr r2, [r7, #36] @ 0x24 8004960: f002 0203 and.w r2, r2, #3 8004964: 0092 lsls r2, r2, #2 8004966: 4093 lsls r3, r2 8004968: 68fa ldr r2, [r7, #12] 800496a: 4313 orrs r3, r2 800496c: 60fb str r3, [r7, #12] AFIO->EXTICR[position >> 2u] = temp; 800496e: 492f ldr r1, [pc, #188] @ (8004a2c ) 8004970: 6a7b ldr r3, [r7, #36] @ 0x24 8004972: 089b lsrs r3, r3, #2 8004974: 3302 adds r3, #2 8004976: 68fa ldr r2, [r7, #12] 8004978: f841 2023 str.w r2, [r1, r3, lsl #2] /* Enable or disable the rising trigger */ if ((GPIO_Init->Mode & RISING_EDGE) == RISING_EDGE) 800497c: 683b ldr r3, [r7, #0] 800497e: 685b ldr r3, [r3, #4] 8004980: f403 1380 and.w r3, r3, #1048576 @ 0x100000 8004984: 2b00 cmp r3, #0 8004986: d006 beq.n 8004996 { SET_BIT(EXTI->RTSR, iocurrent); 8004988: 4b2d ldr r3, [pc, #180] @ (8004a40 ) 800498a: 689a ldr r2, [r3, #8] 800498c: 492c ldr r1, [pc, #176] @ (8004a40 ) 800498e: 69bb ldr r3, [r7, #24] 8004990: 4313 orrs r3, r2 8004992: 608b str r3, [r1, #8] 8004994: e006 b.n 80049a4 } else { CLEAR_BIT(EXTI->RTSR, iocurrent); 8004996: 4b2a ldr r3, [pc, #168] @ (8004a40 ) 8004998: 689a ldr r2, [r3, #8] 800499a: 69bb ldr r3, [r7, #24] 800499c: 43db mvns r3, r3 800499e: 4928 ldr r1, [pc, #160] @ (8004a40 ) 80049a0: 4013 ands r3, r2 80049a2: 608b str r3, [r1, #8] } /* Enable or disable the falling trigger */ if ((GPIO_Init->Mode & FALLING_EDGE) == FALLING_EDGE) 80049a4: 683b ldr r3, [r7, #0] 80049a6: 685b ldr r3, [r3, #4] 80049a8: f403 1300 and.w r3, r3, #2097152 @ 0x200000 80049ac: 2b00 cmp r3, #0 80049ae: d006 beq.n 80049be { SET_BIT(EXTI->FTSR, iocurrent); 80049b0: 4b23 ldr r3, [pc, #140] @ (8004a40 ) 80049b2: 68da ldr r2, [r3, #12] 80049b4: 4922 ldr r1, [pc, #136] @ (8004a40 ) 80049b6: 69bb ldr r3, [r7, #24] 80049b8: 4313 orrs r3, r2 80049ba: 60cb str r3, [r1, #12] 80049bc: e006 b.n 80049cc } else { CLEAR_BIT(EXTI->FTSR, iocurrent); 80049be: 4b20 ldr r3, [pc, #128] @ (8004a40 ) 80049c0: 68da ldr r2, [r3, #12] 80049c2: 69bb ldr r3, [r7, #24] 80049c4: 43db mvns r3, r3 80049c6: 491e ldr r1, [pc, #120] @ (8004a40 ) 80049c8: 4013 ands r3, r2 80049ca: 60cb str r3, [r1, #12] } /* Configure the event mask */ if ((GPIO_Init->Mode & GPIO_MODE_EVT) == GPIO_MODE_EVT) 80049cc: 683b ldr r3, [r7, #0] 80049ce: 685b ldr r3, [r3, #4] 80049d0: f403 3300 and.w r3, r3, #131072 @ 0x20000 80049d4: 2b00 cmp r3, #0 80049d6: d006 beq.n 80049e6 { SET_BIT(EXTI->EMR, iocurrent); 80049d8: 4b19 ldr r3, [pc, #100] @ (8004a40 ) 80049da: 685a ldr r2, [r3, #4] 80049dc: 4918 ldr r1, [pc, #96] @ (8004a40 ) 80049de: 69bb ldr r3, [r7, #24] 80049e0: 4313 orrs r3, r2 80049e2: 604b str r3, [r1, #4] 80049e4: e006 b.n 80049f4 } else { CLEAR_BIT(EXTI->EMR, iocurrent); 80049e6: 4b16 ldr r3, [pc, #88] @ (8004a40 ) 80049e8: 685a ldr r2, [r3, #4] 80049ea: 69bb ldr r3, [r7, #24] 80049ec: 43db mvns r3, r3 80049ee: 4914 ldr r1, [pc, #80] @ (8004a40 ) 80049f0: 4013 ands r3, r2 80049f2: 604b str r3, [r1, #4] } /* Configure the interrupt mask */ if ((GPIO_Init->Mode & GPIO_MODE_IT) == GPIO_MODE_IT) 80049f4: 683b ldr r3, [r7, #0] 80049f6: 685b ldr r3, [r3, #4] 80049f8: f403 3380 and.w r3, r3, #65536 @ 0x10000 80049fc: 2b00 cmp r3, #0 80049fe: d021 beq.n 8004a44 { SET_BIT(EXTI->IMR, iocurrent); 8004a00: 4b0f ldr r3, [pc, #60] @ (8004a40 ) 8004a02: 681a ldr r2, [r3, #0] 8004a04: 490e ldr r1, [pc, #56] @ (8004a40 ) 8004a06: 69bb ldr r3, [r7, #24] 8004a08: 4313 orrs r3, r2 8004a0a: 600b str r3, [r1, #0] 8004a0c: e021 b.n 8004a52 8004a0e: bf00 nop 8004a10: 10320000 .word 0x10320000 8004a14: 10310000 .word 0x10310000 8004a18: 10220000 .word 0x10220000 8004a1c: 10210000 .word 0x10210000 8004a20: 10120000 .word 0x10120000 8004a24: 10110000 .word 0x10110000 8004a28: 40021000 .word 0x40021000 8004a2c: 40010000 .word 0x40010000 8004a30: 40010800 .word 0x40010800 8004a34: 40010c00 .word 0x40010c00 8004a38: 40011000 .word 0x40011000 8004a3c: 40011400 .word 0x40011400 8004a40: 40010400 .word 0x40010400 } else { CLEAR_BIT(EXTI->IMR, iocurrent); 8004a44: 4b0b ldr r3, [pc, #44] @ (8004a74 ) 8004a46: 681a ldr r2, [r3, #0] 8004a48: 69bb ldr r3, [r7, #24] 8004a4a: 43db mvns r3, r3 8004a4c: 4909 ldr r1, [pc, #36] @ (8004a74 ) 8004a4e: 4013 ands r3, r2 8004a50: 600b str r3, [r1, #0] } } } position++; 8004a52: 6a7b ldr r3, [r7, #36] @ 0x24 8004a54: 3301 adds r3, #1 8004a56: 627b str r3, [r7, #36] @ 0x24 while (((GPIO_Init->Pin) >> position) != 0x00u) 8004a58: 683b ldr r3, [r7, #0] 8004a5a: 681a ldr r2, [r3, #0] 8004a5c: 6a7b ldr r3, [r7, #36] @ 0x24 8004a5e: fa22 f303 lsr.w r3, r2, r3 8004a62: 2b00 cmp r3, #0 8004a64: f47f ae8e bne.w 8004784 } } 8004a68: bf00 nop 8004a6a: bf00 nop 8004a6c: 372c adds r7, #44 @ 0x2c 8004a6e: 46bd mov sp, r7 8004a70: bc80 pop {r7} 8004a72: 4770 bx lr 8004a74: 40010400 .word 0x40010400 08004a78 : * @param GPIO_Pin: specifies the port bit to read. * This parameter can be GPIO_PIN_x where x can be (0..15). * @retval The input port pin value. */ GPIO_PinState HAL_GPIO_ReadPin(GPIO_TypeDef *GPIOx, uint16_t GPIO_Pin) { 8004a78: b480 push {r7} 8004a7a: b085 sub sp, #20 8004a7c: af00 add r7, sp, #0 8004a7e: 6078 str r0, [r7, #4] 8004a80: 460b mov r3, r1 8004a82: 807b strh r3, [r7, #2] GPIO_PinState bitstatus; /* Check the parameters */ assert_param(IS_GPIO_PIN(GPIO_Pin)); if ((GPIOx->IDR & GPIO_Pin) != (uint32_t)GPIO_PIN_RESET) 8004a84: 687b ldr r3, [r7, #4] 8004a86: 689a ldr r2, [r3, #8] 8004a88: 887b ldrh r3, [r7, #2] 8004a8a: 4013 ands r3, r2 8004a8c: 2b00 cmp r3, #0 8004a8e: d002 beq.n 8004a96 { bitstatus = GPIO_PIN_SET; 8004a90: 2301 movs r3, #1 8004a92: 73fb strb r3, [r7, #15] 8004a94: e001 b.n 8004a9a } else { bitstatus = GPIO_PIN_RESET; 8004a96: 2300 movs r3, #0 8004a98: 73fb strb r3, [r7, #15] } return bitstatus; 8004a9a: 7bfb ldrb r3, [r7, #15] } 8004a9c: 4618 mov r0, r3 8004a9e: 3714 adds r7, #20 8004aa0: 46bd mov sp, r7 8004aa2: bc80 pop {r7} 8004aa4: 4770 bx lr 08004aa6 : * @arg GPIO_PIN_RESET: to clear the port pin * @arg GPIO_PIN_SET: to set the port pin * @retval None */ void HAL_GPIO_WritePin(GPIO_TypeDef *GPIOx, uint16_t GPIO_Pin, GPIO_PinState PinState) { 8004aa6: b480 push {r7} 8004aa8: b083 sub sp, #12 8004aaa: af00 add r7, sp, #0 8004aac: 6078 str r0, [r7, #4] 8004aae: 460b mov r3, r1 8004ab0: 807b strh r3, [r7, #2] 8004ab2: 4613 mov r3, r2 8004ab4: 707b strb r3, [r7, #1] /* Check the parameters */ assert_param(IS_GPIO_PIN(GPIO_Pin)); assert_param(IS_GPIO_PIN_ACTION(PinState)); if (PinState != GPIO_PIN_RESET) 8004ab6: 787b ldrb r3, [r7, #1] 8004ab8: 2b00 cmp r3, #0 8004aba: d003 beq.n 8004ac4 { GPIOx->BSRR = GPIO_Pin; 8004abc: 887a ldrh r2, [r7, #2] 8004abe: 687b ldr r3, [r7, #4] 8004ac0: 611a str r2, [r3, #16] } else { GPIOx->BSRR = (uint32_t)GPIO_Pin << 16u; } } 8004ac2: e003 b.n 8004acc GPIOx->BSRR = (uint32_t)GPIO_Pin << 16u; 8004ac4: 887b ldrh r3, [r7, #2] 8004ac6: 041a lsls r2, r3, #16 8004ac8: 687b ldr r3, [r7, #4] 8004aca: 611a str r2, [r3, #16] } 8004acc: bf00 nop 8004ace: 370c adds r7, #12 8004ad0: 46bd mov sp, r7 8004ad2: bc80 pop {r7} 8004ad4: 4770 bx lr ... 08004ad8 : * @brief This function handles EXTI interrupt request. * @param GPIO_Pin: Specifies the pins connected EXTI line * @retval None */ void HAL_GPIO_EXTI_IRQHandler(uint16_t GPIO_Pin) { 8004ad8: b580 push {r7, lr} 8004ada: b082 sub sp, #8 8004adc: af00 add r7, sp, #0 8004ade: 4603 mov r3, r0 8004ae0: 80fb strh r3, [r7, #6] /* EXTI line interrupt detected */ if (__HAL_GPIO_EXTI_GET_IT(GPIO_Pin) != 0x00u) 8004ae2: 4b08 ldr r3, [pc, #32] @ (8004b04 ) 8004ae4: 695a ldr r2, [r3, #20] 8004ae6: 88fb ldrh r3, [r7, #6] 8004ae8: 4013 ands r3, r2 8004aea: 2b00 cmp r3, #0 8004aec: d006 beq.n 8004afc { __HAL_GPIO_EXTI_CLEAR_IT(GPIO_Pin); 8004aee: 4a05 ldr r2, [pc, #20] @ (8004b04 ) 8004af0: 88fb ldrh r3, [r7, #6] 8004af2: 6153 str r3, [r2, #20] HAL_GPIO_EXTI_Callback(GPIO_Pin); 8004af4: 88fb ldrh r3, [r7, #6] 8004af6: 4618 mov r0, r3 8004af8: f7fd fc0e bl 8002318 } } 8004afc: bf00 nop 8004afe: 3708 adds r7, #8 8004b00: 46bd mov sp, r7 8004b02: bd80 pop {r7, pc} 8004b04: 40010400 .word 0x40010400 08004b08 : * @param hi2c Pointer to a I2C_HandleTypeDef structure that contains * the configuration information for the specified I2C. * @retval HAL status */ HAL_StatusTypeDef HAL_I2C_Init(I2C_HandleTypeDef *hi2c) { 8004b08: b580 push {r7, lr} 8004b0a: b084 sub sp, #16 8004b0c: af00 add r7, sp, #0 8004b0e: 6078 str r0, [r7, #4] uint32_t freqrange; uint32_t pclk1; /* Check the I2C handle allocation */ if (hi2c == NULL) 8004b10: 687b ldr r3, [r7, #4] 8004b12: 2b00 cmp r3, #0 8004b14: d101 bne.n 8004b1a { return HAL_ERROR; 8004b16: 2301 movs r3, #1 8004b18: e12b b.n 8004d72 assert_param(IS_I2C_DUAL_ADDRESS(hi2c->Init.DualAddressMode)); assert_param(IS_I2C_OWN_ADDRESS2(hi2c->Init.OwnAddress2)); assert_param(IS_I2C_GENERAL_CALL(hi2c->Init.GeneralCallMode)); assert_param(IS_I2C_NO_STRETCH(hi2c->Init.NoStretchMode)); if (hi2c->State == HAL_I2C_STATE_RESET) 8004b1a: 687b ldr r3, [r7, #4] 8004b1c: f893 303d ldrb.w r3, [r3, #61] @ 0x3d 8004b20: b2db uxtb r3, r3 8004b22: 2b00 cmp r3, #0 8004b24: d106 bne.n 8004b34 { /* Allocate lock resource and initialize it */ hi2c->Lock = HAL_UNLOCKED; 8004b26: 687b ldr r3, [r7, #4] 8004b28: 2200 movs r2, #0 8004b2a: f883 203c strb.w r2, [r3, #60] @ 0x3c /* Init the low level hardware : GPIO, CLOCK, NVIC */ hi2c->MspInitCallback(hi2c); #else /* Init the low level hardware : GPIO, CLOCK, NVIC */ HAL_I2C_MspInit(hi2c); 8004b2e: 6878 ldr r0, [r7, #4] 8004b30: f7fd fca8 bl 8002484 #endif /* USE_HAL_I2C_REGISTER_CALLBACKS */ } hi2c->State = HAL_I2C_STATE_BUSY; 8004b34: 687b ldr r3, [r7, #4] 8004b36: 2224 movs r2, #36 @ 0x24 8004b38: f883 203d strb.w r2, [r3, #61] @ 0x3d /* Disable the selected I2C peripheral */ __HAL_I2C_DISABLE(hi2c); 8004b3c: 687b ldr r3, [r7, #4] 8004b3e: 681b ldr r3, [r3, #0] 8004b40: 681a ldr r2, [r3, #0] 8004b42: 687b ldr r3, [r7, #4] 8004b44: 681b ldr r3, [r3, #0] 8004b46: f022 0201 bic.w r2, r2, #1 8004b4a: 601a str r2, [r3, #0] /*Reset I2C*/ hi2c->Instance->CR1 |= I2C_CR1_SWRST; 8004b4c: 687b ldr r3, [r7, #4] 8004b4e: 681b ldr r3, [r3, #0] 8004b50: 681a ldr r2, [r3, #0] 8004b52: 687b ldr r3, [r7, #4] 8004b54: 681b ldr r3, [r3, #0] 8004b56: f442 4200 orr.w r2, r2, #32768 @ 0x8000 8004b5a: 601a str r2, [r3, #0] hi2c->Instance->CR1 &= ~I2C_CR1_SWRST; 8004b5c: 687b ldr r3, [r7, #4] 8004b5e: 681b ldr r3, [r3, #0] 8004b60: 681a ldr r2, [r3, #0] 8004b62: 687b ldr r3, [r7, #4] 8004b64: 681b ldr r3, [r3, #0] 8004b66: f422 4200 bic.w r2, r2, #32768 @ 0x8000 8004b6a: 601a str r2, [r3, #0] /* Get PCLK1 frequency */ pclk1 = HAL_RCC_GetPCLK1Freq(); 8004b6c: f001 fbcc bl 8006308 8004b70: 60f8 str r0, [r7, #12] /* Check the minimum allowed PCLK1 frequency */ if (I2C_MIN_PCLK_FREQ(pclk1, hi2c->Init.ClockSpeed) == 1U) 8004b72: 687b ldr r3, [r7, #4] 8004b74: 685b ldr r3, [r3, #4] 8004b76: 4a81 ldr r2, [pc, #516] @ (8004d7c ) 8004b78: 4293 cmp r3, r2 8004b7a: d807 bhi.n 8004b8c 8004b7c: 68fb ldr r3, [r7, #12] 8004b7e: 4a80 ldr r2, [pc, #512] @ (8004d80 ) 8004b80: 4293 cmp r3, r2 8004b82: bf94 ite ls 8004b84: 2301 movls r3, #1 8004b86: 2300 movhi r3, #0 8004b88: b2db uxtb r3, r3 8004b8a: e006 b.n 8004b9a 8004b8c: 68fb ldr r3, [r7, #12] 8004b8e: 4a7d ldr r2, [pc, #500] @ (8004d84 ) 8004b90: 4293 cmp r3, r2 8004b92: bf94 ite ls 8004b94: 2301 movls r3, #1 8004b96: 2300 movhi r3, #0 8004b98: b2db uxtb r3, r3 8004b9a: 2b00 cmp r3, #0 8004b9c: d001 beq.n 8004ba2 { return HAL_ERROR; 8004b9e: 2301 movs r3, #1 8004ba0: e0e7 b.n 8004d72 } /* Calculate frequency range */ freqrange = I2C_FREQRANGE(pclk1); 8004ba2: 68fb ldr r3, [r7, #12] 8004ba4: 4a78 ldr r2, [pc, #480] @ (8004d88 ) 8004ba6: fba2 2303 umull r2, r3, r2, r3 8004baa: 0c9b lsrs r3, r3, #18 8004bac: 60bb str r3, [r7, #8] /*---------------------------- I2Cx CR2 Configuration ----------------------*/ /* Configure I2Cx: Frequency range */ MODIFY_REG(hi2c->Instance->CR2, I2C_CR2_FREQ, freqrange); 8004bae: 687b ldr r3, [r7, #4] 8004bb0: 681b ldr r3, [r3, #0] 8004bb2: 685b ldr r3, [r3, #4] 8004bb4: f023 013f bic.w r1, r3, #63 @ 0x3f 8004bb8: 687b ldr r3, [r7, #4] 8004bba: 681b ldr r3, [r3, #0] 8004bbc: 68ba ldr r2, [r7, #8] 8004bbe: 430a orrs r2, r1 8004bc0: 605a str r2, [r3, #4] /*---------------------------- I2Cx TRISE Configuration --------------------*/ /* Configure I2Cx: Rise Time */ MODIFY_REG(hi2c->Instance->TRISE, I2C_TRISE_TRISE, I2C_RISE_TIME(freqrange, hi2c->Init.ClockSpeed)); 8004bc2: 687b ldr r3, [r7, #4] 8004bc4: 681b ldr r3, [r3, #0] 8004bc6: 6a1b ldr r3, [r3, #32] 8004bc8: f023 013f bic.w r1, r3, #63 @ 0x3f 8004bcc: 687b ldr r3, [r7, #4] 8004bce: 685b ldr r3, [r3, #4] 8004bd0: 4a6a ldr r2, [pc, #424] @ (8004d7c ) 8004bd2: 4293 cmp r3, r2 8004bd4: d802 bhi.n 8004bdc 8004bd6: 68bb ldr r3, [r7, #8] 8004bd8: 3301 adds r3, #1 8004bda: e009 b.n 8004bf0 8004bdc: 68bb ldr r3, [r7, #8] 8004bde: f44f 7296 mov.w r2, #300 @ 0x12c 8004be2: fb02 f303 mul.w r3, r2, r3 8004be6: 4a69 ldr r2, [pc, #420] @ (8004d8c ) 8004be8: fba2 2303 umull r2, r3, r2, r3 8004bec: 099b lsrs r3, r3, #6 8004bee: 3301 adds r3, #1 8004bf0: 687a ldr r2, [r7, #4] 8004bf2: 6812 ldr r2, [r2, #0] 8004bf4: 430b orrs r3, r1 8004bf6: 6213 str r3, [r2, #32] /*---------------------------- I2Cx CCR Configuration ----------------------*/ /* Configure I2Cx: Speed */ MODIFY_REG(hi2c->Instance->CCR, (I2C_CCR_FS | I2C_CCR_DUTY | I2C_CCR_CCR), I2C_SPEED(pclk1, hi2c->Init.ClockSpeed, hi2c->Init.DutyCycle)); 8004bf8: 687b ldr r3, [r7, #4] 8004bfa: 681b ldr r3, [r3, #0] 8004bfc: 69db ldr r3, [r3, #28] 8004bfe: f423 424f bic.w r2, r3, #52992 @ 0xcf00 8004c02: f022 02ff bic.w r2, r2, #255 @ 0xff 8004c06: 687b ldr r3, [r7, #4] 8004c08: 685b ldr r3, [r3, #4] 8004c0a: 495c ldr r1, [pc, #368] @ (8004d7c ) 8004c0c: 428b cmp r3, r1 8004c0e: d819 bhi.n 8004c44 8004c10: 68fb ldr r3, [r7, #12] 8004c12: 1e59 subs r1, r3, #1 8004c14: 687b ldr r3, [r7, #4] 8004c16: 685b ldr r3, [r3, #4] 8004c18: 005b lsls r3, r3, #1 8004c1a: fbb1 f3f3 udiv r3, r1, r3 8004c1e: 1c59 adds r1, r3, #1 8004c20: f640 73fc movw r3, #4092 @ 0xffc 8004c24: 400b ands r3, r1 8004c26: 2b00 cmp r3, #0 8004c28: d00a beq.n 8004c40 8004c2a: 68fb ldr r3, [r7, #12] 8004c2c: 1e59 subs r1, r3, #1 8004c2e: 687b ldr r3, [r7, #4] 8004c30: 685b ldr r3, [r3, #4] 8004c32: 005b lsls r3, r3, #1 8004c34: fbb1 f3f3 udiv r3, r1, r3 8004c38: 3301 adds r3, #1 8004c3a: f3c3 030b ubfx r3, r3, #0, #12 8004c3e: e051 b.n 8004ce4 8004c40: 2304 movs r3, #4 8004c42: e04f b.n 8004ce4 8004c44: 687b ldr r3, [r7, #4] 8004c46: 689b ldr r3, [r3, #8] 8004c48: 2b00 cmp r3, #0 8004c4a: d111 bne.n 8004c70 8004c4c: 68fb ldr r3, [r7, #12] 8004c4e: 1e58 subs r0, r3, #1 8004c50: 687b ldr r3, [r7, #4] 8004c52: 6859 ldr r1, [r3, #4] 8004c54: 460b mov r3, r1 8004c56: 005b lsls r3, r3, #1 8004c58: 440b add r3, r1 8004c5a: fbb0 f3f3 udiv r3, r0, r3 8004c5e: 3301 adds r3, #1 8004c60: f3c3 030b ubfx r3, r3, #0, #12 8004c64: 2b00 cmp r3, #0 8004c66: bf0c ite eq 8004c68: 2301 moveq r3, #1 8004c6a: 2300 movne r3, #0 8004c6c: b2db uxtb r3, r3 8004c6e: e012 b.n 8004c96 8004c70: 68fb ldr r3, [r7, #12] 8004c72: 1e58 subs r0, r3, #1 8004c74: 687b ldr r3, [r7, #4] 8004c76: 6859 ldr r1, [r3, #4] 8004c78: 460b mov r3, r1 8004c7a: 009b lsls r3, r3, #2 8004c7c: 440b add r3, r1 8004c7e: 0099 lsls r1, r3, #2 8004c80: 440b add r3, r1 8004c82: fbb0 f3f3 udiv r3, r0, r3 8004c86: 3301 adds r3, #1 8004c88: f3c3 030b ubfx r3, r3, #0, #12 8004c8c: 2b00 cmp r3, #0 8004c8e: bf0c ite eq 8004c90: 2301 moveq r3, #1 8004c92: 2300 movne r3, #0 8004c94: b2db uxtb r3, r3 8004c96: 2b00 cmp r3, #0 8004c98: d001 beq.n 8004c9e 8004c9a: 2301 movs r3, #1 8004c9c: e022 b.n 8004ce4 8004c9e: 687b ldr r3, [r7, #4] 8004ca0: 689b ldr r3, [r3, #8] 8004ca2: 2b00 cmp r3, #0 8004ca4: d10e bne.n 8004cc4 8004ca6: 68fb ldr r3, [r7, #12] 8004ca8: 1e58 subs r0, r3, #1 8004caa: 687b ldr r3, [r7, #4] 8004cac: 6859 ldr r1, [r3, #4] 8004cae: 460b mov r3, r1 8004cb0: 005b lsls r3, r3, #1 8004cb2: 440b add r3, r1 8004cb4: fbb0 f3f3 udiv r3, r0, r3 8004cb8: 3301 adds r3, #1 8004cba: f3c3 030b ubfx r3, r3, #0, #12 8004cbe: f443 4300 orr.w r3, r3, #32768 @ 0x8000 8004cc2: e00f b.n 8004ce4 8004cc4: 68fb ldr r3, [r7, #12] 8004cc6: 1e58 subs r0, r3, #1 8004cc8: 687b ldr r3, [r7, #4] 8004cca: 6859 ldr r1, [r3, #4] 8004ccc: 460b mov r3, r1 8004cce: 009b lsls r3, r3, #2 8004cd0: 440b add r3, r1 8004cd2: 0099 lsls r1, r3, #2 8004cd4: 440b add r3, r1 8004cd6: fbb0 f3f3 udiv r3, r0, r3 8004cda: 3301 adds r3, #1 8004cdc: f3c3 030b ubfx r3, r3, #0, #12 8004ce0: f443 4340 orr.w r3, r3, #49152 @ 0xc000 8004ce4: 6879 ldr r1, [r7, #4] 8004ce6: 6809 ldr r1, [r1, #0] 8004ce8: 4313 orrs r3, r2 8004cea: 61cb str r3, [r1, #28] /*---------------------------- I2Cx CR1 Configuration ----------------------*/ /* Configure I2Cx: Generalcall and NoStretch mode */ MODIFY_REG(hi2c->Instance->CR1, (I2C_CR1_ENGC | I2C_CR1_NOSTRETCH), (hi2c->Init.GeneralCallMode | hi2c->Init.NoStretchMode)); 8004cec: 687b ldr r3, [r7, #4] 8004cee: 681b ldr r3, [r3, #0] 8004cf0: 681b ldr r3, [r3, #0] 8004cf2: f023 01c0 bic.w r1, r3, #192 @ 0xc0 8004cf6: 687b ldr r3, [r7, #4] 8004cf8: 69da ldr r2, [r3, #28] 8004cfa: 687b ldr r3, [r7, #4] 8004cfc: 6a1b ldr r3, [r3, #32] 8004cfe: 431a orrs r2, r3 8004d00: 687b ldr r3, [r7, #4] 8004d02: 681b ldr r3, [r3, #0] 8004d04: 430a orrs r2, r1 8004d06: 601a str r2, [r3, #0] /*---------------------------- I2Cx OAR1 Configuration ---------------------*/ /* Configure I2Cx: Own Address1 and addressing mode */ MODIFY_REG(hi2c->Instance->OAR1, (I2C_OAR1_ADDMODE | I2C_OAR1_ADD8_9 | I2C_OAR1_ADD1_7 | I2C_OAR1_ADD0), (hi2c->Init.AddressingMode | hi2c->Init.OwnAddress1)); 8004d08: 687b ldr r3, [r7, #4] 8004d0a: 681b ldr r3, [r3, #0] 8004d0c: 689b ldr r3, [r3, #8] 8004d0e: f423 4303 bic.w r3, r3, #33536 @ 0x8300 8004d12: f023 03ff bic.w r3, r3, #255 @ 0xff 8004d16: 687a ldr r2, [r7, #4] 8004d18: 6911 ldr r1, [r2, #16] 8004d1a: 687a ldr r2, [r7, #4] 8004d1c: 68d2 ldr r2, [r2, #12] 8004d1e: 4311 orrs r1, r2 8004d20: 687a ldr r2, [r7, #4] 8004d22: 6812 ldr r2, [r2, #0] 8004d24: 430b orrs r3, r1 8004d26: 6093 str r3, [r2, #8] /*---------------------------- I2Cx OAR2 Configuration ---------------------*/ /* Configure I2Cx: Dual mode and Own Address2 */ MODIFY_REG(hi2c->Instance->OAR2, (I2C_OAR2_ENDUAL | I2C_OAR2_ADD2), (hi2c->Init.DualAddressMode | hi2c->Init.OwnAddress2)); 8004d28: 687b ldr r3, [r7, #4] 8004d2a: 681b ldr r3, [r3, #0] 8004d2c: 68db ldr r3, [r3, #12] 8004d2e: f023 01ff bic.w r1, r3, #255 @ 0xff 8004d32: 687b ldr r3, [r7, #4] 8004d34: 695a ldr r2, [r3, #20] 8004d36: 687b ldr r3, [r7, #4] 8004d38: 699b ldr r3, [r3, #24] 8004d3a: 431a orrs r2, r3 8004d3c: 687b ldr r3, [r7, #4] 8004d3e: 681b ldr r3, [r3, #0] 8004d40: 430a orrs r2, r1 8004d42: 60da str r2, [r3, #12] /* Enable the selected I2C peripheral */ __HAL_I2C_ENABLE(hi2c); 8004d44: 687b ldr r3, [r7, #4] 8004d46: 681b ldr r3, [r3, #0] 8004d48: 681a ldr r2, [r3, #0] 8004d4a: 687b ldr r3, [r7, #4] 8004d4c: 681b ldr r3, [r3, #0] 8004d4e: f042 0201 orr.w r2, r2, #1 8004d52: 601a str r2, [r3, #0] hi2c->ErrorCode = HAL_I2C_ERROR_NONE; 8004d54: 687b ldr r3, [r7, #4] 8004d56: 2200 movs r2, #0 8004d58: 641a str r2, [r3, #64] @ 0x40 hi2c->State = HAL_I2C_STATE_READY; 8004d5a: 687b ldr r3, [r7, #4] 8004d5c: 2220 movs r2, #32 8004d5e: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->PreviousState = I2C_STATE_NONE; 8004d62: 687b ldr r3, [r7, #4] 8004d64: 2200 movs r2, #0 8004d66: 631a str r2, [r3, #48] @ 0x30 hi2c->Mode = HAL_I2C_MODE_NONE; 8004d68: 687b ldr r3, [r7, #4] 8004d6a: 2200 movs r2, #0 8004d6c: f883 203e strb.w r2, [r3, #62] @ 0x3e return HAL_OK; 8004d70: 2300 movs r3, #0 } 8004d72: 4618 mov r0, r3 8004d74: 3710 adds r7, #16 8004d76: 46bd mov sp, r7 8004d78: bd80 pop {r7, pc} 8004d7a: bf00 nop 8004d7c: 000186a0 .word 0x000186a0 8004d80: 001e847f .word 0x001e847f 8004d84: 003d08ff .word 0x003d08ff 8004d88: 431bde83 .word 0x431bde83 8004d8c: 10624dd3 .word 0x10624dd3 08004d90 : * @param Size Amount of data to be sent * @param Timeout Timeout duration * @retval HAL status */ HAL_StatusTypeDef HAL_I2C_Master_Transmit(I2C_HandleTypeDef *hi2c, uint16_t DevAddress, uint8_t *pData, uint16_t Size, uint32_t Timeout) { 8004d90: b580 push {r7, lr} 8004d92: b088 sub sp, #32 8004d94: af02 add r7, sp, #8 8004d96: 60f8 str r0, [r7, #12] 8004d98: 607a str r2, [r7, #4] 8004d9a: 461a mov r2, r3 8004d9c: 460b mov r3, r1 8004d9e: 817b strh r3, [r7, #10] 8004da0: 4613 mov r3, r2 8004da2: 813b strh r3, [r7, #8] /* Init tickstart for timeout management*/ uint32_t tickstart = HAL_GetTick(); 8004da4: f7fe fa96 bl 80032d4 8004da8: 6178 str r0, [r7, #20] if (hi2c->State == HAL_I2C_STATE_READY) 8004daa: 68fb ldr r3, [r7, #12] 8004dac: f893 303d ldrb.w r3, [r3, #61] @ 0x3d 8004db0: b2db uxtb r3, r3 8004db2: 2b20 cmp r3, #32 8004db4: f040 80e0 bne.w 8004f78 { /* Wait until BUSY flag is reset */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_BUSY, SET, I2C_TIMEOUT_BUSY_FLAG, tickstart) != HAL_OK) 8004db8: 697b ldr r3, [r7, #20] 8004dba: 9300 str r3, [sp, #0] 8004dbc: 2319 movs r3, #25 8004dbe: 2201 movs r2, #1 8004dc0: 4970 ldr r1, [pc, #448] @ (8004f84 ) 8004dc2: 68f8 ldr r0, [r7, #12] 8004dc4: f000 fc9e bl 8005704 8004dc8: 4603 mov r3, r0 8004dca: 2b00 cmp r3, #0 8004dcc: d001 beq.n 8004dd2 { return HAL_BUSY; 8004dce: 2302 movs r3, #2 8004dd0: e0d3 b.n 8004f7a } /* Process Locked */ __HAL_LOCK(hi2c); 8004dd2: 68fb ldr r3, [r7, #12] 8004dd4: f893 303c ldrb.w r3, [r3, #60] @ 0x3c 8004dd8: 2b01 cmp r3, #1 8004dda: d101 bne.n 8004de0 8004ddc: 2302 movs r3, #2 8004dde: e0cc b.n 8004f7a 8004de0: 68fb ldr r3, [r7, #12] 8004de2: 2201 movs r2, #1 8004de4: f883 203c strb.w r2, [r3, #60] @ 0x3c /* Check if the I2C is already enabled */ if ((hi2c->Instance->CR1 & I2C_CR1_PE) != I2C_CR1_PE) 8004de8: 68fb ldr r3, [r7, #12] 8004dea: 681b ldr r3, [r3, #0] 8004dec: 681b ldr r3, [r3, #0] 8004dee: f003 0301 and.w r3, r3, #1 8004df2: 2b01 cmp r3, #1 8004df4: d007 beq.n 8004e06 { /* Enable I2C peripheral */ __HAL_I2C_ENABLE(hi2c); 8004df6: 68fb ldr r3, [r7, #12] 8004df8: 681b ldr r3, [r3, #0] 8004dfa: 681a ldr r2, [r3, #0] 8004dfc: 68fb ldr r3, [r7, #12] 8004dfe: 681b ldr r3, [r3, #0] 8004e00: f042 0201 orr.w r2, r2, #1 8004e04: 601a str r2, [r3, #0] } /* Disable Pos */ CLEAR_BIT(hi2c->Instance->CR1, I2C_CR1_POS); 8004e06: 68fb ldr r3, [r7, #12] 8004e08: 681b ldr r3, [r3, #0] 8004e0a: 681a ldr r2, [r3, #0] 8004e0c: 68fb ldr r3, [r7, #12] 8004e0e: 681b ldr r3, [r3, #0] 8004e10: f422 6200 bic.w r2, r2, #2048 @ 0x800 8004e14: 601a str r2, [r3, #0] hi2c->State = HAL_I2C_STATE_BUSY_TX; 8004e16: 68fb ldr r3, [r7, #12] 8004e18: 2221 movs r2, #33 @ 0x21 8004e1a: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_MASTER; 8004e1e: 68fb ldr r3, [r7, #12] 8004e20: 2210 movs r2, #16 8004e22: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode = HAL_I2C_ERROR_NONE; 8004e26: 68fb ldr r3, [r7, #12] 8004e28: 2200 movs r2, #0 8004e2a: 641a str r2, [r3, #64] @ 0x40 /* Prepare transfer parameters */ hi2c->pBuffPtr = pData; 8004e2c: 68fb ldr r3, [r7, #12] 8004e2e: 687a ldr r2, [r7, #4] 8004e30: 625a str r2, [r3, #36] @ 0x24 hi2c->XferCount = Size; 8004e32: 68fb ldr r3, [r7, #12] 8004e34: 893a ldrh r2, [r7, #8] 8004e36: 855a strh r2, [r3, #42] @ 0x2a hi2c->XferSize = hi2c->XferCount; 8004e38: 68fb ldr r3, [r7, #12] 8004e3a: 8d5b ldrh r3, [r3, #42] @ 0x2a 8004e3c: b29a uxth r2, r3 8004e3e: 68fb ldr r3, [r7, #12] 8004e40: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferOptions = I2C_NO_OPTION_FRAME; 8004e42: 68fb ldr r3, [r7, #12] 8004e44: 4a50 ldr r2, [pc, #320] @ (8004f88 ) 8004e46: 62da str r2, [r3, #44] @ 0x2c /* Send Slave Address */ if (I2C_MasterRequestWrite(hi2c, DevAddress, Timeout, tickstart) != HAL_OK) 8004e48: 8979 ldrh r1, [r7, #10] 8004e4a: 697b ldr r3, [r7, #20] 8004e4c: 6a3a ldr r2, [r7, #32] 8004e4e: 68f8 ldr r0, [r7, #12] 8004e50: f000 fb08 bl 8005464 8004e54: 4603 mov r3, r0 8004e56: 2b00 cmp r3, #0 8004e58: d001 beq.n 8004e5e { return HAL_ERROR; 8004e5a: 2301 movs r3, #1 8004e5c: e08d b.n 8004f7a } /* Clear ADDR flag */ __HAL_I2C_CLEAR_ADDRFLAG(hi2c); 8004e5e: 2300 movs r3, #0 8004e60: 613b str r3, [r7, #16] 8004e62: 68fb ldr r3, [r7, #12] 8004e64: 681b ldr r3, [r3, #0] 8004e66: 695b ldr r3, [r3, #20] 8004e68: 613b str r3, [r7, #16] 8004e6a: 68fb ldr r3, [r7, #12] 8004e6c: 681b ldr r3, [r3, #0] 8004e6e: 699b ldr r3, [r3, #24] 8004e70: 613b str r3, [r7, #16] 8004e72: 693b ldr r3, [r7, #16] while (hi2c->XferSize > 0U) 8004e74: e066 b.n 8004f44 { /* Wait until TXE flag is set */ if (I2C_WaitOnTXEFlagUntilTimeout(hi2c, Timeout, tickstart) != HAL_OK) 8004e76: 697a ldr r2, [r7, #20] 8004e78: 6a39 ldr r1, [r7, #32] 8004e7a: 68f8 ldr r0, [r7, #12] 8004e7c: f000 fd5c bl 8005938 8004e80: 4603 mov r3, r0 8004e82: 2b00 cmp r3, #0 8004e84: d00d beq.n 8004ea2 { if (hi2c->ErrorCode == HAL_I2C_ERROR_AF) 8004e86: 68fb ldr r3, [r7, #12] 8004e88: 6c1b ldr r3, [r3, #64] @ 0x40 8004e8a: 2b04 cmp r3, #4 8004e8c: d107 bne.n 8004e9e { /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 8004e8e: 68fb ldr r3, [r7, #12] 8004e90: 681b ldr r3, [r3, #0] 8004e92: 681a ldr r2, [r3, #0] 8004e94: 68fb ldr r3, [r7, #12] 8004e96: 681b ldr r3, [r3, #0] 8004e98: f442 7200 orr.w r2, r2, #512 @ 0x200 8004e9c: 601a str r2, [r3, #0] } return HAL_ERROR; 8004e9e: 2301 movs r3, #1 8004ea0: e06b b.n 8004f7a } /* Write data to DR */ hi2c->Instance->DR = *hi2c->pBuffPtr; 8004ea2: 68fb ldr r3, [r7, #12] 8004ea4: 6a5b ldr r3, [r3, #36] @ 0x24 8004ea6: 781a ldrb r2, [r3, #0] 8004ea8: 68fb ldr r3, [r7, #12] 8004eaa: 681b ldr r3, [r3, #0] 8004eac: 611a str r2, [r3, #16] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8004eae: 68fb ldr r3, [r7, #12] 8004eb0: 6a5b ldr r3, [r3, #36] @ 0x24 8004eb2: 1c5a adds r2, r3, #1 8004eb4: 68fb ldr r3, [r7, #12] 8004eb6: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferCount--; 8004eb8: 68fb ldr r3, [r7, #12] 8004eba: 8d5b ldrh r3, [r3, #42] @ 0x2a 8004ebc: b29b uxth r3, r3 8004ebe: 3b01 subs r3, #1 8004ec0: b29a uxth r2, r3 8004ec2: 68fb ldr r3, [r7, #12] 8004ec4: 855a strh r2, [r3, #42] @ 0x2a hi2c->XferSize--; 8004ec6: 68fb ldr r3, [r7, #12] 8004ec8: 8d1b ldrh r3, [r3, #40] @ 0x28 8004eca: 3b01 subs r3, #1 8004ecc: b29a uxth r2, r3 8004ece: 68fb ldr r3, [r7, #12] 8004ed0: 851a strh r2, [r3, #40] @ 0x28 if ((__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_BTF) == SET) && (hi2c->XferSize != 0U)) 8004ed2: 68fb ldr r3, [r7, #12] 8004ed4: 681b ldr r3, [r3, #0] 8004ed6: 695b ldr r3, [r3, #20] 8004ed8: f003 0304 and.w r3, r3, #4 8004edc: 2b04 cmp r3, #4 8004ede: d11b bne.n 8004f18 8004ee0: 68fb ldr r3, [r7, #12] 8004ee2: 8d1b ldrh r3, [r3, #40] @ 0x28 8004ee4: 2b00 cmp r3, #0 8004ee6: d017 beq.n 8004f18 { /* Write data to DR */ hi2c->Instance->DR = *hi2c->pBuffPtr; 8004ee8: 68fb ldr r3, [r7, #12] 8004eea: 6a5b ldr r3, [r3, #36] @ 0x24 8004eec: 781a ldrb r2, [r3, #0] 8004eee: 68fb ldr r3, [r7, #12] 8004ef0: 681b ldr r3, [r3, #0] 8004ef2: 611a str r2, [r3, #16] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8004ef4: 68fb ldr r3, [r7, #12] 8004ef6: 6a5b ldr r3, [r3, #36] @ 0x24 8004ef8: 1c5a adds r2, r3, #1 8004efa: 68fb ldr r3, [r7, #12] 8004efc: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferCount--; 8004efe: 68fb ldr r3, [r7, #12] 8004f00: 8d5b ldrh r3, [r3, #42] @ 0x2a 8004f02: b29b uxth r3, r3 8004f04: 3b01 subs r3, #1 8004f06: b29a uxth r2, r3 8004f08: 68fb ldr r3, [r7, #12] 8004f0a: 855a strh r2, [r3, #42] @ 0x2a hi2c->XferSize--; 8004f0c: 68fb ldr r3, [r7, #12] 8004f0e: 8d1b ldrh r3, [r3, #40] @ 0x28 8004f10: 3b01 subs r3, #1 8004f12: b29a uxth r2, r3 8004f14: 68fb ldr r3, [r7, #12] 8004f16: 851a strh r2, [r3, #40] @ 0x28 } /* Wait until BTF flag is set */ if (I2C_WaitOnBTFFlagUntilTimeout(hi2c, Timeout, tickstart) != HAL_OK) 8004f18: 697a ldr r2, [r7, #20] 8004f1a: 6a39 ldr r1, [r7, #32] 8004f1c: 68f8 ldr r0, [r7, #12] 8004f1e: f000 fd53 bl 80059c8 8004f22: 4603 mov r3, r0 8004f24: 2b00 cmp r3, #0 8004f26: d00d beq.n 8004f44 { if (hi2c->ErrorCode == HAL_I2C_ERROR_AF) 8004f28: 68fb ldr r3, [r7, #12] 8004f2a: 6c1b ldr r3, [r3, #64] @ 0x40 8004f2c: 2b04 cmp r3, #4 8004f2e: d107 bne.n 8004f40 { /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 8004f30: 68fb ldr r3, [r7, #12] 8004f32: 681b ldr r3, [r3, #0] 8004f34: 681a ldr r2, [r3, #0] 8004f36: 68fb ldr r3, [r7, #12] 8004f38: 681b ldr r3, [r3, #0] 8004f3a: f442 7200 orr.w r2, r2, #512 @ 0x200 8004f3e: 601a str r2, [r3, #0] } return HAL_ERROR; 8004f40: 2301 movs r3, #1 8004f42: e01a b.n 8004f7a while (hi2c->XferSize > 0U) 8004f44: 68fb ldr r3, [r7, #12] 8004f46: 8d1b ldrh r3, [r3, #40] @ 0x28 8004f48: 2b00 cmp r3, #0 8004f4a: d194 bne.n 8004e76 } } /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 8004f4c: 68fb ldr r3, [r7, #12] 8004f4e: 681b ldr r3, [r3, #0] 8004f50: 681a ldr r2, [r3, #0] 8004f52: 68fb ldr r3, [r7, #12] 8004f54: 681b ldr r3, [r3, #0] 8004f56: f442 7200 orr.w r2, r2, #512 @ 0x200 8004f5a: 601a str r2, [r3, #0] hi2c->State = HAL_I2C_STATE_READY; 8004f5c: 68fb ldr r3, [r7, #12] 8004f5e: 2220 movs r2, #32 8004f60: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8004f64: 68fb ldr r3, [r7, #12] 8004f66: 2200 movs r2, #0 8004f68: f883 203e strb.w r2, [r3, #62] @ 0x3e /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8004f6c: 68fb ldr r3, [r7, #12] 8004f6e: 2200 movs r2, #0 8004f70: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_OK; 8004f74: 2300 movs r3, #0 8004f76: e000 b.n 8004f7a } else { return HAL_BUSY; 8004f78: 2302 movs r3, #2 } } 8004f7a: 4618 mov r0, r3 8004f7c: 3718 adds r7, #24 8004f7e: 46bd mov sp, r7 8004f80: bd80 pop {r7, pc} 8004f82: bf00 nop 8004f84: 00100002 .word 0x00100002 8004f88: ffff0000 .word 0xffff0000 08004f8c : * @param Size Amount of data to be sent * @param Timeout Timeout duration * @retval HAL status */ HAL_StatusTypeDef HAL_I2C_Master_Receive(I2C_HandleTypeDef *hi2c, uint16_t DevAddress, uint8_t *pData, uint16_t Size, uint32_t Timeout) { 8004f8c: b580 push {r7, lr} 8004f8e: b08c sub sp, #48 @ 0x30 8004f90: af02 add r7, sp, #8 8004f92: 60f8 str r0, [r7, #12] 8004f94: 607a str r2, [r7, #4] 8004f96: 461a mov r2, r3 8004f98: 460b mov r3, r1 8004f9a: 817b strh r3, [r7, #10] 8004f9c: 4613 mov r3, r2 8004f9e: 813b strh r3, [r7, #8] __IO uint32_t count = 0U; 8004fa0: 2300 movs r3, #0 8004fa2: 623b str r3, [r7, #32] /* Init tickstart for timeout management*/ uint32_t tickstart = HAL_GetTick(); 8004fa4: f7fe f996 bl 80032d4 8004fa8: 6278 str r0, [r7, #36] @ 0x24 if (hi2c->State == HAL_I2C_STATE_READY) 8004faa: 68fb ldr r3, [r7, #12] 8004fac: f893 303d ldrb.w r3, [r3, #61] @ 0x3d 8004fb0: b2db uxtb r3, r3 8004fb2: 2b20 cmp r3, #32 8004fb4: f040 824b bne.w 800544e { /* Wait until BUSY flag is reset */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_BUSY, SET, I2C_TIMEOUT_BUSY_FLAG, tickstart) != HAL_OK) 8004fb8: 6a7b ldr r3, [r7, #36] @ 0x24 8004fba: 9300 str r3, [sp, #0] 8004fbc: 2319 movs r3, #25 8004fbe: 2201 movs r2, #1 8004fc0: 497f ldr r1, [pc, #508] @ (80051c0 ) 8004fc2: 68f8 ldr r0, [r7, #12] 8004fc4: f000 fb9e bl 8005704 8004fc8: 4603 mov r3, r0 8004fca: 2b00 cmp r3, #0 8004fcc: d001 beq.n 8004fd2 { return HAL_BUSY; 8004fce: 2302 movs r3, #2 8004fd0: e23e b.n 8005450 } /* Process Locked */ __HAL_LOCK(hi2c); 8004fd2: 68fb ldr r3, [r7, #12] 8004fd4: f893 303c ldrb.w r3, [r3, #60] @ 0x3c 8004fd8: 2b01 cmp r3, #1 8004fda: d101 bne.n 8004fe0 8004fdc: 2302 movs r3, #2 8004fde: e237 b.n 8005450 8004fe0: 68fb ldr r3, [r7, #12] 8004fe2: 2201 movs r2, #1 8004fe4: f883 203c strb.w r2, [r3, #60] @ 0x3c /* Check if the I2C is already enabled */ if ((hi2c->Instance->CR1 & I2C_CR1_PE) != I2C_CR1_PE) 8004fe8: 68fb ldr r3, [r7, #12] 8004fea: 681b ldr r3, [r3, #0] 8004fec: 681b ldr r3, [r3, #0] 8004fee: f003 0301 and.w r3, r3, #1 8004ff2: 2b01 cmp r3, #1 8004ff4: d007 beq.n 8005006 { /* Enable I2C peripheral */ __HAL_I2C_ENABLE(hi2c); 8004ff6: 68fb ldr r3, [r7, #12] 8004ff8: 681b ldr r3, [r3, #0] 8004ffa: 681a ldr r2, [r3, #0] 8004ffc: 68fb ldr r3, [r7, #12] 8004ffe: 681b ldr r3, [r3, #0] 8005000: f042 0201 orr.w r2, r2, #1 8005004: 601a str r2, [r3, #0] } /* Disable Pos */ CLEAR_BIT(hi2c->Instance->CR1, I2C_CR1_POS); 8005006: 68fb ldr r3, [r7, #12] 8005008: 681b ldr r3, [r3, #0] 800500a: 681a ldr r2, [r3, #0] 800500c: 68fb ldr r3, [r7, #12] 800500e: 681b ldr r3, [r3, #0] 8005010: f422 6200 bic.w r2, r2, #2048 @ 0x800 8005014: 601a str r2, [r3, #0] hi2c->State = HAL_I2C_STATE_BUSY_RX; 8005016: 68fb ldr r3, [r7, #12] 8005018: 2222 movs r2, #34 @ 0x22 800501a: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_MASTER; 800501e: 68fb ldr r3, [r7, #12] 8005020: 2210 movs r2, #16 8005022: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode = HAL_I2C_ERROR_NONE; 8005026: 68fb ldr r3, [r7, #12] 8005028: 2200 movs r2, #0 800502a: 641a str r2, [r3, #64] @ 0x40 /* Prepare transfer parameters */ hi2c->pBuffPtr = pData; 800502c: 68fb ldr r3, [r7, #12] 800502e: 687a ldr r2, [r7, #4] 8005030: 625a str r2, [r3, #36] @ 0x24 hi2c->XferCount = Size; 8005032: 68fb ldr r3, [r7, #12] 8005034: 893a ldrh r2, [r7, #8] 8005036: 855a strh r2, [r3, #42] @ 0x2a hi2c->XferSize = hi2c->XferCount; 8005038: 68fb ldr r3, [r7, #12] 800503a: 8d5b ldrh r3, [r3, #42] @ 0x2a 800503c: b29a uxth r2, r3 800503e: 68fb ldr r3, [r7, #12] 8005040: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferOptions = I2C_NO_OPTION_FRAME; 8005042: 68fb ldr r3, [r7, #12] 8005044: 4a5f ldr r2, [pc, #380] @ (80051c4 ) 8005046: 62da str r2, [r3, #44] @ 0x2c /* Send Slave Address */ if (I2C_MasterRequestRead(hi2c, DevAddress, Timeout, tickstart) != HAL_OK) 8005048: 8979 ldrh r1, [r7, #10] 800504a: 6a7b ldr r3, [r7, #36] @ 0x24 800504c: 6b3a ldr r2, [r7, #48] @ 0x30 800504e: 68f8 ldr r0, [r7, #12] 8005050: f000 fa8a bl 8005568 8005054: 4603 mov r3, r0 8005056: 2b00 cmp r3, #0 8005058: d001 beq.n 800505e { return HAL_ERROR; 800505a: 2301 movs r3, #1 800505c: e1f8 b.n 8005450 } if (hi2c->XferSize == 0U) 800505e: 68fb ldr r3, [r7, #12] 8005060: 8d1b ldrh r3, [r3, #40] @ 0x28 8005062: 2b00 cmp r3, #0 8005064: d113 bne.n 800508e { /* Clear ADDR flag */ __HAL_I2C_CLEAR_ADDRFLAG(hi2c); 8005066: 2300 movs r3, #0 8005068: 61fb str r3, [r7, #28] 800506a: 68fb ldr r3, [r7, #12] 800506c: 681b ldr r3, [r3, #0] 800506e: 695b ldr r3, [r3, #20] 8005070: 61fb str r3, [r7, #28] 8005072: 68fb ldr r3, [r7, #12] 8005074: 681b ldr r3, [r3, #0] 8005076: 699b ldr r3, [r3, #24] 8005078: 61fb str r3, [r7, #28] 800507a: 69fb ldr r3, [r7, #28] /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 800507c: 68fb ldr r3, [r7, #12] 800507e: 681b ldr r3, [r3, #0] 8005080: 681a ldr r2, [r3, #0] 8005082: 68fb ldr r3, [r7, #12] 8005084: 681b ldr r3, [r3, #0] 8005086: f442 7200 orr.w r2, r2, #512 @ 0x200 800508a: 601a str r2, [r3, #0] 800508c: e1cc b.n 8005428 } else if (hi2c->XferSize == 1U) 800508e: 68fb ldr r3, [r7, #12] 8005090: 8d1b ldrh r3, [r3, #40] @ 0x28 8005092: 2b01 cmp r3, #1 8005094: d11e bne.n 80050d4 { /* Disable Acknowledge */ CLEAR_BIT(hi2c->Instance->CR1, I2C_CR1_ACK); 8005096: 68fb ldr r3, [r7, #12] 8005098: 681b ldr r3, [r3, #0] 800509a: 681a ldr r2, [r3, #0] 800509c: 68fb ldr r3, [r7, #12] 800509e: 681b ldr r3, [r3, #0] 80050a0: f422 6280 bic.w r2, r2, #1024 @ 0x400 80050a4: 601a str r2, [r3, #0] __ASM volatile ("cpsid i" : : : "memory"); 80050a6: b672 cpsid i } 80050a8: bf00 nop /* Disable all active IRQs around ADDR clearing and STOP programming because the EV6_3 software sequence must complete before the current byte end of transfer */ __disable_irq(); /* Clear ADDR flag */ __HAL_I2C_CLEAR_ADDRFLAG(hi2c); 80050aa: 2300 movs r3, #0 80050ac: 61bb str r3, [r7, #24] 80050ae: 68fb ldr r3, [r7, #12] 80050b0: 681b ldr r3, [r3, #0] 80050b2: 695b ldr r3, [r3, #20] 80050b4: 61bb str r3, [r7, #24] 80050b6: 68fb ldr r3, [r7, #12] 80050b8: 681b ldr r3, [r3, #0] 80050ba: 699b ldr r3, [r3, #24] 80050bc: 61bb str r3, [r7, #24] 80050be: 69bb ldr r3, [r7, #24] /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 80050c0: 68fb ldr r3, [r7, #12] 80050c2: 681b ldr r3, [r3, #0] 80050c4: 681a ldr r2, [r3, #0] 80050c6: 68fb ldr r3, [r7, #12] 80050c8: 681b ldr r3, [r3, #0] 80050ca: f442 7200 orr.w r2, r2, #512 @ 0x200 80050ce: 601a str r2, [r3, #0] __ASM volatile ("cpsie i" : : : "memory"); 80050d0: b662 cpsie i } 80050d2: e035 b.n 8005140 /* Re-enable IRQs */ __enable_irq(); } else if (hi2c->XferSize == 2U) 80050d4: 68fb ldr r3, [r7, #12] 80050d6: 8d1b ldrh r3, [r3, #40] @ 0x28 80050d8: 2b02 cmp r3, #2 80050da: d11e bne.n 800511a { /* Enable Pos */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_POS); 80050dc: 68fb ldr r3, [r7, #12] 80050de: 681b ldr r3, [r3, #0] 80050e0: 681a ldr r2, [r3, #0] 80050e2: 68fb ldr r3, [r7, #12] 80050e4: 681b ldr r3, [r3, #0] 80050e6: f442 6200 orr.w r2, r2, #2048 @ 0x800 80050ea: 601a str r2, [r3, #0] __ASM volatile ("cpsid i" : : : "memory"); 80050ec: b672 cpsid i } 80050ee: bf00 nop /* Disable all active IRQs around ADDR clearing and STOP programming because the EV6_3 software sequence must complete before the current byte end of transfer */ __disable_irq(); /* Clear ADDR flag */ __HAL_I2C_CLEAR_ADDRFLAG(hi2c); 80050f0: 2300 movs r3, #0 80050f2: 617b str r3, [r7, #20] 80050f4: 68fb ldr r3, [r7, #12] 80050f6: 681b ldr r3, [r3, #0] 80050f8: 695b ldr r3, [r3, #20] 80050fa: 617b str r3, [r7, #20] 80050fc: 68fb ldr r3, [r7, #12] 80050fe: 681b ldr r3, [r3, #0] 8005100: 699b ldr r3, [r3, #24] 8005102: 617b str r3, [r7, #20] 8005104: 697b ldr r3, [r7, #20] /* Disable Acknowledge */ CLEAR_BIT(hi2c->Instance->CR1, I2C_CR1_ACK); 8005106: 68fb ldr r3, [r7, #12] 8005108: 681b ldr r3, [r3, #0] 800510a: 681a ldr r2, [r3, #0] 800510c: 68fb ldr r3, [r7, #12] 800510e: 681b ldr r3, [r3, #0] 8005110: f422 6280 bic.w r2, r2, #1024 @ 0x400 8005114: 601a str r2, [r3, #0] __ASM volatile ("cpsie i" : : : "memory"); 8005116: b662 cpsie i } 8005118: e012 b.n 8005140 __enable_irq(); } else { /* Enable Acknowledge */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_ACK); 800511a: 68fb ldr r3, [r7, #12] 800511c: 681b ldr r3, [r3, #0] 800511e: 681a ldr r2, [r3, #0] 8005120: 68fb ldr r3, [r7, #12] 8005122: 681b ldr r3, [r3, #0] 8005124: f442 6280 orr.w r2, r2, #1024 @ 0x400 8005128: 601a str r2, [r3, #0] /* Clear ADDR flag */ __HAL_I2C_CLEAR_ADDRFLAG(hi2c); 800512a: 2300 movs r3, #0 800512c: 613b str r3, [r7, #16] 800512e: 68fb ldr r3, [r7, #12] 8005130: 681b ldr r3, [r3, #0] 8005132: 695b ldr r3, [r3, #20] 8005134: 613b str r3, [r7, #16] 8005136: 68fb ldr r3, [r7, #12] 8005138: 681b ldr r3, [r3, #0] 800513a: 699b ldr r3, [r3, #24] 800513c: 613b str r3, [r7, #16] 800513e: 693b ldr r3, [r7, #16] } while (hi2c->XferSize > 0U) 8005140: e172 b.n 8005428 { if (hi2c->XferSize <= 3U) 8005142: 68fb ldr r3, [r7, #12] 8005144: 8d1b ldrh r3, [r3, #40] @ 0x28 8005146: 2b03 cmp r3, #3 8005148: f200 811f bhi.w 800538a { /* One byte */ if (hi2c->XferSize == 1U) 800514c: 68fb ldr r3, [r7, #12] 800514e: 8d1b ldrh r3, [r3, #40] @ 0x28 8005150: 2b01 cmp r3, #1 8005152: d123 bne.n 800519c { /* Wait until RXNE flag is set */ if (I2C_WaitOnRXNEFlagUntilTimeout(hi2c, Timeout, tickstart) != HAL_OK) 8005154: 6a7a ldr r2, [r7, #36] @ 0x24 8005156: 6b39 ldr r1, [r7, #48] @ 0x30 8005158: 68f8 ldr r0, [r7, #12] 800515a: f000 fc7d bl 8005a58 800515e: 4603 mov r3, r0 8005160: 2b00 cmp r3, #0 8005162: d001 beq.n 8005168 { return HAL_ERROR; 8005164: 2301 movs r3, #1 8005166: e173 b.n 8005450 } /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 8005168: 68fb ldr r3, [r7, #12] 800516a: 681b ldr r3, [r3, #0] 800516c: 691a ldr r2, [r3, #16] 800516e: 68fb ldr r3, [r7, #12] 8005170: 6a5b ldr r3, [r3, #36] @ 0x24 8005172: b2d2 uxtb r2, r2 8005174: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8005176: 68fb ldr r3, [r7, #12] 8005178: 6a5b ldr r3, [r3, #36] @ 0x24 800517a: 1c5a adds r2, r3, #1 800517c: 68fb ldr r3, [r7, #12] 800517e: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 8005180: 68fb ldr r3, [r7, #12] 8005182: 8d1b ldrh r3, [r3, #40] @ 0x28 8005184: 3b01 subs r3, #1 8005186: b29a uxth r2, r3 8005188: 68fb ldr r3, [r7, #12] 800518a: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 800518c: 68fb ldr r3, [r7, #12] 800518e: 8d5b ldrh r3, [r3, #42] @ 0x2a 8005190: b29b uxth r3, r3 8005192: 3b01 subs r3, #1 8005194: b29a uxth r2, r3 8005196: 68fb ldr r3, [r7, #12] 8005198: 855a strh r2, [r3, #42] @ 0x2a 800519a: e145 b.n 8005428 } /* Two bytes */ else if (hi2c->XferSize == 2U) 800519c: 68fb ldr r3, [r7, #12] 800519e: 8d1b ldrh r3, [r3, #40] @ 0x28 80051a0: 2b02 cmp r3, #2 80051a2: d152 bne.n 800524a { /* Wait until BTF flag is set */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_BTF, RESET, Timeout, tickstart) != HAL_OK) 80051a4: 6a7b ldr r3, [r7, #36] @ 0x24 80051a6: 9300 str r3, [sp, #0] 80051a8: 6b3b ldr r3, [r7, #48] @ 0x30 80051aa: 2200 movs r2, #0 80051ac: 4906 ldr r1, [pc, #24] @ (80051c8 ) 80051ae: 68f8 ldr r0, [r7, #12] 80051b0: f000 faa8 bl 8005704 80051b4: 4603 mov r3, r0 80051b6: 2b00 cmp r3, #0 80051b8: d008 beq.n 80051cc { return HAL_ERROR; 80051ba: 2301 movs r3, #1 80051bc: e148 b.n 8005450 80051be: bf00 nop 80051c0: 00100002 .word 0x00100002 80051c4: ffff0000 .word 0xffff0000 80051c8: 00010004 .word 0x00010004 __ASM volatile ("cpsid i" : : : "memory"); 80051cc: b672 cpsid i } 80051ce: bf00 nop /* Disable all active IRQs around ADDR clearing and STOP programming because the EV6_3 software sequence must complete before the current byte end of transfer */ __disable_irq(); /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 80051d0: 68fb ldr r3, [r7, #12] 80051d2: 681b ldr r3, [r3, #0] 80051d4: 681a ldr r2, [r3, #0] 80051d6: 68fb ldr r3, [r7, #12] 80051d8: 681b ldr r3, [r3, #0] 80051da: f442 7200 orr.w r2, r2, #512 @ 0x200 80051de: 601a str r2, [r3, #0] /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 80051e0: 68fb ldr r3, [r7, #12] 80051e2: 681b ldr r3, [r3, #0] 80051e4: 691a ldr r2, [r3, #16] 80051e6: 68fb ldr r3, [r7, #12] 80051e8: 6a5b ldr r3, [r3, #36] @ 0x24 80051ea: b2d2 uxtb r2, r2 80051ec: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 80051ee: 68fb ldr r3, [r7, #12] 80051f0: 6a5b ldr r3, [r3, #36] @ 0x24 80051f2: 1c5a adds r2, r3, #1 80051f4: 68fb ldr r3, [r7, #12] 80051f6: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 80051f8: 68fb ldr r3, [r7, #12] 80051fa: 8d1b ldrh r3, [r3, #40] @ 0x28 80051fc: 3b01 subs r3, #1 80051fe: b29a uxth r2, r3 8005200: 68fb ldr r3, [r7, #12] 8005202: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 8005204: 68fb ldr r3, [r7, #12] 8005206: 8d5b ldrh r3, [r3, #42] @ 0x2a 8005208: b29b uxth r3, r3 800520a: 3b01 subs r3, #1 800520c: b29a uxth r2, r3 800520e: 68fb ldr r3, [r7, #12] 8005210: 855a strh r2, [r3, #42] @ 0x2a __ASM volatile ("cpsie i" : : : "memory"); 8005212: b662 cpsie i } 8005214: bf00 nop /* Re-enable IRQs */ __enable_irq(); /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 8005216: 68fb ldr r3, [r7, #12] 8005218: 681b ldr r3, [r3, #0] 800521a: 691a ldr r2, [r3, #16] 800521c: 68fb ldr r3, [r7, #12] 800521e: 6a5b ldr r3, [r3, #36] @ 0x24 8005220: b2d2 uxtb r2, r2 8005222: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8005224: 68fb ldr r3, [r7, #12] 8005226: 6a5b ldr r3, [r3, #36] @ 0x24 8005228: 1c5a adds r2, r3, #1 800522a: 68fb ldr r3, [r7, #12] 800522c: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 800522e: 68fb ldr r3, [r7, #12] 8005230: 8d1b ldrh r3, [r3, #40] @ 0x28 8005232: 3b01 subs r3, #1 8005234: b29a uxth r2, r3 8005236: 68fb ldr r3, [r7, #12] 8005238: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 800523a: 68fb ldr r3, [r7, #12] 800523c: 8d5b ldrh r3, [r3, #42] @ 0x2a 800523e: b29b uxth r3, r3 8005240: 3b01 subs r3, #1 8005242: b29a uxth r2, r3 8005244: 68fb ldr r3, [r7, #12] 8005246: 855a strh r2, [r3, #42] @ 0x2a 8005248: e0ee b.n 8005428 } /* 3 Last bytes */ else { /* Wait until BTF flag is set */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_BTF, RESET, Timeout, tickstart) != HAL_OK) 800524a: 6a7b ldr r3, [r7, #36] @ 0x24 800524c: 9300 str r3, [sp, #0] 800524e: 6b3b ldr r3, [r7, #48] @ 0x30 8005250: 2200 movs r2, #0 8005252: 4981 ldr r1, [pc, #516] @ (8005458 ) 8005254: 68f8 ldr r0, [r7, #12] 8005256: f000 fa55 bl 8005704 800525a: 4603 mov r3, r0 800525c: 2b00 cmp r3, #0 800525e: d001 beq.n 8005264 { return HAL_ERROR; 8005260: 2301 movs r3, #1 8005262: e0f5 b.n 8005450 } /* Disable Acknowledge */ CLEAR_BIT(hi2c->Instance->CR1, I2C_CR1_ACK); 8005264: 68fb ldr r3, [r7, #12] 8005266: 681b ldr r3, [r3, #0] 8005268: 681a ldr r2, [r3, #0] 800526a: 68fb ldr r3, [r7, #12] 800526c: 681b ldr r3, [r3, #0] 800526e: f422 6280 bic.w r2, r2, #1024 @ 0x400 8005272: 601a str r2, [r3, #0] __ASM volatile ("cpsid i" : : : "memory"); 8005274: b672 cpsid i } 8005276: bf00 nop /* Disable all active IRQs around ADDR clearing and STOP programming because the EV6_3 software sequence must complete before the current byte end of transfer */ __disable_irq(); /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 8005278: 68fb ldr r3, [r7, #12] 800527a: 681b ldr r3, [r3, #0] 800527c: 691a ldr r2, [r3, #16] 800527e: 68fb ldr r3, [r7, #12] 8005280: 6a5b ldr r3, [r3, #36] @ 0x24 8005282: b2d2 uxtb r2, r2 8005284: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8005286: 68fb ldr r3, [r7, #12] 8005288: 6a5b ldr r3, [r3, #36] @ 0x24 800528a: 1c5a adds r2, r3, #1 800528c: 68fb ldr r3, [r7, #12] 800528e: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 8005290: 68fb ldr r3, [r7, #12] 8005292: 8d1b ldrh r3, [r3, #40] @ 0x28 8005294: 3b01 subs r3, #1 8005296: b29a uxth r2, r3 8005298: 68fb ldr r3, [r7, #12] 800529a: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 800529c: 68fb ldr r3, [r7, #12] 800529e: 8d5b ldrh r3, [r3, #42] @ 0x2a 80052a0: b29b uxth r3, r3 80052a2: 3b01 subs r3, #1 80052a4: b29a uxth r2, r3 80052a6: 68fb ldr r3, [r7, #12] 80052a8: 855a strh r2, [r3, #42] @ 0x2a /* Wait until BTF flag is set */ count = I2C_TIMEOUT_FLAG * (SystemCoreClock / 25U / 1000U); 80052aa: 4b6c ldr r3, [pc, #432] @ (800545c ) 80052ac: 681b ldr r3, [r3, #0] 80052ae: 08db lsrs r3, r3, #3 80052b0: 4a6b ldr r2, [pc, #428] @ (8005460 ) 80052b2: fba2 2303 umull r2, r3, r2, r3 80052b6: 0a1a lsrs r2, r3, #8 80052b8: 4613 mov r3, r2 80052ba: 009b lsls r3, r3, #2 80052bc: 4413 add r3, r2 80052be: 00da lsls r2, r3, #3 80052c0: 1ad3 subs r3, r2, r3 80052c2: 623b str r3, [r7, #32] do { count--; 80052c4: 6a3b ldr r3, [r7, #32] 80052c6: 3b01 subs r3, #1 80052c8: 623b str r3, [r7, #32] if (count == 0U) 80052ca: 6a3b ldr r3, [r7, #32] 80052cc: 2b00 cmp r3, #0 80052ce: d118 bne.n 8005302 { hi2c->PreviousState = I2C_STATE_NONE; 80052d0: 68fb ldr r3, [r7, #12] 80052d2: 2200 movs r2, #0 80052d4: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 80052d6: 68fb ldr r3, [r7, #12] 80052d8: 2220 movs r2, #32 80052da: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 80052de: 68fb ldr r3, [r7, #12] 80052e0: 2200 movs r2, #0 80052e2: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_TIMEOUT; 80052e6: 68fb ldr r3, [r7, #12] 80052e8: 6c1b ldr r3, [r3, #64] @ 0x40 80052ea: f043 0220 orr.w r2, r3, #32 80052ee: 68fb ldr r3, [r7, #12] 80052f0: 641a str r2, [r3, #64] @ 0x40 __ASM volatile ("cpsie i" : : : "memory"); 80052f2: b662 cpsie i } 80052f4: bf00 nop /* Re-enable IRQs */ __enable_irq(); /* Process Unlocked */ __HAL_UNLOCK(hi2c); 80052f6: 68fb ldr r3, [r7, #12] 80052f8: 2200 movs r2, #0 80052fa: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 80052fe: 2301 movs r3, #1 8005300: e0a6 b.n 8005450 } } while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_BTF) == RESET); 8005302: 68fb ldr r3, [r7, #12] 8005304: 681b ldr r3, [r3, #0] 8005306: 695b ldr r3, [r3, #20] 8005308: f003 0304 and.w r3, r3, #4 800530c: 2b04 cmp r3, #4 800530e: d1d9 bne.n 80052c4 /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 8005310: 68fb ldr r3, [r7, #12] 8005312: 681b ldr r3, [r3, #0] 8005314: 681a ldr r2, [r3, #0] 8005316: 68fb ldr r3, [r7, #12] 8005318: 681b ldr r3, [r3, #0] 800531a: f442 7200 orr.w r2, r2, #512 @ 0x200 800531e: 601a str r2, [r3, #0] /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 8005320: 68fb ldr r3, [r7, #12] 8005322: 681b ldr r3, [r3, #0] 8005324: 691a ldr r2, [r3, #16] 8005326: 68fb ldr r3, [r7, #12] 8005328: 6a5b ldr r3, [r3, #36] @ 0x24 800532a: b2d2 uxtb r2, r2 800532c: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 800532e: 68fb ldr r3, [r7, #12] 8005330: 6a5b ldr r3, [r3, #36] @ 0x24 8005332: 1c5a adds r2, r3, #1 8005334: 68fb ldr r3, [r7, #12] 8005336: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 8005338: 68fb ldr r3, [r7, #12] 800533a: 8d1b ldrh r3, [r3, #40] @ 0x28 800533c: 3b01 subs r3, #1 800533e: b29a uxth r2, r3 8005340: 68fb ldr r3, [r7, #12] 8005342: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 8005344: 68fb ldr r3, [r7, #12] 8005346: 8d5b ldrh r3, [r3, #42] @ 0x2a 8005348: b29b uxth r3, r3 800534a: 3b01 subs r3, #1 800534c: b29a uxth r2, r3 800534e: 68fb ldr r3, [r7, #12] 8005350: 855a strh r2, [r3, #42] @ 0x2a __ASM volatile ("cpsie i" : : : "memory"); 8005352: b662 cpsie i } 8005354: bf00 nop /* Re-enable IRQs */ __enable_irq(); /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 8005356: 68fb ldr r3, [r7, #12] 8005358: 681b ldr r3, [r3, #0] 800535a: 691a ldr r2, [r3, #16] 800535c: 68fb ldr r3, [r7, #12] 800535e: 6a5b ldr r3, [r3, #36] @ 0x24 8005360: b2d2 uxtb r2, r2 8005362: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8005364: 68fb ldr r3, [r7, #12] 8005366: 6a5b ldr r3, [r3, #36] @ 0x24 8005368: 1c5a adds r2, r3, #1 800536a: 68fb ldr r3, [r7, #12] 800536c: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 800536e: 68fb ldr r3, [r7, #12] 8005370: 8d1b ldrh r3, [r3, #40] @ 0x28 8005372: 3b01 subs r3, #1 8005374: b29a uxth r2, r3 8005376: 68fb ldr r3, [r7, #12] 8005378: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 800537a: 68fb ldr r3, [r7, #12] 800537c: 8d5b ldrh r3, [r3, #42] @ 0x2a 800537e: b29b uxth r3, r3 8005380: 3b01 subs r3, #1 8005382: b29a uxth r2, r3 8005384: 68fb ldr r3, [r7, #12] 8005386: 855a strh r2, [r3, #42] @ 0x2a 8005388: e04e b.n 8005428 } } else { /* Wait until RXNE flag is set */ if (I2C_WaitOnRXNEFlagUntilTimeout(hi2c, Timeout, tickstart) != HAL_OK) 800538a: 6a7a ldr r2, [r7, #36] @ 0x24 800538c: 6b39 ldr r1, [r7, #48] @ 0x30 800538e: 68f8 ldr r0, [r7, #12] 8005390: f000 fb62 bl 8005a58 8005394: 4603 mov r3, r0 8005396: 2b00 cmp r3, #0 8005398: d001 beq.n 800539e { return HAL_ERROR; 800539a: 2301 movs r3, #1 800539c: e058 b.n 8005450 } /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 800539e: 68fb ldr r3, [r7, #12] 80053a0: 681b ldr r3, [r3, #0] 80053a2: 691a ldr r2, [r3, #16] 80053a4: 68fb ldr r3, [r7, #12] 80053a6: 6a5b ldr r3, [r3, #36] @ 0x24 80053a8: b2d2 uxtb r2, r2 80053aa: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 80053ac: 68fb ldr r3, [r7, #12] 80053ae: 6a5b ldr r3, [r3, #36] @ 0x24 80053b0: 1c5a adds r2, r3, #1 80053b2: 68fb ldr r3, [r7, #12] 80053b4: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 80053b6: 68fb ldr r3, [r7, #12] 80053b8: 8d1b ldrh r3, [r3, #40] @ 0x28 80053ba: 3b01 subs r3, #1 80053bc: b29a uxth r2, r3 80053be: 68fb ldr r3, [r7, #12] 80053c0: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 80053c2: 68fb ldr r3, [r7, #12] 80053c4: 8d5b ldrh r3, [r3, #42] @ 0x2a 80053c6: b29b uxth r3, r3 80053c8: 3b01 subs r3, #1 80053ca: b29a uxth r2, r3 80053cc: 68fb ldr r3, [r7, #12] 80053ce: 855a strh r2, [r3, #42] @ 0x2a if (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_BTF) == SET) 80053d0: 68fb ldr r3, [r7, #12] 80053d2: 681b ldr r3, [r3, #0] 80053d4: 695b ldr r3, [r3, #20] 80053d6: f003 0304 and.w r3, r3, #4 80053da: 2b04 cmp r3, #4 80053dc: d124 bne.n 8005428 { if (hi2c->XferSize == 3U) 80053de: 68fb ldr r3, [r7, #12] 80053e0: 8d1b ldrh r3, [r3, #40] @ 0x28 80053e2: 2b03 cmp r3, #3 80053e4: d107 bne.n 80053f6 { /* Disable Acknowledge */ CLEAR_BIT(hi2c->Instance->CR1, I2C_CR1_ACK); 80053e6: 68fb ldr r3, [r7, #12] 80053e8: 681b ldr r3, [r3, #0] 80053ea: 681a ldr r2, [r3, #0] 80053ec: 68fb ldr r3, [r7, #12] 80053ee: 681b ldr r3, [r3, #0] 80053f0: f422 6280 bic.w r2, r2, #1024 @ 0x400 80053f4: 601a str r2, [r3, #0] } /* Read data from DR */ *hi2c->pBuffPtr = (uint8_t)hi2c->Instance->DR; 80053f6: 68fb ldr r3, [r7, #12] 80053f8: 681b ldr r3, [r3, #0] 80053fa: 691a ldr r2, [r3, #16] 80053fc: 68fb ldr r3, [r7, #12] 80053fe: 6a5b ldr r3, [r3, #36] @ 0x24 8005400: b2d2 uxtb r2, r2 8005402: 701a strb r2, [r3, #0] /* Increment Buffer pointer */ hi2c->pBuffPtr++; 8005404: 68fb ldr r3, [r7, #12] 8005406: 6a5b ldr r3, [r3, #36] @ 0x24 8005408: 1c5a adds r2, r3, #1 800540a: 68fb ldr r3, [r7, #12] 800540c: 625a str r2, [r3, #36] @ 0x24 /* Update counter */ hi2c->XferSize--; 800540e: 68fb ldr r3, [r7, #12] 8005410: 8d1b ldrh r3, [r3, #40] @ 0x28 8005412: 3b01 subs r3, #1 8005414: b29a uxth r2, r3 8005416: 68fb ldr r3, [r7, #12] 8005418: 851a strh r2, [r3, #40] @ 0x28 hi2c->XferCount--; 800541a: 68fb ldr r3, [r7, #12] 800541c: 8d5b ldrh r3, [r3, #42] @ 0x2a 800541e: b29b uxth r3, r3 8005420: 3b01 subs r3, #1 8005422: b29a uxth r2, r3 8005424: 68fb ldr r3, [r7, #12] 8005426: 855a strh r2, [r3, #42] @ 0x2a while (hi2c->XferSize > 0U) 8005428: 68fb ldr r3, [r7, #12] 800542a: 8d1b ldrh r3, [r3, #40] @ 0x28 800542c: 2b00 cmp r3, #0 800542e: f47f ae88 bne.w 8005142 } } } hi2c->State = HAL_I2C_STATE_READY; 8005432: 68fb ldr r3, [r7, #12] 8005434: 2220 movs r2, #32 8005436: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 800543a: 68fb ldr r3, [r7, #12] 800543c: 2200 movs r2, #0 800543e: f883 203e strb.w r2, [r3, #62] @ 0x3e /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8005442: 68fb ldr r3, [r7, #12] 8005444: 2200 movs r2, #0 8005446: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_OK; 800544a: 2300 movs r3, #0 800544c: e000 b.n 8005450 } else { return HAL_BUSY; 800544e: 2302 movs r3, #2 } } 8005450: 4618 mov r0, r3 8005452: 3728 adds r7, #40 @ 0x28 8005454: 46bd mov sp, r7 8005456: bd80 pop {r7, pc} 8005458: 00010004 .word 0x00010004 800545c: 20000024 .word 0x20000024 8005460: 14f8b589 .word 0x14f8b589 08005464 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_MasterRequestWrite(I2C_HandleTypeDef *hi2c, uint16_t DevAddress, uint32_t Timeout, uint32_t Tickstart) { 8005464: b580 push {r7, lr} 8005466: b088 sub sp, #32 8005468: af02 add r7, sp, #8 800546a: 60f8 str r0, [r7, #12] 800546c: 607a str r2, [r7, #4] 800546e: 603b str r3, [r7, #0] 8005470: 460b mov r3, r1 8005472: 817b strh r3, [r7, #10] /* Declaration of temporary variable to prevent undefined behavior of volatile usage */ uint32_t CurrentXferOptions = hi2c->XferOptions; 8005474: 68fb ldr r3, [r7, #12] 8005476: 6adb ldr r3, [r3, #44] @ 0x2c 8005478: 617b str r3, [r7, #20] /* Generate Start condition if first transfer */ if ((CurrentXferOptions == I2C_FIRST_AND_LAST_FRAME) || (CurrentXferOptions == I2C_FIRST_FRAME) || (CurrentXferOptions == I2C_NO_OPTION_FRAME)) 800547a: 697b ldr r3, [r7, #20] 800547c: 2b08 cmp r3, #8 800547e: d006 beq.n 800548e 8005480: 697b ldr r3, [r7, #20] 8005482: 2b01 cmp r3, #1 8005484: d003 beq.n 800548e 8005486: 697b ldr r3, [r7, #20] 8005488: f513 3f80 cmn.w r3, #65536 @ 0x10000 800548c: d108 bne.n 80054a0 { /* Generate Start */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_START); 800548e: 68fb ldr r3, [r7, #12] 8005490: 681b ldr r3, [r3, #0] 8005492: 681a ldr r2, [r3, #0] 8005494: 68fb ldr r3, [r7, #12] 8005496: 681b ldr r3, [r3, #0] 8005498: f442 7280 orr.w r2, r2, #256 @ 0x100 800549c: 601a str r2, [r3, #0] 800549e: e00b b.n 80054b8 } else if (hi2c->PreviousState == I2C_STATE_MASTER_BUSY_RX) 80054a0: 68fb ldr r3, [r7, #12] 80054a2: 6b1b ldr r3, [r3, #48] @ 0x30 80054a4: 2b12 cmp r3, #18 80054a6: d107 bne.n 80054b8 { /* Generate ReStart */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_START); 80054a8: 68fb ldr r3, [r7, #12] 80054aa: 681b ldr r3, [r3, #0] 80054ac: 681a ldr r2, [r3, #0] 80054ae: 68fb ldr r3, [r7, #12] 80054b0: 681b ldr r3, [r3, #0] 80054b2: f442 7280 orr.w r2, r2, #256 @ 0x100 80054b6: 601a str r2, [r3, #0] { /* Do nothing */ } /* Wait until SB flag is set */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_SB, RESET, Timeout, Tickstart) != HAL_OK) 80054b8: 683b ldr r3, [r7, #0] 80054ba: 9300 str r3, [sp, #0] 80054bc: 687b ldr r3, [r7, #4] 80054be: 2200 movs r2, #0 80054c0: f04f 1101 mov.w r1, #65537 @ 0x10001 80054c4: 68f8 ldr r0, [r7, #12] 80054c6: f000 f91d bl 8005704 80054ca: 4603 mov r3, r0 80054cc: 2b00 cmp r3, #0 80054ce: d00d beq.n 80054ec { if (READ_BIT(hi2c->Instance->CR1, I2C_CR1_START) == I2C_CR1_START) 80054d0: 68fb ldr r3, [r7, #12] 80054d2: 681b ldr r3, [r3, #0] 80054d4: 681b ldr r3, [r3, #0] 80054d6: f403 7380 and.w r3, r3, #256 @ 0x100 80054da: f5b3 7f80 cmp.w r3, #256 @ 0x100 80054de: d103 bne.n 80054e8 { hi2c->ErrorCode = HAL_I2C_WRONG_START; 80054e0: 68fb ldr r3, [r7, #12] 80054e2: f44f 7200 mov.w r2, #512 @ 0x200 80054e6: 641a str r2, [r3, #64] @ 0x40 } return HAL_TIMEOUT; 80054e8: 2303 movs r3, #3 80054ea: e035 b.n 8005558 } if (hi2c->Init.AddressingMode == I2C_ADDRESSINGMODE_7BIT) 80054ec: 68fb ldr r3, [r7, #12] 80054ee: 691b ldr r3, [r3, #16] 80054f0: f5b3 4f80 cmp.w r3, #16384 @ 0x4000 80054f4: d108 bne.n 8005508 { /* Send slave address */ hi2c->Instance->DR = I2C_7BIT_ADD_WRITE(DevAddress); 80054f6: 897b ldrh r3, [r7, #10] 80054f8: b2db uxtb r3, r3 80054fa: 461a mov r2, r3 80054fc: 68fb ldr r3, [r7, #12] 80054fe: 681b ldr r3, [r3, #0] 8005500: f002 02fe and.w r2, r2, #254 @ 0xfe 8005504: 611a str r2, [r3, #16] 8005506: e01b b.n 8005540 } else { /* Send header of slave address */ hi2c->Instance->DR = I2C_10BIT_HEADER_WRITE(DevAddress); 8005508: 897b ldrh r3, [r7, #10] 800550a: 11db asrs r3, r3, #7 800550c: b2db uxtb r3, r3 800550e: f003 0306 and.w r3, r3, #6 8005512: b2db uxtb r3, r3 8005514: f063 030f orn r3, r3, #15 8005518: b2da uxtb r2, r3 800551a: 68fb ldr r3, [r7, #12] 800551c: 681b ldr r3, [r3, #0] 800551e: 611a str r2, [r3, #16] /* Wait until ADD10 flag is set */ if (I2C_WaitOnMasterAddressFlagUntilTimeout(hi2c, I2C_FLAG_ADD10, Timeout, Tickstart) != HAL_OK) 8005520: 683b ldr r3, [r7, #0] 8005522: 687a ldr r2, [r7, #4] 8005524: 490e ldr r1, [pc, #56] @ (8005560 ) 8005526: 68f8 ldr r0, [r7, #12] 8005528: f000 f966 bl 80057f8 800552c: 4603 mov r3, r0 800552e: 2b00 cmp r3, #0 8005530: d001 beq.n 8005536 { return HAL_ERROR; 8005532: 2301 movs r3, #1 8005534: e010 b.n 8005558 } /* Send slave address */ hi2c->Instance->DR = I2C_10BIT_ADDRESS(DevAddress); 8005536: 897b ldrh r3, [r7, #10] 8005538: b2da uxtb r2, r3 800553a: 68fb ldr r3, [r7, #12] 800553c: 681b ldr r3, [r3, #0] 800553e: 611a str r2, [r3, #16] } /* Wait until ADDR flag is set */ if (I2C_WaitOnMasterAddressFlagUntilTimeout(hi2c, I2C_FLAG_ADDR, Timeout, Tickstart) != HAL_OK) 8005540: 683b ldr r3, [r7, #0] 8005542: 687a ldr r2, [r7, #4] 8005544: 4907 ldr r1, [pc, #28] @ (8005564 ) 8005546: 68f8 ldr r0, [r7, #12] 8005548: f000 f956 bl 80057f8 800554c: 4603 mov r3, r0 800554e: 2b00 cmp r3, #0 8005550: d001 beq.n 8005556 { return HAL_ERROR; 8005552: 2301 movs r3, #1 8005554: e000 b.n 8005558 } return HAL_OK; 8005556: 2300 movs r3, #0 } 8005558: 4618 mov r0, r3 800555a: 3718 adds r7, #24 800555c: 46bd mov sp, r7 800555e: bd80 pop {r7, pc} 8005560: 00010008 .word 0x00010008 8005564: 00010002 .word 0x00010002 08005568 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_MasterRequestRead(I2C_HandleTypeDef *hi2c, uint16_t DevAddress, uint32_t Timeout, uint32_t Tickstart) { 8005568: b580 push {r7, lr} 800556a: b088 sub sp, #32 800556c: af02 add r7, sp, #8 800556e: 60f8 str r0, [r7, #12] 8005570: 607a str r2, [r7, #4] 8005572: 603b str r3, [r7, #0] 8005574: 460b mov r3, r1 8005576: 817b strh r3, [r7, #10] /* Declaration of temporary variable to prevent undefined behavior of volatile usage */ uint32_t CurrentXferOptions = hi2c->XferOptions; 8005578: 68fb ldr r3, [r7, #12] 800557a: 6adb ldr r3, [r3, #44] @ 0x2c 800557c: 617b str r3, [r7, #20] /* Enable Acknowledge */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_ACK); 800557e: 68fb ldr r3, [r7, #12] 8005580: 681b ldr r3, [r3, #0] 8005582: 681a ldr r2, [r3, #0] 8005584: 68fb ldr r3, [r7, #12] 8005586: 681b ldr r3, [r3, #0] 8005588: f442 6280 orr.w r2, r2, #1024 @ 0x400 800558c: 601a str r2, [r3, #0] /* Generate Start condition if first transfer */ if ((CurrentXferOptions == I2C_FIRST_AND_LAST_FRAME) || (CurrentXferOptions == I2C_FIRST_FRAME) || (CurrentXferOptions == I2C_NO_OPTION_FRAME)) 800558e: 697b ldr r3, [r7, #20] 8005590: 2b08 cmp r3, #8 8005592: d006 beq.n 80055a2 8005594: 697b ldr r3, [r7, #20] 8005596: 2b01 cmp r3, #1 8005598: d003 beq.n 80055a2 800559a: 697b ldr r3, [r7, #20] 800559c: f513 3f80 cmn.w r3, #65536 @ 0x10000 80055a0: d108 bne.n 80055b4 { /* Generate Start */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_START); 80055a2: 68fb ldr r3, [r7, #12] 80055a4: 681b ldr r3, [r3, #0] 80055a6: 681a ldr r2, [r3, #0] 80055a8: 68fb ldr r3, [r7, #12] 80055aa: 681b ldr r3, [r3, #0] 80055ac: f442 7280 orr.w r2, r2, #256 @ 0x100 80055b0: 601a str r2, [r3, #0] 80055b2: e00b b.n 80055cc } else if (hi2c->PreviousState == I2C_STATE_MASTER_BUSY_TX) 80055b4: 68fb ldr r3, [r7, #12] 80055b6: 6b1b ldr r3, [r3, #48] @ 0x30 80055b8: 2b11 cmp r3, #17 80055ba: d107 bne.n 80055cc { /* Generate ReStart */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_START); 80055bc: 68fb ldr r3, [r7, #12] 80055be: 681b ldr r3, [r3, #0] 80055c0: 681a ldr r2, [r3, #0] 80055c2: 68fb ldr r3, [r7, #12] 80055c4: 681b ldr r3, [r3, #0] 80055c6: f442 7280 orr.w r2, r2, #256 @ 0x100 80055ca: 601a str r2, [r3, #0] { /* Do nothing */ } /* Wait until SB flag is set */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_SB, RESET, Timeout, Tickstart) != HAL_OK) 80055cc: 683b ldr r3, [r7, #0] 80055ce: 9300 str r3, [sp, #0] 80055d0: 687b ldr r3, [r7, #4] 80055d2: 2200 movs r2, #0 80055d4: f04f 1101 mov.w r1, #65537 @ 0x10001 80055d8: 68f8 ldr r0, [r7, #12] 80055da: f000 f893 bl 8005704 80055de: 4603 mov r3, r0 80055e0: 2b00 cmp r3, #0 80055e2: d00d beq.n 8005600 { if (READ_BIT(hi2c->Instance->CR1, I2C_CR1_START) == I2C_CR1_START) 80055e4: 68fb ldr r3, [r7, #12] 80055e6: 681b ldr r3, [r3, #0] 80055e8: 681b ldr r3, [r3, #0] 80055ea: f403 7380 and.w r3, r3, #256 @ 0x100 80055ee: f5b3 7f80 cmp.w r3, #256 @ 0x100 80055f2: d103 bne.n 80055fc { hi2c->ErrorCode = HAL_I2C_WRONG_START; 80055f4: 68fb ldr r3, [r7, #12] 80055f6: f44f 7200 mov.w r2, #512 @ 0x200 80055fa: 641a str r2, [r3, #64] @ 0x40 } return HAL_TIMEOUT; 80055fc: 2303 movs r3, #3 80055fe: e079 b.n 80056f4 } if (hi2c->Init.AddressingMode == I2C_ADDRESSINGMODE_7BIT) 8005600: 68fb ldr r3, [r7, #12] 8005602: 691b ldr r3, [r3, #16] 8005604: f5b3 4f80 cmp.w r3, #16384 @ 0x4000 8005608: d108 bne.n 800561c { /* Send slave address */ hi2c->Instance->DR = I2C_7BIT_ADD_READ(DevAddress); 800560a: 897b ldrh r3, [r7, #10] 800560c: b2db uxtb r3, r3 800560e: f043 0301 orr.w r3, r3, #1 8005612: b2da uxtb r2, r3 8005614: 68fb ldr r3, [r7, #12] 8005616: 681b ldr r3, [r3, #0] 8005618: 611a str r2, [r3, #16] 800561a: e05f b.n 80056dc } else { /* Send header of slave address */ hi2c->Instance->DR = I2C_10BIT_HEADER_WRITE(DevAddress); 800561c: 897b ldrh r3, [r7, #10] 800561e: 11db asrs r3, r3, #7 8005620: b2db uxtb r3, r3 8005622: f003 0306 and.w r3, r3, #6 8005626: b2db uxtb r3, r3 8005628: f063 030f orn r3, r3, #15 800562c: b2da uxtb r2, r3 800562e: 68fb ldr r3, [r7, #12] 8005630: 681b ldr r3, [r3, #0] 8005632: 611a str r2, [r3, #16] /* Wait until ADD10 flag is set */ if (I2C_WaitOnMasterAddressFlagUntilTimeout(hi2c, I2C_FLAG_ADD10, Timeout, Tickstart) != HAL_OK) 8005634: 683b ldr r3, [r7, #0] 8005636: 687a ldr r2, [r7, #4] 8005638: 4930 ldr r1, [pc, #192] @ (80056fc ) 800563a: 68f8 ldr r0, [r7, #12] 800563c: f000 f8dc bl 80057f8 8005640: 4603 mov r3, r0 8005642: 2b00 cmp r3, #0 8005644: d001 beq.n 800564a { return HAL_ERROR; 8005646: 2301 movs r3, #1 8005648: e054 b.n 80056f4 } /* Send slave address */ hi2c->Instance->DR = I2C_10BIT_ADDRESS(DevAddress); 800564a: 897b ldrh r3, [r7, #10] 800564c: b2da uxtb r2, r3 800564e: 68fb ldr r3, [r7, #12] 8005650: 681b ldr r3, [r3, #0] 8005652: 611a str r2, [r3, #16] /* Wait until ADDR flag is set */ if (I2C_WaitOnMasterAddressFlagUntilTimeout(hi2c, I2C_FLAG_ADDR, Timeout, Tickstart) != HAL_OK) 8005654: 683b ldr r3, [r7, #0] 8005656: 687a ldr r2, [r7, #4] 8005658: 4929 ldr r1, [pc, #164] @ (8005700 ) 800565a: 68f8 ldr r0, [r7, #12] 800565c: f000 f8cc bl 80057f8 8005660: 4603 mov r3, r0 8005662: 2b00 cmp r3, #0 8005664: d001 beq.n 800566a { return HAL_ERROR; 8005666: 2301 movs r3, #1 8005668: e044 b.n 80056f4 } /* Clear ADDR flag */ __HAL_I2C_CLEAR_ADDRFLAG(hi2c); 800566a: 2300 movs r3, #0 800566c: 613b str r3, [r7, #16] 800566e: 68fb ldr r3, [r7, #12] 8005670: 681b ldr r3, [r3, #0] 8005672: 695b ldr r3, [r3, #20] 8005674: 613b str r3, [r7, #16] 8005676: 68fb ldr r3, [r7, #12] 8005678: 681b ldr r3, [r3, #0] 800567a: 699b ldr r3, [r3, #24] 800567c: 613b str r3, [r7, #16] 800567e: 693b ldr r3, [r7, #16] /* Generate Restart */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_START); 8005680: 68fb ldr r3, [r7, #12] 8005682: 681b ldr r3, [r3, #0] 8005684: 681a ldr r2, [r3, #0] 8005686: 68fb ldr r3, [r7, #12] 8005688: 681b ldr r3, [r3, #0] 800568a: f442 7280 orr.w r2, r2, #256 @ 0x100 800568e: 601a str r2, [r3, #0] /* Wait until SB flag is set */ if (I2C_WaitOnFlagUntilTimeout(hi2c, I2C_FLAG_SB, RESET, Timeout, Tickstart) != HAL_OK) 8005690: 683b ldr r3, [r7, #0] 8005692: 9300 str r3, [sp, #0] 8005694: 687b ldr r3, [r7, #4] 8005696: 2200 movs r2, #0 8005698: f04f 1101 mov.w r1, #65537 @ 0x10001 800569c: 68f8 ldr r0, [r7, #12] 800569e: f000 f831 bl 8005704 80056a2: 4603 mov r3, r0 80056a4: 2b00 cmp r3, #0 80056a6: d00d beq.n 80056c4 { if (READ_BIT(hi2c->Instance->CR1, I2C_CR1_START) == I2C_CR1_START) 80056a8: 68fb ldr r3, [r7, #12] 80056aa: 681b ldr r3, [r3, #0] 80056ac: 681b ldr r3, [r3, #0] 80056ae: f403 7380 and.w r3, r3, #256 @ 0x100 80056b2: f5b3 7f80 cmp.w r3, #256 @ 0x100 80056b6: d103 bne.n 80056c0 { hi2c->ErrorCode = HAL_I2C_WRONG_START; 80056b8: 68fb ldr r3, [r7, #12] 80056ba: f44f 7200 mov.w r2, #512 @ 0x200 80056be: 641a str r2, [r3, #64] @ 0x40 } return HAL_TIMEOUT; 80056c0: 2303 movs r3, #3 80056c2: e017 b.n 80056f4 } /* Send header of slave address */ hi2c->Instance->DR = I2C_10BIT_HEADER_READ(DevAddress); 80056c4: 897b ldrh r3, [r7, #10] 80056c6: 11db asrs r3, r3, #7 80056c8: b2db uxtb r3, r3 80056ca: f003 0306 and.w r3, r3, #6 80056ce: b2db uxtb r3, r3 80056d0: f063 030e orn r3, r3, #14 80056d4: b2da uxtb r2, r3 80056d6: 68fb ldr r3, [r7, #12] 80056d8: 681b ldr r3, [r3, #0] 80056da: 611a str r2, [r3, #16] } /* Wait until ADDR flag is set */ if (I2C_WaitOnMasterAddressFlagUntilTimeout(hi2c, I2C_FLAG_ADDR, Timeout, Tickstart) != HAL_OK) 80056dc: 683b ldr r3, [r7, #0] 80056de: 687a ldr r2, [r7, #4] 80056e0: 4907 ldr r1, [pc, #28] @ (8005700 ) 80056e2: 68f8 ldr r0, [r7, #12] 80056e4: f000 f888 bl 80057f8 80056e8: 4603 mov r3, r0 80056ea: 2b00 cmp r3, #0 80056ec: d001 beq.n 80056f2 { return HAL_ERROR; 80056ee: 2301 movs r3, #1 80056f0: e000 b.n 80056f4 } return HAL_OK; 80056f2: 2300 movs r3, #0 } 80056f4: 4618 mov r0, r3 80056f6: 3718 adds r7, #24 80056f8: 46bd mov sp, r7 80056fa: bd80 pop {r7, pc} 80056fc: 00010008 .word 0x00010008 8005700: 00010002 .word 0x00010002 08005704 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_WaitOnFlagUntilTimeout(I2C_HandleTypeDef *hi2c, uint32_t Flag, FlagStatus Status, uint32_t Timeout, uint32_t Tickstart) { 8005704: b580 push {r7, lr} 8005706: b084 sub sp, #16 8005708: af00 add r7, sp, #0 800570a: 60f8 str r0, [r7, #12] 800570c: 60b9 str r1, [r7, #8] 800570e: 603b str r3, [r7, #0] 8005710: 4613 mov r3, r2 8005712: 71fb strb r3, [r7, #7] /* Wait until flag is set */ while (__HAL_I2C_GET_FLAG(hi2c, Flag) == Status) 8005714: e048 b.n 80057a8 { /* Check for the Timeout */ if (Timeout != HAL_MAX_DELAY) 8005716: 683b ldr r3, [r7, #0] 8005718: f1b3 3fff cmp.w r3, #4294967295 800571c: d044 beq.n 80057a8 { if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U)) 800571e: f7fd fdd9 bl 80032d4 8005722: 4602 mov r2, r0 8005724: 69bb ldr r3, [r7, #24] 8005726: 1ad3 subs r3, r2, r3 8005728: 683a ldr r2, [r7, #0] 800572a: 429a cmp r2, r3 800572c: d302 bcc.n 8005734 800572e: 683b ldr r3, [r7, #0] 8005730: 2b00 cmp r3, #0 8005732: d139 bne.n 80057a8 { if ((__HAL_I2C_GET_FLAG(hi2c, Flag) == Status)) 8005734: 68bb ldr r3, [r7, #8] 8005736: 0c1b lsrs r3, r3, #16 8005738: b2db uxtb r3, r3 800573a: 2b01 cmp r3, #1 800573c: d10d bne.n 800575a 800573e: 68fb ldr r3, [r7, #12] 8005740: 681b ldr r3, [r3, #0] 8005742: 695b ldr r3, [r3, #20] 8005744: 43da mvns r2, r3 8005746: 68bb ldr r3, [r7, #8] 8005748: 4013 ands r3, r2 800574a: b29b uxth r3, r3 800574c: 2b00 cmp r3, #0 800574e: bf0c ite eq 8005750: 2301 moveq r3, #1 8005752: 2300 movne r3, #0 8005754: b2db uxtb r3, r3 8005756: 461a mov r2, r3 8005758: e00c b.n 8005774 800575a: 68fb ldr r3, [r7, #12] 800575c: 681b ldr r3, [r3, #0] 800575e: 699b ldr r3, [r3, #24] 8005760: 43da mvns r2, r3 8005762: 68bb ldr r3, [r7, #8] 8005764: 4013 ands r3, r2 8005766: b29b uxth r3, r3 8005768: 2b00 cmp r3, #0 800576a: bf0c ite eq 800576c: 2301 moveq r3, #1 800576e: 2300 movne r3, #0 8005770: b2db uxtb r3, r3 8005772: 461a mov r2, r3 8005774: 79fb ldrb r3, [r7, #7] 8005776: 429a cmp r2, r3 8005778: d116 bne.n 80057a8 { hi2c->PreviousState = I2C_STATE_NONE; 800577a: 68fb ldr r3, [r7, #12] 800577c: 2200 movs r2, #0 800577e: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005780: 68fb ldr r3, [r7, #12] 8005782: 2220 movs r2, #32 8005784: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005788: 68fb ldr r3, [r7, #12] 800578a: 2200 movs r2, #0 800578c: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_TIMEOUT; 8005790: 68fb ldr r3, [r7, #12] 8005792: 6c1b ldr r3, [r3, #64] @ 0x40 8005794: f043 0220 orr.w r2, r3, #32 8005798: 68fb ldr r3, [r7, #12] 800579a: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 800579c: 68fb ldr r3, [r7, #12] 800579e: 2200 movs r2, #0 80057a0: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 80057a4: 2301 movs r3, #1 80057a6: e023 b.n 80057f0 while (__HAL_I2C_GET_FLAG(hi2c, Flag) == Status) 80057a8: 68bb ldr r3, [r7, #8] 80057aa: 0c1b lsrs r3, r3, #16 80057ac: b2db uxtb r3, r3 80057ae: 2b01 cmp r3, #1 80057b0: d10d bne.n 80057ce 80057b2: 68fb ldr r3, [r7, #12] 80057b4: 681b ldr r3, [r3, #0] 80057b6: 695b ldr r3, [r3, #20] 80057b8: 43da mvns r2, r3 80057ba: 68bb ldr r3, [r7, #8] 80057bc: 4013 ands r3, r2 80057be: b29b uxth r3, r3 80057c0: 2b00 cmp r3, #0 80057c2: bf0c ite eq 80057c4: 2301 moveq r3, #1 80057c6: 2300 movne r3, #0 80057c8: b2db uxtb r3, r3 80057ca: 461a mov r2, r3 80057cc: e00c b.n 80057e8 80057ce: 68fb ldr r3, [r7, #12] 80057d0: 681b ldr r3, [r3, #0] 80057d2: 699b ldr r3, [r3, #24] 80057d4: 43da mvns r2, r3 80057d6: 68bb ldr r3, [r7, #8] 80057d8: 4013 ands r3, r2 80057da: b29b uxth r3, r3 80057dc: 2b00 cmp r3, #0 80057de: bf0c ite eq 80057e0: 2301 moveq r3, #1 80057e2: 2300 movne r3, #0 80057e4: b2db uxtb r3, r3 80057e6: 461a mov r2, r3 80057e8: 79fb ldrb r3, [r7, #7] 80057ea: 429a cmp r2, r3 80057ec: d093 beq.n 8005716 } } } } return HAL_OK; 80057ee: 2300 movs r3, #0 } 80057f0: 4618 mov r0, r3 80057f2: 3710 adds r7, #16 80057f4: 46bd mov sp, r7 80057f6: bd80 pop {r7, pc} 080057f8 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_WaitOnMasterAddressFlagUntilTimeout(I2C_HandleTypeDef *hi2c, uint32_t Flag, uint32_t Timeout, uint32_t Tickstart) { 80057f8: b580 push {r7, lr} 80057fa: b084 sub sp, #16 80057fc: af00 add r7, sp, #0 80057fe: 60f8 str r0, [r7, #12] 8005800: 60b9 str r1, [r7, #8] 8005802: 607a str r2, [r7, #4] 8005804: 603b str r3, [r7, #0] while (__HAL_I2C_GET_FLAG(hi2c, Flag) == RESET) 8005806: e071 b.n 80058ec { if (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_AF) == SET) 8005808: 68fb ldr r3, [r7, #12] 800580a: 681b ldr r3, [r3, #0] 800580c: 695b ldr r3, [r3, #20] 800580e: f403 6380 and.w r3, r3, #1024 @ 0x400 8005812: f5b3 6f80 cmp.w r3, #1024 @ 0x400 8005816: d123 bne.n 8005860 { /* Generate Stop */ SET_BIT(hi2c->Instance->CR1, I2C_CR1_STOP); 8005818: 68fb ldr r3, [r7, #12] 800581a: 681b ldr r3, [r3, #0] 800581c: 681a ldr r2, [r3, #0] 800581e: 68fb ldr r3, [r7, #12] 8005820: 681b ldr r3, [r3, #0] 8005822: f442 7200 orr.w r2, r2, #512 @ 0x200 8005826: 601a str r2, [r3, #0] /* Clear AF Flag */ __HAL_I2C_CLEAR_FLAG(hi2c, I2C_FLAG_AF); 8005828: 68fb ldr r3, [r7, #12] 800582a: 681b ldr r3, [r3, #0] 800582c: f46f 6280 mvn.w r2, #1024 @ 0x400 8005830: 615a str r2, [r3, #20] hi2c->PreviousState = I2C_STATE_NONE; 8005832: 68fb ldr r3, [r7, #12] 8005834: 2200 movs r2, #0 8005836: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005838: 68fb ldr r3, [r7, #12] 800583a: 2220 movs r2, #32 800583c: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005840: 68fb ldr r3, [r7, #12] 8005842: 2200 movs r2, #0 8005844: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_AF; 8005848: 68fb ldr r3, [r7, #12] 800584a: 6c1b ldr r3, [r3, #64] @ 0x40 800584c: f043 0204 orr.w r2, r3, #4 8005850: 68fb ldr r3, [r7, #12] 8005852: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8005854: 68fb ldr r3, [r7, #12] 8005856: 2200 movs r2, #0 8005858: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 800585c: 2301 movs r3, #1 800585e: e067 b.n 8005930 } /* Check for the Timeout */ if (Timeout != HAL_MAX_DELAY) 8005860: 687b ldr r3, [r7, #4] 8005862: f1b3 3fff cmp.w r3, #4294967295 8005866: d041 beq.n 80058ec { if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U)) 8005868: f7fd fd34 bl 80032d4 800586c: 4602 mov r2, r0 800586e: 683b ldr r3, [r7, #0] 8005870: 1ad3 subs r3, r2, r3 8005872: 687a ldr r2, [r7, #4] 8005874: 429a cmp r2, r3 8005876: d302 bcc.n 800587e 8005878: 687b ldr r3, [r7, #4] 800587a: 2b00 cmp r3, #0 800587c: d136 bne.n 80058ec { if ((__HAL_I2C_GET_FLAG(hi2c, Flag) == RESET)) 800587e: 68bb ldr r3, [r7, #8] 8005880: 0c1b lsrs r3, r3, #16 8005882: b2db uxtb r3, r3 8005884: 2b01 cmp r3, #1 8005886: d10c bne.n 80058a2 8005888: 68fb ldr r3, [r7, #12] 800588a: 681b ldr r3, [r3, #0] 800588c: 695b ldr r3, [r3, #20] 800588e: 43da mvns r2, r3 8005890: 68bb ldr r3, [r7, #8] 8005892: 4013 ands r3, r2 8005894: b29b uxth r3, r3 8005896: 2b00 cmp r3, #0 8005898: bf14 ite ne 800589a: 2301 movne r3, #1 800589c: 2300 moveq r3, #0 800589e: b2db uxtb r3, r3 80058a0: e00b b.n 80058ba 80058a2: 68fb ldr r3, [r7, #12] 80058a4: 681b ldr r3, [r3, #0] 80058a6: 699b ldr r3, [r3, #24] 80058a8: 43da mvns r2, r3 80058aa: 68bb ldr r3, [r7, #8] 80058ac: 4013 ands r3, r2 80058ae: b29b uxth r3, r3 80058b0: 2b00 cmp r3, #0 80058b2: bf14 ite ne 80058b4: 2301 movne r3, #1 80058b6: 2300 moveq r3, #0 80058b8: b2db uxtb r3, r3 80058ba: 2b00 cmp r3, #0 80058bc: d016 beq.n 80058ec { hi2c->PreviousState = I2C_STATE_NONE; 80058be: 68fb ldr r3, [r7, #12] 80058c0: 2200 movs r2, #0 80058c2: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 80058c4: 68fb ldr r3, [r7, #12] 80058c6: 2220 movs r2, #32 80058c8: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 80058cc: 68fb ldr r3, [r7, #12] 80058ce: 2200 movs r2, #0 80058d0: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_TIMEOUT; 80058d4: 68fb ldr r3, [r7, #12] 80058d6: 6c1b ldr r3, [r3, #64] @ 0x40 80058d8: f043 0220 orr.w r2, r3, #32 80058dc: 68fb ldr r3, [r7, #12] 80058de: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 80058e0: 68fb ldr r3, [r7, #12] 80058e2: 2200 movs r2, #0 80058e4: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 80058e8: 2301 movs r3, #1 80058ea: e021 b.n 8005930 while (__HAL_I2C_GET_FLAG(hi2c, Flag) == RESET) 80058ec: 68bb ldr r3, [r7, #8] 80058ee: 0c1b lsrs r3, r3, #16 80058f0: b2db uxtb r3, r3 80058f2: 2b01 cmp r3, #1 80058f4: d10c bne.n 8005910 80058f6: 68fb ldr r3, [r7, #12] 80058f8: 681b ldr r3, [r3, #0] 80058fa: 695b ldr r3, [r3, #20] 80058fc: 43da mvns r2, r3 80058fe: 68bb ldr r3, [r7, #8] 8005900: 4013 ands r3, r2 8005902: b29b uxth r3, r3 8005904: 2b00 cmp r3, #0 8005906: bf14 ite ne 8005908: 2301 movne r3, #1 800590a: 2300 moveq r3, #0 800590c: b2db uxtb r3, r3 800590e: e00b b.n 8005928 8005910: 68fb ldr r3, [r7, #12] 8005912: 681b ldr r3, [r3, #0] 8005914: 699b ldr r3, [r3, #24] 8005916: 43da mvns r2, r3 8005918: 68bb ldr r3, [r7, #8] 800591a: 4013 ands r3, r2 800591c: b29b uxth r3, r3 800591e: 2b00 cmp r3, #0 8005920: bf14 ite ne 8005922: 2301 movne r3, #1 8005924: 2300 moveq r3, #0 8005926: b2db uxtb r3, r3 8005928: 2b00 cmp r3, #0 800592a: f47f af6d bne.w 8005808 } } } } return HAL_OK; 800592e: 2300 movs r3, #0 } 8005930: 4618 mov r0, r3 8005932: 3710 adds r7, #16 8005934: 46bd mov sp, r7 8005936: bd80 pop {r7, pc} 08005938 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_WaitOnTXEFlagUntilTimeout(I2C_HandleTypeDef *hi2c, uint32_t Timeout, uint32_t Tickstart) { 8005938: b580 push {r7, lr} 800593a: b084 sub sp, #16 800593c: af00 add r7, sp, #0 800593e: 60f8 str r0, [r7, #12] 8005940: 60b9 str r1, [r7, #8] 8005942: 607a str r2, [r7, #4] while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_TXE) == RESET) 8005944: e034 b.n 80059b0 { /* Check if a NACK is detected */ if (I2C_IsAcknowledgeFailed(hi2c) != HAL_OK) 8005946: 68f8 ldr r0, [r7, #12] 8005948: f000 f8e3 bl 8005b12 800594c: 4603 mov r3, r0 800594e: 2b00 cmp r3, #0 8005950: d001 beq.n 8005956 { return HAL_ERROR; 8005952: 2301 movs r3, #1 8005954: e034 b.n 80059c0 } /* Check for the Timeout */ if (Timeout != HAL_MAX_DELAY) 8005956: 68bb ldr r3, [r7, #8] 8005958: f1b3 3fff cmp.w r3, #4294967295 800595c: d028 beq.n 80059b0 { if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U)) 800595e: f7fd fcb9 bl 80032d4 8005962: 4602 mov r2, r0 8005964: 687b ldr r3, [r7, #4] 8005966: 1ad3 subs r3, r2, r3 8005968: 68ba ldr r2, [r7, #8] 800596a: 429a cmp r2, r3 800596c: d302 bcc.n 8005974 800596e: 68bb ldr r3, [r7, #8] 8005970: 2b00 cmp r3, #0 8005972: d11d bne.n 80059b0 { if ((__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_TXE) == RESET)) 8005974: 68fb ldr r3, [r7, #12] 8005976: 681b ldr r3, [r3, #0] 8005978: 695b ldr r3, [r3, #20] 800597a: f003 0380 and.w r3, r3, #128 @ 0x80 800597e: 2b80 cmp r3, #128 @ 0x80 8005980: d016 beq.n 80059b0 { hi2c->PreviousState = I2C_STATE_NONE; 8005982: 68fb ldr r3, [r7, #12] 8005984: 2200 movs r2, #0 8005986: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005988: 68fb ldr r3, [r7, #12] 800598a: 2220 movs r2, #32 800598c: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005990: 68fb ldr r3, [r7, #12] 8005992: 2200 movs r2, #0 8005994: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_TIMEOUT; 8005998: 68fb ldr r3, [r7, #12] 800599a: 6c1b ldr r3, [r3, #64] @ 0x40 800599c: f043 0220 orr.w r2, r3, #32 80059a0: 68fb ldr r3, [r7, #12] 80059a2: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 80059a4: 68fb ldr r3, [r7, #12] 80059a6: 2200 movs r2, #0 80059a8: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 80059ac: 2301 movs r3, #1 80059ae: e007 b.n 80059c0 while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_TXE) == RESET) 80059b0: 68fb ldr r3, [r7, #12] 80059b2: 681b ldr r3, [r3, #0] 80059b4: 695b ldr r3, [r3, #20] 80059b6: f003 0380 and.w r3, r3, #128 @ 0x80 80059ba: 2b80 cmp r3, #128 @ 0x80 80059bc: d1c3 bne.n 8005946 } } } } return HAL_OK; 80059be: 2300 movs r3, #0 } 80059c0: 4618 mov r0, r3 80059c2: 3710 adds r7, #16 80059c4: 46bd mov sp, r7 80059c6: bd80 pop {r7, pc} 080059c8 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_WaitOnBTFFlagUntilTimeout(I2C_HandleTypeDef *hi2c, uint32_t Timeout, uint32_t Tickstart) { 80059c8: b580 push {r7, lr} 80059ca: b084 sub sp, #16 80059cc: af00 add r7, sp, #0 80059ce: 60f8 str r0, [r7, #12] 80059d0: 60b9 str r1, [r7, #8] 80059d2: 607a str r2, [r7, #4] while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_BTF) == RESET) 80059d4: e034 b.n 8005a40 { /* Check if a NACK is detected */ if (I2C_IsAcknowledgeFailed(hi2c) != HAL_OK) 80059d6: 68f8 ldr r0, [r7, #12] 80059d8: f000 f89b bl 8005b12 80059dc: 4603 mov r3, r0 80059de: 2b00 cmp r3, #0 80059e0: d001 beq.n 80059e6 { return HAL_ERROR; 80059e2: 2301 movs r3, #1 80059e4: e034 b.n 8005a50 } /* Check for the Timeout */ if (Timeout != HAL_MAX_DELAY) 80059e6: 68bb ldr r3, [r7, #8] 80059e8: f1b3 3fff cmp.w r3, #4294967295 80059ec: d028 beq.n 8005a40 { if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U)) 80059ee: f7fd fc71 bl 80032d4 80059f2: 4602 mov r2, r0 80059f4: 687b ldr r3, [r7, #4] 80059f6: 1ad3 subs r3, r2, r3 80059f8: 68ba ldr r2, [r7, #8] 80059fa: 429a cmp r2, r3 80059fc: d302 bcc.n 8005a04 80059fe: 68bb ldr r3, [r7, #8] 8005a00: 2b00 cmp r3, #0 8005a02: d11d bne.n 8005a40 { if ((__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_BTF) == RESET)) 8005a04: 68fb ldr r3, [r7, #12] 8005a06: 681b ldr r3, [r3, #0] 8005a08: 695b ldr r3, [r3, #20] 8005a0a: f003 0304 and.w r3, r3, #4 8005a0e: 2b04 cmp r3, #4 8005a10: d016 beq.n 8005a40 { hi2c->PreviousState = I2C_STATE_NONE; 8005a12: 68fb ldr r3, [r7, #12] 8005a14: 2200 movs r2, #0 8005a16: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005a18: 68fb ldr r3, [r7, #12] 8005a1a: 2220 movs r2, #32 8005a1c: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005a20: 68fb ldr r3, [r7, #12] 8005a22: 2200 movs r2, #0 8005a24: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_TIMEOUT; 8005a28: 68fb ldr r3, [r7, #12] 8005a2a: 6c1b ldr r3, [r3, #64] @ 0x40 8005a2c: f043 0220 orr.w r2, r3, #32 8005a30: 68fb ldr r3, [r7, #12] 8005a32: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8005a34: 68fb ldr r3, [r7, #12] 8005a36: 2200 movs r2, #0 8005a38: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 8005a3c: 2301 movs r3, #1 8005a3e: e007 b.n 8005a50 while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_BTF) == RESET) 8005a40: 68fb ldr r3, [r7, #12] 8005a42: 681b ldr r3, [r3, #0] 8005a44: 695b ldr r3, [r3, #20] 8005a46: f003 0304 and.w r3, r3, #4 8005a4a: 2b04 cmp r3, #4 8005a4c: d1c3 bne.n 80059d6 } } } } return HAL_OK; 8005a4e: 2300 movs r3, #0 } 8005a50: 4618 mov r0, r3 8005a52: 3710 adds r7, #16 8005a54: 46bd mov sp, r7 8005a56: bd80 pop {r7, pc} 08005a58 : * @param Timeout Timeout duration * @param Tickstart Tick start value * @retval HAL status */ static HAL_StatusTypeDef I2C_WaitOnRXNEFlagUntilTimeout(I2C_HandleTypeDef *hi2c, uint32_t Timeout, uint32_t Tickstart) { 8005a58: b580 push {r7, lr} 8005a5a: b084 sub sp, #16 8005a5c: af00 add r7, sp, #0 8005a5e: 60f8 str r0, [r7, #12] 8005a60: 60b9 str r1, [r7, #8] 8005a62: 607a str r2, [r7, #4] while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_RXNE) == RESET) 8005a64: e049 b.n 8005afa { /* Check if a STOPF is detected */ if (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_STOPF) == SET) 8005a66: 68fb ldr r3, [r7, #12] 8005a68: 681b ldr r3, [r3, #0] 8005a6a: 695b ldr r3, [r3, #20] 8005a6c: f003 0310 and.w r3, r3, #16 8005a70: 2b10 cmp r3, #16 8005a72: d119 bne.n 8005aa8 { /* Clear STOP Flag */ __HAL_I2C_CLEAR_FLAG(hi2c, I2C_FLAG_STOPF); 8005a74: 68fb ldr r3, [r7, #12] 8005a76: 681b ldr r3, [r3, #0] 8005a78: f06f 0210 mvn.w r2, #16 8005a7c: 615a str r2, [r3, #20] hi2c->PreviousState = I2C_STATE_NONE; 8005a7e: 68fb ldr r3, [r7, #12] 8005a80: 2200 movs r2, #0 8005a82: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005a84: 68fb ldr r3, [r7, #12] 8005a86: 2220 movs r2, #32 8005a88: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005a8c: 68fb ldr r3, [r7, #12] 8005a8e: 2200 movs r2, #0 8005a90: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_NONE; 8005a94: 68fb ldr r3, [r7, #12] 8005a96: 6c1a ldr r2, [r3, #64] @ 0x40 8005a98: 68fb ldr r3, [r7, #12] 8005a9a: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8005a9c: 68fb ldr r3, [r7, #12] 8005a9e: 2200 movs r2, #0 8005aa0: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 8005aa4: 2301 movs r3, #1 8005aa6: e030 b.n 8005b0a } /* Check for the Timeout */ if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U)) 8005aa8: f7fd fc14 bl 80032d4 8005aac: 4602 mov r2, r0 8005aae: 687b ldr r3, [r7, #4] 8005ab0: 1ad3 subs r3, r2, r3 8005ab2: 68ba ldr r2, [r7, #8] 8005ab4: 429a cmp r2, r3 8005ab6: d302 bcc.n 8005abe 8005ab8: 68bb ldr r3, [r7, #8] 8005aba: 2b00 cmp r3, #0 8005abc: d11d bne.n 8005afa { if ((__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_RXNE) == RESET)) 8005abe: 68fb ldr r3, [r7, #12] 8005ac0: 681b ldr r3, [r3, #0] 8005ac2: 695b ldr r3, [r3, #20] 8005ac4: f003 0340 and.w r3, r3, #64 @ 0x40 8005ac8: 2b40 cmp r3, #64 @ 0x40 8005aca: d016 beq.n 8005afa { hi2c->PreviousState = I2C_STATE_NONE; 8005acc: 68fb ldr r3, [r7, #12] 8005ace: 2200 movs r2, #0 8005ad0: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005ad2: 68fb ldr r3, [r7, #12] 8005ad4: 2220 movs r2, #32 8005ad6: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005ada: 68fb ldr r3, [r7, #12] 8005adc: 2200 movs r2, #0 8005ade: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_TIMEOUT; 8005ae2: 68fb ldr r3, [r7, #12] 8005ae4: 6c1b ldr r3, [r3, #64] @ 0x40 8005ae6: f043 0220 orr.w r2, r3, #32 8005aea: 68fb ldr r3, [r7, #12] 8005aec: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8005aee: 68fb ldr r3, [r7, #12] 8005af0: 2200 movs r2, #0 8005af2: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 8005af6: 2301 movs r3, #1 8005af8: e007 b.n 8005b0a while (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_RXNE) == RESET) 8005afa: 68fb ldr r3, [r7, #12] 8005afc: 681b ldr r3, [r3, #0] 8005afe: 695b ldr r3, [r3, #20] 8005b00: f003 0340 and.w r3, r3, #64 @ 0x40 8005b04: 2b40 cmp r3, #64 @ 0x40 8005b06: d1ae bne.n 8005a66 } } } return HAL_OK; 8005b08: 2300 movs r3, #0 } 8005b0a: 4618 mov r0, r3 8005b0c: 3710 adds r7, #16 8005b0e: 46bd mov sp, r7 8005b10: bd80 pop {r7, pc} 08005b12 : * @param hi2c Pointer to a I2C_HandleTypeDef structure that contains * the configuration information for the specified I2C. * @retval HAL status */ static HAL_StatusTypeDef I2C_IsAcknowledgeFailed(I2C_HandleTypeDef *hi2c) { 8005b12: b480 push {r7} 8005b14: b083 sub sp, #12 8005b16: af00 add r7, sp, #0 8005b18: 6078 str r0, [r7, #4] if (__HAL_I2C_GET_FLAG(hi2c, I2C_FLAG_AF) == SET) 8005b1a: 687b ldr r3, [r7, #4] 8005b1c: 681b ldr r3, [r3, #0] 8005b1e: 695b ldr r3, [r3, #20] 8005b20: f403 6380 and.w r3, r3, #1024 @ 0x400 8005b24: f5b3 6f80 cmp.w r3, #1024 @ 0x400 8005b28: d11b bne.n 8005b62 { /* Clear NACKF Flag */ __HAL_I2C_CLEAR_FLAG(hi2c, I2C_FLAG_AF); 8005b2a: 687b ldr r3, [r7, #4] 8005b2c: 681b ldr r3, [r3, #0] 8005b2e: f46f 6280 mvn.w r2, #1024 @ 0x400 8005b32: 615a str r2, [r3, #20] hi2c->PreviousState = I2C_STATE_NONE; 8005b34: 687b ldr r3, [r7, #4] 8005b36: 2200 movs r2, #0 8005b38: 631a str r2, [r3, #48] @ 0x30 hi2c->State = HAL_I2C_STATE_READY; 8005b3a: 687b ldr r3, [r7, #4] 8005b3c: 2220 movs r2, #32 8005b3e: f883 203d strb.w r2, [r3, #61] @ 0x3d hi2c->Mode = HAL_I2C_MODE_NONE; 8005b42: 687b ldr r3, [r7, #4] 8005b44: 2200 movs r2, #0 8005b46: f883 203e strb.w r2, [r3, #62] @ 0x3e hi2c->ErrorCode |= HAL_I2C_ERROR_AF; 8005b4a: 687b ldr r3, [r7, #4] 8005b4c: 6c1b ldr r3, [r3, #64] @ 0x40 8005b4e: f043 0204 orr.w r2, r3, #4 8005b52: 687b ldr r3, [r7, #4] 8005b54: 641a str r2, [r3, #64] @ 0x40 /* Process Unlocked */ __HAL_UNLOCK(hi2c); 8005b56: 687b ldr r3, [r7, #4] 8005b58: 2200 movs r2, #0 8005b5a: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_ERROR; 8005b5e: 2301 movs r3, #1 8005b60: e000 b.n 8005b64 } return HAL_OK; 8005b62: 2300 movs r3, #0 } 8005b64: 4618 mov r0, r3 8005b66: 370c adds r7, #12 8005b68: 46bd mov sp, r7 8005b6a: bc80 pop {r7} 8005b6c: 4770 bx lr ... 08005b70 : * supported by this macro. User should request a transition to HSE Off * first and then HSE On or HSE Bypass. * @retval HAL status */ HAL_StatusTypeDef HAL_RCC_OscConfig(RCC_OscInitTypeDef *RCC_OscInitStruct) { 8005b70: b580 push {r7, lr} 8005b72: b086 sub sp, #24 8005b74: af00 add r7, sp, #0 8005b76: 6078 str r0, [r7, #4] uint32_t tickstart; uint32_t pll_config; /* Check Null pointer */ if (RCC_OscInitStruct == NULL) 8005b78: 687b ldr r3, [r7, #4] 8005b7a: 2b00 cmp r3, #0 8005b7c: d101 bne.n 8005b82 { return HAL_ERROR; 8005b7e: 2301 movs r3, #1 8005b80: e272 b.n 8006068 /* Check the parameters */ assert_param(IS_RCC_OSCILLATORTYPE(RCC_OscInitStruct->OscillatorType)); /*------------------------------- HSE Configuration ------------------------*/ if (((RCC_OscInitStruct->OscillatorType) & RCC_OSCILLATORTYPE_HSE) == RCC_OSCILLATORTYPE_HSE) 8005b82: 687b ldr r3, [r7, #4] 8005b84: 681b ldr r3, [r3, #0] 8005b86: f003 0301 and.w r3, r3, #1 8005b8a: 2b00 cmp r3, #0 8005b8c: f000 8087 beq.w 8005c9e { /* Check the parameters */ assert_param(IS_RCC_HSE(RCC_OscInitStruct->HSEState)); /* When the HSE is used as system clock or clock source for PLL in these cases it is not allowed to be disabled */ if ((__HAL_RCC_GET_SYSCLK_SOURCE() == RCC_SYSCLKSOURCE_STATUS_HSE) 8005b90: 4b92 ldr r3, [pc, #584] @ (8005ddc ) 8005b92: 685b ldr r3, [r3, #4] 8005b94: f003 030c and.w r3, r3, #12 8005b98: 2b04 cmp r3, #4 8005b9a: d00c beq.n 8005bb6 || ((__HAL_RCC_GET_SYSCLK_SOURCE() == RCC_SYSCLKSOURCE_STATUS_PLLCLK) && (__HAL_RCC_GET_PLL_OSCSOURCE() == RCC_PLLSOURCE_HSE))) 8005b9c: 4b8f ldr r3, [pc, #572] @ (8005ddc ) 8005b9e: 685b ldr r3, [r3, #4] 8005ba0: f003 030c and.w r3, r3, #12 8005ba4: 2b08 cmp r3, #8 8005ba6: d112 bne.n 8005bce 8005ba8: 4b8c ldr r3, [pc, #560] @ (8005ddc ) 8005baa: 685b ldr r3, [r3, #4] 8005bac: f403 3380 and.w r3, r3, #65536 @ 0x10000 8005bb0: f5b3 3f80 cmp.w r3, #65536 @ 0x10000 8005bb4: d10b bne.n 8005bce { if ((__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) != RESET) && (RCC_OscInitStruct->HSEState == RCC_HSE_OFF)) 8005bb6: 4b89 ldr r3, [pc, #548] @ (8005ddc ) 8005bb8: 681b ldr r3, [r3, #0] 8005bba: f403 3300 and.w r3, r3, #131072 @ 0x20000 8005bbe: 2b00 cmp r3, #0 8005bc0: d06c beq.n 8005c9c 8005bc2: 687b ldr r3, [r7, #4] 8005bc4: 685b ldr r3, [r3, #4] 8005bc6: 2b00 cmp r3, #0 8005bc8: d168 bne.n 8005c9c { return HAL_ERROR; 8005bca: 2301 movs r3, #1 8005bcc: e24c b.n 8006068 } } else { /* Set the new HSE configuration ---------------------------------------*/ __HAL_RCC_HSE_CONFIG(RCC_OscInitStruct->HSEState); 8005bce: 687b ldr r3, [r7, #4] 8005bd0: 685b ldr r3, [r3, #4] 8005bd2: f5b3 3f80 cmp.w r3, #65536 @ 0x10000 8005bd6: d106 bne.n 8005be6 8005bd8: 4b80 ldr r3, [pc, #512] @ (8005ddc ) 8005bda: 681b ldr r3, [r3, #0] 8005bdc: 4a7f ldr r2, [pc, #508] @ (8005ddc ) 8005bde: f443 3380 orr.w r3, r3, #65536 @ 0x10000 8005be2: 6013 str r3, [r2, #0] 8005be4: e02e b.n 8005c44 8005be6: 687b ldr r3, [r7, #4] 8005be8: 685b ldr r3, [r3, #4] 8005bea: 2b00 cmp r3, #0 8005bec: d10c bne.n 8005c08 8005bee: 4b7b ldr r3, [pc, #492] @ (8005ddc ) 8005bf0: 681b ldr r3, [r3, #0] 8005bf2: 4a7a ldr r2, [pc, #488] @ (8005ddc ) 8005bf4: f423 3380 bic.w r3, r3, #65536 @ 0x10000 8005bf8: 6013 str r3, [r2, #0] 8005bfa: 4b78 ldr r3, [pc, #480] @ (8005ddc ) 8005bfc: 681b ldr r3, [r3, #0] 8005bfe: 4a77 ldr r2, [pc, #476] @ (8005ddc ) 8005c00: f423 2380 bic.w r3, r3, #262144 @ 0x40000 8005c04: 6013 str r3, [r2, #0] 8005c06: e01d b.n 8005c44 8005c08: 687b ldr r3, [r7, #4] 8005c0a: 685b ldr r3, [r3, #4] 8005c0c: f5b3 2fa0 cmp.w r3, #327680 @ 0x50000 8005c10: d10c bne.n 8005c2c 8005c12: 4b72 ldr r3, [pc, #456] @ (8005ddc ) 8005c14: 681b ldr r3, [r3, #0] 8005c16: 4a71 ldr r2, [pc, #452] @ (8005ddc ) 8005c18: f443 2380 orr.w r3, r3, #262144 @ 0x40000 8005c1c: 6013 str r3, [r2, #0] 8005c1e: 4b6f ldr r3, [pc, #444] @ (8005ddc ) 8005c20: 681b ldr r3, [r3, #0] 8005c22: 4a6e ldr r2, [pc, #440] @ (8005ddc ) 8005c24: f443 3380 orr.w r3, r3, #65536 @ 0x10000 8005c28: 6013 str r3, [r2, #0] 8005c2a: e00b b.n 8005c44 8005c2c: 4b6b ldr r3, [pc, #428] @ (8005ddc ) 8005c2e: 681b ldr r3, [r3, #0] 8005c30: 4a6a ldr r2, [pc, #424] @ (8005ddc ) 8005c32: f423 3380 bic.w r3, r3, #65536 @ 0x10000 8005c36: 6013 str r3, [r2, #0] 8005c38: 4b68 ldr r3, [pc, #416] @ (8005ddc ) 8005c3a: 681b ldr r3, [r3, #0] 8005c3c: 4a67 ldr r2, [pc, #412] @ (8005ddc ) 8005c3e: f423 2380 bic.w r3, r3, #262144 @ 0x40000 8005c42: 6013 str r3, [r2, #0] /* Check the HSE State */ if (RCC_OscInitStruct->HSEState != RCC_HSE_OFF) 8005c44: 687b ldr r3, [r7, #4] 8005c46: 685b ldr r3, [r3, #4] 8005c48: 2b00 cmp r3, #0 8005c4a: d013 beq.n 8005c74 { /* Get Start Tick */ tickstart = HAL_GetTick(); 8005c4c: f7fd fb42 bl 80032d4 8005c50: 6138 str r0, [r7, #16] /* Wait till HSE is ready */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) == RESET) 8005c52: e008 b.n 8005c66 { if ((HAL_GetTick() - tickstart) > HSE_TIMEOUT_VALUE) 8005c54: f7fd fb3e bl 80032d4 8005c58: 4602 mov r2, r0 8005c5a: 693b ldr r3, [r7, #16] 8005c5c: 1ad3 subs r3, r2, r3 8005c5e: 2b64 cmp r3, #100 @ 0x64 8005c60: d901 bls.n 8005c66 { return HAL_TIMEOUT; 8005c62: 2303 movs r3, #3 8005c64: e200 b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) == RESET) 8005c66: 4b5d ldr r3, [pc, #372] @ (8005ddc ) 8005c68: 681b ldr r3, [r3, #0] 8005c6a: f403 3300 and.w r3, r3, #131072 @ 0x20000 8005c6e: 2b00 cmp r3, #0 8005c70: d0f0 beq.n 8005c54 8005c72: e014 b.n 8005c9e } } else { /* Get Start Tick */ tickstart = HAL_GetTick(); 8005c74: f7fd fb2e bl 80032d4 8005c78: 6138 str r0, [r7, #16] /* Wait till HSE is disabled */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) != RESET) 8005c7a: e008 b.n 8005c8e { if ((HAL_GetTick() - tickstart) > HSE_TIMEOUT_VALUE) 8005c7c: f7fd fb2a bl 80032d4 8005c80: 4602 mov r2, r0 8005c82: 693b ldr r3, [r7, #16] 8005c84: 1ad3 subs r3, r2, r3 8005c86: 2b64 cmp r3, #100 @ 0x64 8005c88: d901 bls.n 8005c8e { return HAL_TIMEOUT; 8005c8a: 2303 movs r3, #3 8005c8c: e1ec b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) != RESET) 8005c8e: 4b53 ldr r3, [pc, #332] @ (8005ddc ) 8005c90: 681b ldr r3, [r3, #0] 8005c92: f403 3300 and.w r3, r3, #131072 @ 0x20000 8005c96: 2b00 cmp r3, #0 8005c98: d1f0 bne.n 8005c7c 8005c9a: e000 b.n 8005c9e if ((__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) != RESET) && (RCC_OscInitStruct->HSEState == RCC_HSE_OFF)) 8005c9c: bf00 nop } } } } /*----------------------------- HSI Configuration --------------------------*/ if (((RCC_OscInitStruct->OscillatorType) & RCC_OSCILLATORTYPE_HSI) == RCC_OSCILLATORTYPE_HSI) 8005c9e: 687b ldr r3, [r7, #4] 8005ca0: 681b ldr r3, [r3, #0] 8005ca2: f003 0302 and.w r3, r3, #2 8005ca6: 2b00 cmp r3, #0 8005ca8: d063 beq.n 8005d72 /* Check the parameters */ assert_param(IS_RCC_HSI(RCC_OscInitStruct->HSIState)); assert_param(IS_RCC_CALIBRATION_VALUE(RCC_OscInitStruct->HSICalibrationValue)); /* Check if HSI is used as system clock or as PLL source when PLL is selected as system clock */ if ((__HAL_RCC_GET_SYSCLK_SOURCE() == RCC_SYSCLKSOURCE_STATUS_HSI) 8005caa: 4b4c ldr r3, [pc, #304] @ (8005ddc ) 8005cac: 685b ldr r3, [r3, #4] 8005cae: f003 030c and.w r3, r3, #12 8005cb2: 2b00 cmp r3, #0 8005cb4: d00b beq.n 8005cce || ((__HAL_RCC_GET_SYSCLK_SOURCE() == RCC_SYSCLKSOURCE_STATUS_PLLCLK) && (__HAL_RCC_GET_PLL_OSCSOURCE() == RCC_PLLSOURCE_HSI_DIV2))) 8005cb6: 4b49 ldr r3, [pc, #292] @ (8005ddc ) 8005cb8: 685b ldr r3, [r3, #4] 8005cba: f003 030c and.w r3, r3, #12 8005cbe: 2b08 cmp r3, #8 8005cc0: d11c bne.n 8005cfc 8005cc2: 4b46 ldr r3, [pc, #280] @ (8005ddc ) 8005cc4: 685b ldr r3, [r3, #4] 8005cc6: f403 3380 and.w r3, r3, #65536 @ 0x10000 8005cca: 2b00 cmp r3, #0 8005ccc: d116 bne.n 8005cfc { /* When HSI is used as system clock it will not disabled */ if ((__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) != RESET) && (RCC_OscInitStruct->HSIState != RCC_HSI_ON)) 8005cce: 4b43 ldr r3, [pc, #268] @ (8005ddc ) 8005cd0: 681b ldr r3, [r3, #0] 8005cd2: f003 0302 and.w r3, r3, #2 8005cd6: 2b00 cmp r3, #0 8005cd8: d005 beq.n 8005ce6 8005cda: 687b ldr r3, [r7, #4] 8005cdc: 691b ldr r3, [r3, #16] 8005cde: 2b01 cmp r3, #1 8005ce0: d001 beq.n 8005ce6 { return HAL_ERROR; 8005ce2: 2301 movs r3, #1 8005ce4: e1c0 b.n 8006068 } /* Otherwise, just the calibration is allowed */ else { /* Adjusts the Internal High Speed oscillator (HSI) calibration value.*/ __HAL_RCC_HSI_CALIBRATIONVALUE_ADJUST(RCC_OscInitStruct->HSICalibrationValue); 8005ce6: 4b3d ldr r3, [pc, #244] @ (8005ddc ) 8005ce8: 681b ldr r3, [r3, #0] 8005cea: f023 02f8 bic.w r2, r3, #248 @ 0xf8 8005cee: 687b ldr r3, [r7, #4] 8005cf0: 695b ldr r3, [r3, #20] 8005cf2: 00db lsls r3, r3, #3 8005cf4: 4939 ldr r1, [pc, #228] @ (8005ddc ) 8005cf6: 4313 orrs r3, r2 8005cf8: 600b str r3, [r1, #0] if ((__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) != RESET) && (RCC_OscInitStruct->HSIState != RCC_HSI_ON)) 8005cfa: e03a b.n 8005d72 } } else { /* Check the HSI State */ if (RCC_OscInitStruct->HSIState != RCC_HSI_OFF) 8005cfc: 687b ldr r3, [r7, #4] 8005cfe: 691b ldr r3, [r3, #16] 8005d00: 2b00 cmp r3, #0 8005d02: d020 beq.n 8005d46 { /* Enable the Internal High Speed oscillator (HSI). */ __HAL_RCC_HSI_ENABLE(); 8005d04: 4b36 ldr r3, [pc, #216] @ (8005de0 ) 8005d06: 2201 movs r2, #1 8005d08: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8005d0a: f7fd fae3 bl 80032d4 8005d0e: 6138 str r0, [r7, #16] /* Wait till HSI is ready */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) == RESET) 8005d10: e008 b.n 8005d24 { if ((HAL_GetTick() - tickstart) > HSI_TIMEOUT_VALUE) 8005d12: f7fd fadf bl 80032d4 8005d16: 4602 mov r2, r0 8005d18: 693b ldr r3, [r7, #16] 8005d1a: 1ad3 subs r3, r2, r3 8005d1c: 2b02 cmp r3, #2 8005d1e: d901 bls.n 8005d24 { return HAL_TIMEOUT; 8005d20: 2303 movs r3, #3 8005d22: e1a1 b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) == RESET) 8005d24: 4b2d ldr r3, [pc, #180] @ (8005ddc ) 8005d26: 681b ldr r3, [r3, #0] 8005d28: f003 0302 and.w r3, r3, #2 8005d2c: 2b00 cmp r3, #0 8005d2e: d0f0 beq.n 8005d12 } } /* Adjusts the Internal High Speed oscillator (HSI) calibration value.*/ __HAL_RCC_HSI_CALIBRATIONVALUE_ADJUST(RCC_OscInitStruct->HSICalibrationValue); 8005d30: 4b2a ldr r3, [pc, #168] @ (8005ddc ) 8005d32: 681b ldr r3, [r3, #0] 8005d34: f023 02f8 bic.w r2, r3, #248 @ 0xf8 8005d38: 687b ldr r3, [r7, #4] 8005d3a: 695b ldr r3, [r3, #20] 8005d3c: 00db lsls r3, r3, #3 8005d3e: 4927 ldr r1, [pc, #156] @ (8005ddc ) 8005d40: 4313 orrs r3, r2 8005d42: 600b str r3, [r1, #0] 8005d44: e015 b.n 8005d72 } else { /* Disable the Internal High Speed oscillator (HSI). */ __HAL_RCC_HSI_DISABLE(); 8005d46: 4b26 ldr r3, [pc, #152] @ (8005de0 ) 8005d48: 2200 movs r2, #0 8005d4a: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8005d4c: f7fd fac2 bl 80032d4 8005d50: 6138 str r0, [r7, #16] /* Wait till HSI is disabled */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) != RESET) 8005d52: e008 b.n 8005d66 { if ((HAL_GetTick() - tickstart) > HSI_TIMEOUT_VALUE) 8005d54: f7fd fabe bl 80032d4 8005d58: 4602 mov r2, r0 8005d5a: 693b ldr r3, [r7, #16] 8005d5c: 1ad3 subs r3, r2, r3 8005d5e: 2b02 cmp r3, #2 8005d60: d901 bls.n 8005d66 { return HAL_TIMEOUT; 8005d62: 2303 movs r3, #3 8005d64: e180 b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) != RESET) 8005d66: 4b1d ldr r3, [pc, #116] @ (8005ddc ) 8005d68: 681b ldr r3, [r3, #0] 8005d6a: f003 0302 and.w r3, r3, #2 8005d6e: 2b00 cmp r3, #0 8005d70: d1f0 bne.n 8005d54 } } } } /*------------------------------ LSI Configuration -------------------------*/ if (((RCC_OscInitStruct->OscillatorType) & RCC_OSCILLATORTYPE_LSI) == RCC_OSCILLATORTYPE_LSI) 8005d72: 687b ldr r3, [r7, #4] 8005d74: 681b ldr r3, [r3, #0] 8005d76: f003 0308 and.w r3, r3, #8 8005d7a: 2b00 cmp r3, #0 8005d7c: d03a beq.n 8005df4 { /* Check the parameters */ assert_param(IS_RCC_LSI(RCC_OscInitStruct->LSIState)); /* Check the LSI State */ if (RCC_OscInitStruct->LSIState != RCC_LSI_OFF) 8005d7e: 687b ldr r3, [r7, #4] 8005d80: 699b ldr r3, [r3, #24] 8005d82: 2b00 cmp r3, #0 8005d84: d019 beq.n 8005dba { /* Enable the Internal Low Speed oscillator (LSI). */ __HAL_RCC_LSI_ENABLE(); 8005d86: 4b17 ldr r3, [pc, #92] @ (8005de4 ) 8005d88: 2201 movs r2, #1 8005d8a: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8005d8c: f7fd faa2 bl 80032d4 8005d90: 6138 str r0, [r7, #16] /* Wait till LSI is ready */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSIRDY) == RESET) 8005d92: e008 b.n 8005da6 { if ((HAL_GetTick() - tickstart) > LSI_TIMEOUT_VALUE) 8005d94: f7fd fa9e bl 80032d4 8005d98: 4602 mov r2, r0 8005d9a: 693b ldr r3, [r7, #16] 8005d9c: 1ad3 subs r3, r2, r3 8005d9e: 2b02 cmp r3, #2 8005da0: d901 bls.n 8005da6 { return HAL_TIMEOUT; 8005da2: 2303 movs r3, #3 8005da4: e160 b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSIRDY) == RESET) 8005da6: 4b0d ldr r3, [pc, #52] @ (8005ddc ) 8005da8: 6a5b ldr r3, [r3, #36] @ 0x24 8005daa: f003 0302 and.w r3, r3, #2 8005dae: 2b00 cmp r3, #0 8005db0: d0f0 beq.n 8005d94 } } /* To have a fully stabilized clock in the specified range, a software delay of 1ms should be added.*/ RCC_Delay(1); 8005db2: 2001 movs r0, #1 8005db4: f000 fad0 bl 8006358 8005db8: e01c b.n 8005df4 } else { /* Disable the Internal Low Speed oscillator (LSI). */ __HAL_RCC_LSI_DISABLE(); 8005dba: 4b0a ldr r3, [pc, #40] @ (8005de4 ) 8005dbc: 2200 movs r2, #0 8005dbe: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8005dc0: f7fd fa88 bl 80032d4 8005dc4: 6138 str r0, [r7, #16] /* Wait till LSI is disabled */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSIRDY) != RESET) 8005dc6: e00f b.n 8005de8 { if ((HAL_GetTick() - tickstart) > LSI_TIMEOUT_VALUE) 8005dc8: f7fd fa84 bl 80032d4 8005dcc: 4602 mov r2, r0 8005dce: 693b ldr r3, [r7, #16] 8005dd0: 1ad3 subs r3, r2, r3 8005dd2: 2b02 cmp r3, #2 8005dd4: d908 bls.n 8005de8 { return HAL_TIMEOUT; 8005dd6: 2303 movs r3, #3 8005dd8: e146 b.n 8006068 8005dda: bf00 nop 8005ddc: 40021000 .word 0x40021000 8005de0: 42420000 .word 0x42420000 8005de4: 42420480 .word 0x42420480 while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSIRDY) != RESET) 8005de8: 4b92 ldr r3, [pc, #584] @ (8006034 ) 8005dea: 6a5b ldr r3, [r3, #36] @ 0x24 8005dec: f003 0302 and.w r3, r3, #2 8005df0: 2b00 cmp r3, #0 8005df2: d1e9 bne.n 8005dc8 } } } } /*------------------------------ LSE Configuration -------------------------*/ if (((RCC_OscInitStruct->OscillatorType) & RCC_OSCILLATORTYPE_LSE) == RCC_OSCILLATORTYPE_LSE) 8005df4: 687b ldr r3, [r7, #4] 8005df6: 681b ldr r3, [r3, #0] 8005df8: f003 0304 and.w r3, r3, #4 8005dfc: 2b00 cmp r3, #0 8005dfe: f000 80a6 beq.w 8005f4e { FlagStatus pwrclkchanged = RESET; 8005e02: 2300 movs r3, #0 8005e04: 75fb strb r3, [r7, #23] /* Check the parameters */ assert_param(IS_RCC_LSE(RCC_OscInitStruct->LSEState)); /* Update LSE configuration in Backup Domain control register */ /* Requires to enable write access to Backup Domain of necessary */ if (__HAL_RCC_PWR_IS_CLK_DISABLED()) 8005e06: 4b8b ldr r3, [pc, #556] @ (8006034 ) 8005e08: 69db ldr r3, [r3, #28] 8005e0a: f003 5380 and.w r3, r3, #268435456 @ 0x10000000 8005e0e: 2b00 cmp r3, #0 8005e10: d10d bne.n 8005e2e { __HAL_RCC_PWR_CLK_ENABLE(); 8005e12: 4b88 ldr r3, [pc, #544] @ (8006034 ) 8005e14: 69db ldr r3, [r3, #28] 8005e16: 4a87 ldr r2, [pc, #540] @ (8006034 ) 8005e18: f043 5380 orr.w r3, r3, #268435456 @ 0x10000000 8005e1c: 61d3 str r3, [r2, #28] 8005e1e: 4b85 ldr r3, [pc, #532] @ (8006034 ) 8005e20: 69db ldr r3, [r3, #28] 8005e22: f003 5380 and.w r3, r3, #268435456 @ 0x10000000 8005e26: 60bb str r3, [r7, #8] 8005e28: 68bb ldr r3, [r7, #8] pwrclkchanged = SET; 8005e2a: 2301 movs r3, #1 8005e2c: 75fb strb r3, [r7, #23] } if (HAL_IS_BIT_CLR(PWR->CR, PWR_CR_DBP)) 8005e2e: 4b82 ldr r3, [pc, #520] @ (8006038 ) 8005e30: 681b ldr r3, [r3, #0] 8005e32: f403 7380 and.w r3, r3, #256 @ 0x100 8005e36: 2b00 cmp r3, #0 8005e38: d118 bne.n 8005e6c { /* Enable write access to Backup domain */ SET_BIT(PWR->CR, PWR_CR_DBP); 8005e3a: 4b7f ldr r3, [pc, #508] @ (8006038 ) 8005e3c: 681b ldr r3, [r3, #0] 8005e3e: 4a7e ldr r2, [pc, #504] @ (8006038 ) 8005e40: f443 7380 orr.w r3, r3, #256 @ 0x100 8005e44: 6013 str r3, [r2, #0] /* Wait for Backup domain Write protection disable */ tickstart = HAL_GetTick(); 8005e46: f7fd fa45 bl 80032d4 8005e4a: 6138 str r0, [r7, #16] while (HAL_IS_BIT_CLR(PWR->CR, PWR_CR_DBP)) 8005e4c: e008 b.n 8005e60 { if ((HAL_GetTick() - tickstart) > RCC_DBP_TIMEOUT_VALUE) 8005e4e: f7fd fa41 bl 80032d4 8005e52: 4602 mov r2, r0 8005e54: 693b ldr r3, [r7, #16] 8005e56: 1ad3 subs r3, r2, r3 8005e58: 2b64 cmp r3, #100 @ 0x64 8005e5a: d901 bls.n 8005e60 { return HAL_TIMEOUT; 8005e5c: 2303 movs r3, #3 8005e5e: e103 b.n 8006068 while (HAL_IS_BIT_CLR(PWR->CR, PWR_CR_DBP)) 8005e60: 4b75 ldr r3, [pc, #468] @ (8006038 ) 8005e62: 681b ldr r3, [r3, #0] 8005e64: f403 7380 and.w r3, r3, #256 @ 0x100 8005e68: 2b00 cmp r3, #0 8005e6a: d0f0 beq.n 8005e4e } } } /* Set the new LSE configuration -----------------------------------------*/ __HAL_RCC_LSE_CONFIG(RCC_OscInitStruct->LSEState); 8005e6c: 687b ldr r3, [r7, #4] 8005e6e: 68db ldr r3, [r3, #12] 8005e70: 2b01 cmp r3, #1 8005e72: d106 bne.n 8005e82 8005e74: 4b6f ldr r3, [pc, #444] @ (8006034 ) 8005e76: 6a1b ldr r3, [r3, #32] 8005e78: 4a6e ldr r2, [pc, #440] @ (8006034 ) 8005e7a: f043 0301 orr.w r3, r3, #1 8005e7e: 6213 str r3, [r2, #32] 8005e80: e02d b.n 8005ede 8005e82: 687b ldr r3, [r7, #4] 8005e84: 68db ldr r3, [r3, #12] 8005e86: 2b00 cmp r3, #0 8005e88: d10c bne.n 8005ea4 8005e8a: 4b6a ldr r3, [pc, #424] @ (8006034 ) 8005e8c: 6a1b ldr r3, [r3, #32] 8005e8e: 4a69 ldr r2, [pc, #420] @ (8006034 ) 8005e90: f023 0301 bic.w r3, r3, #1 8005e94: 6213 str r3, [r2, #32] 8005e96: 4b67 ldr r3, [pc, #412] @ (8006034 ) 8005e98: 6a1b ldr r3, [r3, #32] 8005e9a: 4a66 ldr r2, [pc, #408] @ (8006034 ) 8005e9c: f023 0304 bic.w r3, r3, #4 8005ea0: 6213 str r3, [r2, #32] 8005ea2: e01c b.n 8005ede 8005ea4: 687b ldr r3, [r7, #4] 8005ea6: 68db ldr r3, [r3, #12] 8005ea8: 2b05 cmp r3, #5 8005eaa: d10c bne.n 8005ec6 8005eac: 4b61 ldr r3, [pc, #388] @ (8006034 ) 8005eae: 6a1b ldr r3, [r3, #32] 8005eb0: 4a60 ldr r2, [pc, #384] @ (8006034 ) 8005eb2: f043 0304 orr.w r3, r3, #4 8005eb6: 6213 str r3, [r2, #32] 8005eb8: 4b5e ldr r3, [pc, #376] @ (8006034 ) 8005eba: 6a1b ldr r3, [r3, #32] 8005ebc: 4a5d ldr r2, [pc, #372] @ (8006034 ) 8005ebe: f043 0301 orr.w r3, r3, #1 8005ec2: 6213 str r3, [r2, #32] 8005ec4: e00b b.n 8005ede 8005ec6: 4b5b ldr r3, [pc, #364] @ (8006034 ) 8005ec8: 6a1b ldr r3, [r3, #32] 8005eca: 4a5a ldr r2, [pc, #360] @ (8006034 ) 8005ecc: f023 0301 bic.w r3, r3, #1 8005ed0: 6213 str r3, [r2, #32] 8005ed2: 4b58 ldr r3, [pc, #352] @ (8006034 ) 8005ed4: 6a1b ldr r3, [r3, #32] 8005ed6: 4a57 ldr r2, [pc, #348] @ (8006034 ) 8005ed8: f023 0304 bic.w r3, r3, #4 8005edc: 6213 str r3, [r2, #32] /* Check the LSE State */ if (RCC_OscInitStruct->LSEState != RCC_LSE_OFF) 8005ede: 687b ldr r3, [r7, #4] 8005ee0: 68db ldr r3, [r3, #12] 8005ee2: 2b00 cmp r3, #0 8005ee4: d015 beq.n 8005f12 { /* Get Start Tick */ tickstart = HAL_GetTick(); 8005ee6: f7fd f9f5 bl 80032d4 8005eea: 6138 str r0, [r7, #16] /* Wait till LSE is ready */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSERDY) == RESET) 8005eec: e00a b.n 8005f04 { if ((HAL_GetTick() - tickstart) > RCC_LSE_TIMEOUT_VALUE) 8005eee: f7fd f9f1 bl 80032d4 8005ef2: 4602 mov r2, r0 8005ef4: 693b ldr r3, [r7, #16] 8005ef6: 1ad3 subs r3, r2, r3 8005ef8: f241 3288 movw r2, #5000 @ 0x1388 8005efc: 4293 cmp r3, r2 8005efe: d901 bls.n 8005f04 { return HAL_TIMEOUT; 8005f00: 2303 movs r3, #3 8005f02: e0b1 b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSERDY) == RESET) 8005f04: 4b4b ldr r3, [pc, #300] @ (8006034 ) 8005f06: 6a1b ldr r3, [r3, #32] 8005f08: f003 0302 and.w r3, r3, #2 8005f0c: 2b00 cmp r3, #0 8005f0e: d0ee beq.n 8005eee 8005f10: e014 b.n 8005f3c } } else { /* Get Start Tick */ tickstart = HAL_GetTick(); 8005f12: f7fd f9df bl 80032d4 8005f16: 6138 str r0, [r7, #16] /* Wait till LSE is disabled */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSERDY) != RESET) 8005f18: e00a b.n 8005f30 { if ((HAL_GetTick() - tickstart) > RCC_LSE_TIMEOUT_VALUE) 8005f1a: f7fd f9db bl 80032d4 8005f1e: 4602 mov r2, r0 8005f20: 693b ldr r3, [r7, #16] 8005f22: 1ad3 subs r3, r2, r3 8005f24: f241 3288 movw r2, #5000 @ 0x1388 8005f28: 4293 cmp r3, r2 8005f2a: d901 bls.n 8005f30 { return HAL_TIMEOUT; 8005f2c: 2303 movs r3, #3 8005f2e: e09b b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSERDY) != RESET) 8005f30: 4b40 ldr r3, [pc, #256] @ (8006034 ) 8005f32: 6a1b ldr r3, [r3, #32] 8005f34: f003 0302 and.w r3, r3, #2 8005f38: 2b00 cmp r3, #0 8005f3a: d1ee bne.n 8005f1a } } } /* Require to disable power clock if necessary */ if (pwrclkchanged == SET) 8005f3c: 7dfb ldrb r3, [r7, #23] 8005f3e: 2b01 cmp r3, #1 8005f40: d105 bne.n 8005f4e { __HAL_RCC_PWR_CLK_DISABLE(); 8005f42: 4b3c ldr r3, [pc, #240] @ (8006034 ) 8005f44: 69db ldr r3, [r3, #28] 8005f46: 4a3b ldr r2, [pc, #236] @ (8006034 ) 8005f48: f023 5380 bic.w r3, r3, #268435456 @ 0x10000000 8005f4c: 61d3 str r3, [r2, #28] #endif /* RCC_CR_PLL2ON */ /*-------------------------------- PLL Configuration -----------------------*/ /* Check the parameters */ assert_param(IS_RCC_PLL(RCC_OscInitStruct->PLL.PLLState)); if ((RCC_OscInitStruct->PLL.PLLState) != RCC_PLL_NONE) 8005f4e: 687b ldr r3, [r7, #4] 8005f50: 69db ldr r3, [r3, #28] 8005f52: 2b00 cmp r3, #0 8005f54: f000 8087 beq.w 8006066 { /* Check if the PLL is used as system clock or not */ if (__HAL_RCC_GET_SYSCLK_SOURCE() != RCC_SYSCLKSOURCE_STATUS_PLLCLK) 8005f58: 4b36 ldr r3, [pc, #216] @ (8006034 ) 8005f5a: 685b ldr r3, [r3, #4] 8005f5c: f003 030c and.w r3, r3, #12 8005f60: 2b08 cmp r3, #8 8005f62: d061 beq.n 8006028 { if ((RCC_OscInitStruct->PLL.PLLState) == RCC_PLL_ON) 8005f64: 687b ldr r3, [r7, #4] 8005f66: 69db ldr r3, [r3, #28] 8005f68: 2b02 cmp r3, #2 8005f6a: d146 bne.n 8005ffa /* Check the parameters */ assert_param(IS_RCC_PLLSOURCE(RCC_OscInitStruct->PLL.PLLSource)); assert_param(IS_RCC_PLL_MUL(RCC_OscInitStruct->PLL.PLLMUL)); /* Disable the main PLL. */ __HAL_RCC_PLL_DISABLE(); 8005f6c: 4b33 ldr r3, [pc, #204] @ (800603c ) 8005f6e: 2200 movs r2, #0 8005f70: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8005f72: f7fd f9af bl 80032d4 8005f76: 6138 str r0, [r7, #16] /* Wait till PLL is disabled */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) != RESET) 8005f78: e008 b.n 8005f8c { if ((HAL_GetTick() - tickstart) > PLL_TIMEOUT_VALUE) 8005f7a: f7fd f9ab bl 80032d4 8005f7e: 4602 mov r2, r0 8005f80: 693b ldr r3, [r7, #16] 8005f82: 1ad3 subs r3, r2, r3 8005f84: 2b02 cmp r3, #2 8005f86: d901 bls.n 8005f8c { return HAL_TIMEOUT; 8005f88: 2303 movs r3, #3 8005f8a: e06d b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) != RESET) 8005f8c: 4b29 ldr r3, [pc, #164] @ (8006034 ) 8005f8e: 681b ldr r3, [r3, #0] 8005f90: f003 7300 and.w r3, r3, #33554432 @ 0x2000000 8005f94: 2b00 cmp r3, #0 8005f96: d1f0 bne.n 8005f7a } } /* Configure the HSE prediv factor --------------------------------*/ /* It can be written only when the PLL is disabled. Not used in PLL source is different than HSE */ if (RCC_OscInitStruct->PLL.PLLSource == RCC_PLLSOURCE_HSE) 8005f98: 687b ldr r3, [r7, #4] 8005f9a: 6a1b ldr r3, [r3, #32] 8005f9c: f5b3 3f80 cmp.w r3, #65536 @ 0x10000 8005fa0: d108 bne.n 8005fb4 /* Set PREDIV1 source */ SET_BIT(RCC->CFGR2, RCC_OscInitStruct->Prediv1Source); #endif /* RCC_CFGR2_PREDIV1SRC */ /* Set PREDIV1 Value */ __HAL_RCC_HSE_PREDIV_CONFIG(RCC_OscInitStruct->HSEPredivValue); 8005fa2: 4b24 ldr r3, [pc, #144] @ (8006034 ) 8005fa4: 685b ldr r3, [r3, #4] 8005fa6: f423 3200 bic.w r2, r3, #131072 @ 0x20000 8005faa: 687b ldr r3, [r7, #4] 8005fac: 689b ldr r3, [r3, #8] 8005fae: 4921 ldr r1, [pc, #132] @ (8006034 ) 8005fb0: 4313 orrs r3, r2 8005fb2: 604b str r3, [r1, #4] } /* Configure the main PLL clock source and multiplication factors. */ __HAL_RCC_PLL_CONFIG(RCC_OscInitStruct->PLL.PLLSource, 8005fb4: 4b1f ldr r3, [pc, #124] @ (8006034 ) 8005fb6: 685b ldr r3, [r3, #4] 8005fb8: f423 1274 bic.w r2, r3, #3997696 @ 0x3d0000 8005fbc: 687b ldr r3, [r7, #4] 8005fbe: 6a19 ldr r1, [r3, #32] 8005fc0: 687b ldr r3, [r7, #4] 8005fc2: 6a5b ldr r3, [r3, #36] @ 0x24 8005fc4: 430b orrs r3, r1 8005fc6: 491b ldr r1, [pc, #108] @ (8006034 ) 8005fc8: 4313 orrs r3, r2 8005fca: 604b str r3, [r1, #4] RCC_OscInitStruct->PLL.PLLMUL); /* Enable the main PLL. */ __HAL_RCC_PLL_ENABLE(); 8005fcc: 4b1b ldr r3, [pc, #108] @ (800603c ) 8005fce: 2201 movs r2, #1 8005fd0: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8005fd2: f7fd f97f bl 80032d4 8005fd6: 6138 str r0, [r7, #16] /* Wait till PLL is ready */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) == RESET) 8005fd8: e008 b.n 8005fec { if ((HAL_GetTick() - tickstart) > PLL_TIMEOUT_VALUE) 8005fda: f7fd f97b bl 80032d4 8005fde: 4602 mov r2, r0 8005fe0: 693b ldr r3, [r7, #16] 8005fe2: 1ad3 subs r3, r2, r3 8005fe4: 2b02 cmp r3, #2 8005fe6: d901 bls.n 8005fec { return HAL_TIMEOUT; 8005fe8: 2303 movs r3, #3 8005fea: e03d b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) == RESET) 8005fec: 4b11 ldr r3, [pc, #68] @ (8006034 ) 8005fee: 681b ldr r3, [r3, #0] 8005ff0: f003 7300 and.w r3, r3, #33554432 @ 0x2000000 8005ff4: 2b00 cmp r3, #0 8005ff6: d0f0 beq.n 8005fda 8005ff8: e035 b.n 8006066 } } else { /* Disable the main PLL. */ __HAL_RCC_PLL_DISABLE(); 8005ffa: 4b10 ldr r3, [pc, #64] @ (800603c ) 8005ffc: 2200 movs r2, #0 8005ffe: 601a str r2, [r3, #0] /* Get Start Tick */ tickstart = HAL_GetTick(); 8006000: f7fd f968 bl 80032d4 8006004: 6138 str r0, [r7, #16] /* Wait till PLL is disabled */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) != RESET) 8006006: e008 b.n 800601a { if ((HAL_GetTick() - tickstart) > PLL_TIMEOUT_VALUE) 8006008: f7fd f964 bl 80032d4 800600c: 4602 mov r2, r0 800600e: 693b ldr r3, [r7, #16] 8006010: 1ad3 subs r3, r2, r3 8006012: 2b02 cmp r3, #2 8006014: d901 bls.n 800601a { return HAL_TIMEOUT; 8006016: 2303 movs r3, #3 8006018: e026 b.n 8006068 while (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) != RESET) 800601a: 4b06 ldr r3, [pc, #24] @ (8006034 ) 800601c: 681b ldr r3, [r3, #0] 800601e: f003 7300 and.w r3, r3, #33554432 @ 0x2000000 8006022: 2b00 cmp r3, #0 8006024: d1f0 bne.n 8006008 8006026: e01e b.n 8006066 } } else { /* Check if there is a request to disable the PLL used as System clock source */ if ((RCC_OscInitStruct->PLL.PLLState) == RCC_PLL_OFF) 8006028: 687b ldr r3, [r7, #4] 800602a: 69db ldr r3, [r3, #28] 800602c: 2b01 cmp r3, #1 800602e: d107 bne.n 8006040 { return HAL_ERROR; 8006030: 2301 movs r3, #1 8006032: e019 b.n 8006068 8006034: 40021000 .word 0x40021000 8006038: 40007000 .word 0x40007000 800603c: 42420060 .word 0x42420060 } else { /* Do not return HAL_ERROR if request repeats the current configuration */ pll_config = RCC->CFGR; 8006040: 4b0b ldr r3, [pc, #44] @ (8006070 ) 8006042: 685b ldr r3, [r3, #4] 8006044: 60fb str r3, [r7, #12] if ((READ_BIT(pll_config, RCC_CFGR_PLLSRC) != RCC_OscInitStruct->PLL.PLLSource) || 8006046: 68fb ldr r3, [r7, #12] 8006048: f403 3280 and.w r2, r3, #65536 @ 0x10000 800604c: 687b ldr r3, [r7, #4] 800604e: 6a1b ldr r3, [r3, #32] 8006050: 429a cmp r2, r3 8006052: d106 bne.n 8006062 (READ_BIT(pll_config, RCC_CFGR_PLLMULL) != RCC_OscInitStruct->PLL.PLLMUL)) 8006054: 68fb ldr r3, [r7, #12] 8006056: f403 1270 and.w r2, r3, #3932160 @ 0x3c0000 800605a: 687b ldr r3, [r7, #4] 800605c: 6a5b ldr r3, [r3, #36] @ 0x24 if ((READ_BIT(pll_config, RCC_CFGR_PLLSRC) != RCC_OscInitStruct->PLL.PLLSource) || 800605e: 429a cmp r2, r3 8006060: d001 beq.n 8006066 { return HAL_ERROR; 8006062: 2301 movs r3, #1 8006064: e000 b.n 8006068 } } } } return HAL_OK; 8006066: 2300 movs r3, #0 } 8006068: 4618 mov r0, r3 800606a: 3718 adds r7, #24 800606c: 46bd mov sp, r7 800606e: bd80 pop {r7, pc} 8006070: 40021000 .word 0x40021000 08006074 : * You can use @ref HAL_RCC_GetClockConfig() function to know which clock is * currently used as system clock source. * @retval HAL status */ HAL_StatusTypeDef HAL_RCC_ClockConfig(RCC_ClkInitTypeDef *RCC_ClkInitStruct, uint32_t FLatency) { 8006074: b580 push {r7, lr} 8006076: b084 sub sp, #16 8006078: af00 add r7, sp, #0 800607a: 6078 str r0, [r7, #4] 800607c: 6039 str r1, [r7, #0] uint32_t tickstart; /* Check Null pointer */ if (RCC_ClkInitStruct == NULL) 800607e: 687b ldr r3, [r7, #4] 8006080: 2b00 cmp r3, #0 8006082: d101 bne.n 8006088 { return HAL_ERROR; 8006084: 2301 movs r3, #1 8006086: e0d0 b.n 800622a must be correctly programmed according to the frequency of the CPU clock (HCLK) of the device. */ #if defined(FLASH_ACR_LATENCY) /* Increasing the number of wait states because of higher CPU frequency */ if (FLatency > __HAL_FLASH_GET_LATENCY()) 8006088: 4b6a ldr r3, [pc, #424] @ (8006234 ) 800608a: 681b ldr r3, [r3, #0] 800608c: f003 0307 and.w r3, r3, #7 8006090: 683a ldr r2, [r7, #0] 8006092: 429a cmp r2, r3 8006094: d910 bls.n 80060b8 { /* Program the new number of wait states to the LATENCY bits in the FLASH_ACR register */ __HAL_FLASH_SET_LATENCY(FLatency); 8006096: 4b67 ldr r3, [pc, #412] @ (8006234 ) 8006098: 681b ldr r3, [r3, #0] 800609a: f023 0207 bic.w r2, r3, #7 800609e: 4965 ldr r1, [pc, #404] @ (8006234 ) 80060a0: 683b ldr r3, [r7, #0] 80060a2: 4313 orrs r3, r2 80060a4: 600b str r3, [r1, #0] /* Check that the new number of wait states is taken into account to access the Flash memory by reading the FLASH_ACR register */ if (__HAL_FLASH_GET_LATENCY() != FLatency) 80060a6: 4b63 ldr r3, [pc, #396] @ (8006234 ) 80060a8: 681b ldr r3, [r3, #0] 80060aa: f003 0307 and.w r3, r3, #7 80060ae: 683a ldr r2, [r7, #0] 80060b0: 429a cmp r2, r3 80060b2: d001 beq.n 80060b8 { return HAL_ERROR; 80060b4: 2301 movs r3, #1 80060b6: e0b8 b.n 800622a } } #endif /* FLASH_ACR_LATENCY */ /*-------------------------- HCLK Configuration --------------------------*/ if (((RCC_ClkInitStruct->ClockType) & RCC_CLOCKTYPE_HCLK) == RCC_CLOCKTYPE_HCLK) 80060b8: 687b ldr r3, [r7, #4] 80060ba: 681b ldr r3, [r3, #0] 80060bc: f003 0302 and.w r3, r3, #2 80060c0: 2b00 cmp r3, #0 80060c2: d020 beq.n 8006106 { /* Set the highest APBx dividers in order to ensure that we do not go through a non-spec phase whatever we decrease or increase HCLK. */ if (((RCC_ClkInitStruct->ClockType) & RCC_CLOCKTYPE_PCLK1) == RCC_CLOCKTYPE_PCLK1) 80060c4: 687b ldr r3, [r7, #4] 80060c6: 681b ldr r3, [r3, #0] 80060c8: f003 0304 and.w r3, r3, #4 80060cc: 2b00 cmp r3, #0 80060ce: d005 beq.n 80060dc { MODIFY_REG(RCC->CFGR, RCC_CFGR_PPRE1, RCC_HCLK_DIV16); 80060d0: 4b59 ldr r3, [pc, #356] @ (8006238 ) 80060d2: 685b ldr r3, [r3, #4] 80060d4: 4a58 ldr r2, [pc, #352] @ (8006238 ) 80060d6: f443 63e0 orr.w r3, r3, #1792 @ 0x700 80060da: 6053 str r3, [r2, #4] } if (((RCC_ClkInitStruct->ClockType) & RCC_CLOCKTYPE_PCLK2) == RCC_CLOCKTYPE_PCLK2) 80060dc: 687b ldr r3, [r7, #4] 80060de: 681b ldr r3, [r3, #0] 80060e0: f003 0308 and.w r3, r3, #8 80060e4: 2b00 cmp r3, #0 80060e6: d005 beq.n 80060f4 { MODIFY_REG(RCC->CFGR, RCC_CFGR_PPRE2, (RCC_HCLK_DIV16 << 3)); 80060e8: 4b53 ldr r3, [pc, #332] @ (8006238 ) 80060ea: 685b ldr r3, [r3, #4] 80060ec: 4a52 ldr r2, [pc, #328] @ (8006238 ) 80060ee: f443 5360 orr.w r3, r3, #14336 @ 0x3800 80060f2: 6053 str r3, [r2, #4] } /* Set the new HCLK clock divider */ assert_param(IS_RCC_HCLK(RCC_ClkInitStruct->AHBCLKDivider)); MODIFY_REG(RCC->CFGR, RCC_CFGR_HPRE, RCC_ClkInitStruct->AHBCLKDivider); 80060f4: 4b50 ldr r3, [pc, #320] @ (8006238 ) 80060f6: 685b ldr r3, [r3, #4] 80060f8: f023 02f0 bic.w r2, r3, #240 @ 0xf0 80060fc: 687b ldr r3, [r7, #4] 80060fe: 689b ldr r3, [r3, #8] 8006100: 494d ldr r1, [pc, #308] @ (8006238 ) 8006102: 4313 orrs r3, r2 8006104: 604b str r3, [r1, #4] } /*------------------------- SYSCLK Configuration ---------------------------*/ if (((RCC_ClkInitStruct->ClockType) & RCC_CLOCKTYPE_SYSCLK) == RCC_CLOCKTYPE_SYSCLK) 8006106: 687b ldr r3, [r7, #4] 8006108: 681b ldr r3, [r3, #0] 800610a: f003 0301 and.w r3, r3, #1 800610e: 2b00 cmp r3, #0 8006110: d040 beq.n 8006194 { assert_param(IS_RCC_SYSCLKSOURCE(RCC_ClkInitStruct->SYSCLKSource)); /* HSE is selected as System Clock Source */ if (RCC_ClkInitStruct->SYSCLKSource == RCC_SYSCLKSOURCE_HSE) 8006112: 687b ldr r3, [r7, #4] 8006114: 685b ldr r3, [r3, #4] 8006116: 2b01 cmp r3, #1 8006118: d107 bne.n 800612a { /* Check the HSE ready flag */ if (__HAL_RCC_GET_FLAG(RCC_FLAG_HSERDY) == RESET) 800611a: 4b47 ldr r3, [pc, #284] @ (8006238 ) 800611c: 681b ldr r3, [r3, #0] 800611e: f403 3300 and.w r3, r3, #131072 @ 0x20000 8006122: 2b00 cmp r3, #0 8006124: d115 bne.n 8006152 { return HAL_ERROR; 8006126: 2301 movs r3, #1 8006128: e07f b.n 800622a } } /* PLL is selected as System Clock Source */ else if (RCC_ClkInitStruct->SYSCLKSource == RCC_SYSCLKSOURCE_PLLCLK) 800612a: 687b ldr r3, [r7, #4] 800612c: 685b ldr r3, [r3, #4] 800612e: 2b02 cmp r3, #2 8006130: d107 bne.n 8006142 { /* Check the PLL ready flag */ if (__HAL_RCC_GET_FLAG(RCC_FLAG_PLLRDY) == RESET) 8006132: 4b41 ldr r3, [pc, #260] @ (8006238 ) 8006134: 681b ldr r3, [r3, #0] 8006136: f003 7300 and.w r3, r3, #33554432 @ 0x2000000 800613a: 2b00 cmp r3, #0 800613c: d109 bne.n 8006152 { return HAL_ERROR; 800613e: 2301 movs r3, #1 8006140: e073 b.n 800622a } /* HSI is selected as System Clock Source */ else { /* Check the HSI ready flag */ if (__HAL_RCC_GET_FLAG(RCC_FLAG_HSIRDY) == RESET) 8006142: 4b3d ldr r3, [pc, #244] @ (8006238 ) 8006144: 681b ldr r3, [r3, #0] 8006146: f003 0302 and.w r3, r3, #2 800614a: 2b00 cmp r3, #0 800614c: d101 bne.n 8006152 { return HAL_ERROR; 800614e: 2301 movs r3, #1 8006150: e06b b.n 800622a } } __HAL_RCC_SYSCLK_CONFIG(RCC_ClkInitStruct->SYSCLKSource); 8006152: 4b39 ldr r3, [pc, #228] @ (8006238 ) 8006154: 685b ldr r3, [r3, #4] 8006156: f023 0203 bic.w r2, r3, #3 800615a: 687b ldr r3, [r7, #4] 800615c: 685b ldr r3, [r3, #4] 800615e: 4936 ldr r1, [pc, #216] @ (8006238 ) 8006160: 4313 orrs r3, r2 8006162: 604b str r3, [r1, #4] /* Get Start Tick */ tickstart = HAL_GetTick(); 8006164: f7fd f8b6 bl 80032d4 8006168: 60f8 str r0, [r7, #12] while (__HAL_RCC_GET_SYSCLK_SOURCE() != (RCC_ClkInitStruct->SYSCLKSource << RCC_CFGR_SWS_Pos)) 800616a: e00a b.n 8006182 { if ((HAL_GetTick() - tickstart) > CLOCKSWITCH_TIMEOUT_VALUE) 800616c: f7fd f8b2 bl 80032d4 8006170: 4602 mov r2, r0 8006172: 68fb ldr r3, [r7, #12] 8006174: 1ad3 subs r3, r2, r3 8006176: f241 3288 movw r2, #5000 @ 0x1388 800617a: 4293 cmp r3, r2 800617c: d901 bls.n 8006182 { return HAL_TIMEOUT; 800617e: 2303 movs r3, #3 8006180: e053 b.n 800622a while (__HAL_RCC_GET_SYSCLK_SOURCE() != (RCC_ClkInitStruct->SYSCLKSource << RCC_CFGR_SWS_Pos)) 8006182: 4b2d ldr r3, [pc, #180] @ (8006238 ) 8006184: 685b ldr r3, [r3, #4] 8006186: f003 020c and.w r2, r3, #12 800618a: 687b ldr r3, [r7, #4] 800618c: 685b ldr r3, [r3, #4] 800618e: 009b lsls r3, r3, #2 8006190: 429a cmp r2, r3 8006192: d1eb bne.n 800616c } } #if defined(FLASH_ACR_LATENCY) /* Decreasing the number of wait states because of lower CPU frequency */ if (FLatency < __HAL_FLASH_GET_LATENCY()) 8006194: 4b27 ldr r3, [pc, #156] @ (8006234 ) 8006196: 681b ldr r3, [r3, #0] 8006198: f003 0307 and.w r3, r3, #7 800619c: 683a ldr r2, [r7, #0] 800619e: 429a cmp r2, r3 80061a0: d210 bcs.n 80061c4 { /* Program the new number of wait states to the LATENCY bits in the FLASH_ACR register */ __HAL_FLASH_SET_LATENCY(FLatency); 80061a2: 4b24 ldr r3, [pc, #144] @ (8006234 ) 80061a4: 681b ldr r3, [r3, #0] 80061a6: f023 0207 bic.w r2, r3, #7 80061aa: 4922 ldr r1, [pc, #136] @ (8006234 ) 80061ac: 683b ldr r3, [r7, #0] 80061ae: 4313 orrs r3, r2 80061b0: 600b str r3, [r1, #0] /* Check that the new number of wait states is taken into account to access the Flash memory by reading the FLASH_ACR register */ if (__HAL_FLASH_GET_LATENCY() != FLatency) 80061b2: 4b20 ldr r3, [pc, #128] @ (8006234 ) 80061b4: 681b ldr r3, [r3, #0] 80061b6: f003 0307 and.w r3, r3, #7 80061ba: 683a ldr r2, [r7, #0] 80061bc: 429a cmp r2, r3 80061be: d001 beq.n 80061c4 { return HAL_ERROR; 80061c0: 2301 movs r3, #1 80061c2: e032 b.n 800622a } } #endif /* FLASH_ACR_LATENCY */ /*-------------------------- PCLK1 Configuration ---------------------------*/ if (((RCC_ClkInitStruct->ClockType) & RCC_CLOCKTYPE_PCLK1) == RCC_CLOCKTYPE_PCLK1) 80061c4: 687b ldr r3, [r7, #4] 80061c6: 681b ldr r3, [r3, #0] 80061c8: f003 0304 and.w r3, r3, #4 80061cc: 2b00 cmp r3, #0 80061ce: d008 beq.n 80061e2 { assert_param(IS_RCC_PCLK(RCC_ClkInitStruct->APB1CLKDivider)); MODIFY_REG(RCC->CFGR, RCC_CFGR_PPRE1, RCC_ClkInitStruct->APB1CLKDivider); 80061d0: 4b19 ldr r3, [pc, #100] @ (8006238 ) 80061d2: 685b ldr r3, [r3, #4] 80061d4: f423 62e0 bic.w r2, r3, #1792 @ 0x700 80061d8: 687b ldr r3, [r7, #4] 80061da: 68db ldr r3, [r3, #12] 80061dc: 4916 ldr r1, [pc, #88] @ (8006238 ) 80061de: 4313 orrs r3, r2 80061e0: 604b str r3, [r1, #4] } /*-------------------------- PCLK2 Configuration ---------------------------*/ if (((RCC_ClkInitStruct->ClockType) & RCC_CLOCKTYPE_PCLK2) == RCC_CLOCKTYPE_PCLK2) 80061e2: 687b ldr r3, [r7, #4] 80061e4: 681b ldr r3, [r3, #0] 80061e6: f003 0308 and.w r3, r3, #8 80061ea: 2b00 cmp r3, #0 80061ec: d009 beq.n 8006202 { assert_param(IS_RCC_PCLK(RCC_ClkInitStruct->APB2CLKDivider)); MODIFY_REG(RCC->CFGR, RCC_CFGR_PPRE2, ((RCC_ClkInitStruct->APB2CLKDivider) << 3)); 80061ee: 4b12 ldr r3, [pc, #72] @ (8006238 ) 80061f0: 685b ldr r3, [r3, #4] 80061f2: f423 5260 bic.w r2, r3, #14336 @ 0x3800 80061f6: 687b ldr r3, [r7, #4] 80061f8: 691b ldr r3, [r3, #16] 80061fa: 00db lsls r3, r3, #3 80061fc: 490e ldr r1, [pc, #56] @ (8006238 ) 80061fe: 4313 orrs r3, r2 8006200: 604b str r3, [r1, #4] } /* Update the SystemCoreClock global variable */ SystemCoreClock = HAL_RCC_GetSysClockFreq() >> AHBPrescTable[(RCC->CFGR & RCC_CFGR_HPRE) >> RCC_CFGR_HPRE_Pos]; 8006202: f000 f821 bl 8006248 8006206: 4602 mov r2, r0 8006208: 4b0b ldr r3, [pc, #44] @ (8006238 ) 800620a: 685b ldr r3, [r3, #4] 800620c: 091b lsrs r3, r3, #4 800620e: f003 030f and.w r3, r3, #15 8006212: 490a ldr r1, [pc, #40] @ (800623c ) 8006214: 5ccb ldrb r3, [r1, r3] 8006216: fa22 f303 lsr.w r3, r2, r3 800621a: 4a09 ldr r2, [pc, #36] @ (8006240 ) 800621c: 6013 str r3, [r2, #0] /* Configure the source of time base considering new system clocks settings*/ HAL_InitTick(uwTickPrio); 800621e: 4b09 ldr r3, [pc, #36] @ (8006244 ) 8006220: 681b ldr r3, [r3, #0] 8006222: 4618 mov r0, r3 8006224: f7fd f814 bl 8003250 return HAL_OK; 8006228: 2300 movs r3, #0 } 800622a: 4618 mov r0, r3 800622c: 3710 adds r7, #16 800622e: 46bd mov sp, r7 8006230: bd80 pop {r7, pc} 8006232: bf00 nop 8006234: 40022000 .word 0x40022000 8006238: 40021000 .word 0x40021000 800623c: 08007a60 .word 0x08007a60 8006240: 20000024 .word 0x20000024 8006244: 20000028 .word 0x20000028 08006248 : * right SYSCLK value. Otherwise, any configuration based on this function will be incorrect. * * @retval SYSCLK frequency */ uint32_t HAL_RCC_GetSysClockFreq(void) { 8006248: b480 push {r7} 800624a: b087 sub sp, #28 800624c: af00 add r7, sp, #0 #else static const uint8_t aPredivFactorTable[2U] = {1, 2}; #endif /*RCC_CFGR2_PREDIV1*/ #endif uint32_t tmpreg = 0U, prediv = 0U, pllclk = 0U, pllmul = 0U; 800624e: 2300 movs r3, #0 8006250: 60fb str r3, [r7, #12] 8006252: 2300 movs r3, #0 8006254: 60bb str r3, [r7, #8] 8006256: 2300 movs r3, #0 8006258: 617b str r3, [r7, #20] 800625a: 2300 movs r3, #0 800625c: 607b str r3, [r7, #4] uint32_t sysclockfreq = 0U; 800625e: 2300 movs r3, #0 8006260: 613b str r3, [r7, #16] #if defined(RCC_CFGR2_PREDIV1SRC) uint32_t prediv2 = 0U, pll2mul = 0U; #endif /*RCC_CFGR2_PREDIV1SRC*/ tmpreg = RCC->CFGR; 8006262: 4b1e ldr r3, [pc, #120] @ (80062dc ) 8006264: 685b ldr r3, [r3, #4] 8006266: 60fb str r3, [r7, #12] /* Get SYSCLK source -------------------------------------------------------*/ switch (tmpreg & RCC_CFGR_SWS) 8006268: 68fb ldr r3, [r7, #12] 800626a: f003 030c and.w r3, r3, #12 800626e: 2b04 cmp r3, #4 8006270: d002 beq.n 8006278 8006272: 2b08 cmp r3, #8 8006274: d003 beq.n 800627e 8006276: e027 b.n 80062c8 { case RCC_SYSCLKSOURCE_STATUS_HSE: /* HSE used as system clock */ { sysclockfreq = HSE_VALUE; 8006278: 4b19 ldr r3, [pc, #100] @ (80062e0 ) 800627a: 613b str r3, [r7, #16] break; 800627c: e027 b.n 80062ce } case RCC_SYSCLKSOURCE_STATUS_PLLCLK: /* PLL used as system clock */ { pllmul = aPLLMULFactorTable[(uint32_t)(tmpreg & RCC_CFGR_PLLMULL) >> RCC_CFGR_PLLMULL_Pos]; 800627e: 68fb ldr r3, [r7, #12] 8006280: 0c9b lsrs r3, r3, #18 8006282: f003 030f and.w r3, r3, #15 8006286: 4a17 ldr r2, [pc, #92] @ (80062e4 ) 8006288: 5cd3 ldrb r3, [r2, r3] 800628a: 607b str r3, [r7, #4] if ((tmpreg & RCC_CFGR_PLLSRC) != RCC_PLLSOURCE_HSI_DIV2) 800628c: 68fb ldr r3, [r7, #12] 800628e: f403 3380 and.w r3, r3, #65536 @ 0x10000 8006292: 2b00 cmp r3, #0 8006294: d010 beq.n 80062b8 { #if defined(RCC_CFGR2_PREDIV1) prediv = aPredivFactorTable[(uint32_t)(RCC->CFGR2 & RCC_CFGR2_PREDIV1) >> RCC_CFGR2_PREDIV1_Pos]; #else prediv = aPredivFactorTable[(uint32_t)(RCC->CFGR & RCC_CFGR_PLLXTPRE) >> RCC_CFGR_PLLXTPRE_Pos]; 8006296: 4b11 ldr r3, [pc, #68] @ (80062dc ) 8006298: 685b ldr r3, [r3, #4] 800629a: 0c5b lsrs r3, r3, #17 800629c: f003 0301 and.w r3, r3, #1 80062a0: 4a11 ldr r2, [pc, #68] @ (80062e8 ) 80062a2: 5cd3 ldrb r3, [r2, r3] 80062a4: 60bb str r3, [r7, #8] { pllclk = pllclk / 2; } #else /* HSE used as PLL clock source : PLLCLK = HSE/PREDIV1 * PLLMUL */ pllclk = (uint32_t)((HSE_VALUE * pllmul) / prediv); 80062a6: 687b ldr r3, [r7, #4] 80062a8: 4a0d ldr r2, [pc, #52] @ (80062e0 ) 80062aa: fb03 f202 mul.w r2, r3, r2 80062ae: 68bb ldr r3, [r7, #8] 80062b0: fbb2 f3f3 udiv r3, r2, r3 80062b4: 617b str r3, [r7, #20] 80062b6: e004 b.n 80062c2 #endif /*RCC_CFGR2_PREDIV1SRC*/ } else { /* HSI used as PLL clock source : PLLCLK = HSI/2 * PLLMUL */ pllclk = (uint32_t)((HSI_VALUE >> 1) * pllmul); 80062b8: 687b ldr r3, [r7, #4] 80062ba: 4a0c ldr r2, [pc, #48] @ (80062ec ) 80062bc: fb02 f303 mul.w r3, r2, r3 80062c0: 617b str r3, [r7, #20] } sysclockfreq = pllclk; 80062c2: 697b ldr r3, [r7, #20] 80062c4: 613b str r3, [r7, #16] break; 80062c6: e002 b.n 80062ce } case RCC_SYSCLKSOURCE_STATUS_HSI: /* HSI used as system clock source */ default: /* HSI used as system clock */ { sysclockfreq = HSI_VALUE; 80062c8: 4b09 ldr r3, [pc, #36] @ (80062f0 ) 80062ca: 613b str r3, [r7, #16] break; 80062cc: bf00 nop } } return sysclockfreq; 80062ce: 693b ldr r3, [r7, #16] } 80062d0: 4618 mov r0, r3 80062d2: 371c adds r7, #28 80062d4: 46bd mov sp, r7 80062d6: bc80 pop {r7} 80062d8: 4770 bx lr 80062da: bf00 nop 80062dc: 40021000 .word 0x40021000 80062e0: 00b71b00 .word 0x00b71b00 80062e4: 08007a78 .word 0x08007a78 80062e8: 08007a88 .word 0x08007a88 80062ec: 003d0900 .word 0x003d0900 80062f0: 007a1200 .word 0x007a1200 080062f4 : * @note The SystemCoreClock CMSIS variable is used to store System Clock Frequency * and updated within this function * @retval HCLK frequency */ uint32_t HAL_RCC_GetHCLKFreq(void) { 80062f4: b480 push {r7} 80062f6: af00 add r7, sp, #0 return SystemCoreClock; 80062f8: 4b02 ldr r3, [pc, #8] @ (8006304 ) 80062fa: 681b ldr r3, [r3, #0] } 80062fc: 4618 mov r0, r3 80062fe: 46bd mov sp, r7 8006300: bc80 pop {r7} 8006302: 4770 bx lr 8006304: 20000024 .word 0x20000024 08006308 : * @note Each time PCLK1 changes, this function must be called to update the * right PCLK1 value. Otherwise, any configuration based on this function will be incorrect. * @retval PCLK1 frequency */ uint32_t HAL_RCC_GetPCLK1Freq(void) { 8006308: b580 push {r7, lr} 800630a: af00 add r7, sp, #0 /* Get HCLK source and Compute PCLK1 frequency ---------------------------*/ return (HAL_RCC_GetHCLKFreq() >> APBPrescTable[(RCC->CFGR & RCC_CFGR_PPRE1) >> RCC_CFGR_PPRE1_Pos]); 800630c: f7ff fff2 bl 80062f4 8006310: 4602 mov r2, r0 8006312: 4b05 ldr r3, [pc, #20] @ (8006328 ) 8006314: 685b ldr r3, [r3, #4] 8006316: 0a1b lsrs r3, r3, #8 8006318: f003 0307 and.w r3, r3, #7 800631c: 4903 ldr r1, [pc, #12] @ (800632c ) 800631e: 5ccb ldrb r3, [r1, r3] 8006320: fa22 f303 lsr.w r3, r2, r3 } 8006324: 4618 mov r0, r3 8006326: bd80 pop {r7, pc} 8006328: 40021000 .word 0x40021000 800632c: 08007a70 .word 0x08007a70 08006330 : * @note Each time PCLK2 changes, this function must be called to update the * right PCLK2 value. Otherwise, any configuration based on this function will be incorrect. * @retval PCLK2 frequency */ uint32_t HAL_RCC_GetPCLK2Freq(void) { 8006330: b580 push {r7, lr} 8006332: af00 add r7, sp, #0 /* Get HCLK source and Compute PCLK2 frequency ---------------------------*/ return (HAL_RCC_GetHCLKFreq() >> APBPrescTable[(RCC->CFGR & RCC_CFGR_PPRE2) >> RCC_CFGR_PPRE2_Pos]); 8006334: f7ff ffde bl 80062f4 8006338: 4602 mov r2, r0 800633a: 4b05 ldr r3, [pc, #20] @ (8006350 ) 800633c: 685b ldr r3, [r3, #4] 800633e: 0adb lsrs r3, r3, #11 8006340: f003 0307 and.w r3, r3, #7 8006344: 4903 ldr r1, [pc, #12] @ (8006354 ) 8006346: 5ccb ldrb r3, [r1, r3] 8006348: fa22 f303 lsr.w r3, r2, r3 } 800634c: 4618 mov r0, r3 800634e: bd80 pop {r7, pc} 8006350: 40021000 .word 0x40021000 8006354: 08007a70 .word 0x08007a70 08006358 : * @brief This function provides delay (in milliseconds) based on CPU cycles method. * @param mdelay: specifies the delay time length, in milliseconds. * @retval None */ static void RCC_Delay(uint32_t mdelay) { 8006358: b480 push {r7} 800635a: b085 sub sp, #20 800635c: af00 add r7, sp, #0 800635e: 6078 str r0, [r7, #4] __IO uint32_t Delay = mdelay * (SystemCoreClock / 8U / 1000U); 8006360: 4b0a ldr r3, [pc, #40] @ (800638c ) 8006362: 681b ldr r3, [r3, #0] 8006364: 4a0a ldr r2, [pc, #40] @ (8006390 ) 8006366: fba2 2303 umull r2, r3, r2, r3 800636a: 0a5b lsrs r3, r3, #9 800636c: 687a ldr r2, [r7, #4] 800636e: fb02 f303 mul.w r3, r2, r3 8006372: 60fb str r3, [r7, #12] do { __NOP(); 8006374: bf00 nop } while (Delay --); 8006376: 68fb ldr r3, [r7, #12] 8006378: 1e5a subs r2, r3, #1 800637a: 60fa str r2, [r7, #12] 800637c: 2b00 cmp r3, #0 800637e: d1f9 bne.n 8006374 } 8006380: bf00 nop 8006382: bf00 nop 8006384: 3714 adds r7, #20 8006386: 46bd mov sp, r7 8006388: bc80 pop {r7} 800638a: 4770 bx lr 800638c: 20000024 .word 0x20000024 8006390: 10624dd3 .word 0x10624dd3 08006394 : * manually disable it. * * @retval HAL status */ HAL_StatusTypeDef HAL_RCCEx_PeriphCLKConfig(RCC_PeriphCLKInitTypeDef *PeriphClkInit) { 8006394: b580 push {r7, lr} 8006396: b086 sub sp, #24 8006398: af00 add r7, sp, #0 800639a: 6078 str r0, [r7, #4] uint32_t tickstart = 0U, temp_reg = 0U; 800639c: 2300 movs r3, #0 800639e: 613b str r3, [r7, #16] 80063a0: 2300 movs r3, #0 80063a2: 60fb str r3, [r7, #12] /* Check the parameters */ assert_param(IS_RCC_PERIPHCLOCK(PeriphClkInit->PeriphClockSelection)); /*------------------------------- RTC/LCD Configuration ------------------------*/ if ((((PeriphClkInit->PeriphClockSelection) & RCC_PERIPHCLK_RTC) == RCC_PERIPHCLK_RTC)) 80063a4: 687b ldr r3, [r7, #4] 80063a6: 681b ldr r3, [r3, #0] 80063a8: f003 0301 and.w r3, r3, #1 80063ac: 2b00 cmp r3, #0 80063ae: d07d beq.n 80064ac { FlagStatus pwrclkchanged = RESET; 80063b0: 2300 movs r3, #0 80063b2: 75fb strb r3, [r7, #23] assert_param(IS_RCC_RTCCLKSOURCE(PeriphClkInit->RTCClockSelection)); /* As soon as function is called to change RTC clock source, activation of the power domain is done. */ /* Requires to enable write access to Backup Domain of necessary */ if (__HAL_RCC_PWR_IS_CLK_DISABLED()) 80063b4: 4b4f ldr r3, [pc, #316] @ (80064f4 ) 80063b6: 69db ldr r3, [r3, #28] 80063b8: f003 5380 and.w r3, r3, #268435456 @ 0x10000000 80063bc: 2b00 cmp r3, #0 80063be: d10d bne.n 80063dc { __HAL_RCC_PWR_CLK_ENABLE(); 80063c0: 4b4c ldr r3, [pc, #304] @ (80064f4 ) 80063c2: 69db ldr r3, [r3, #28] 80063c4: 4a4b ldr r2, [pc, #300] @ (80064f4 ) 80063c6: f043 5380 orr.w r3, r3, #268435456 @ 0x10000000 80063ca: 61d3 str r3, [r2, #28] 80063cc: 4b49 ldr r3, [pc, #292] @ (80064f4 ) 80063ce: 69db ldr r3, [r3, #28] 80063d0: f003 5380 and.w r3, r3, #268435456 @ 0x10000000 80063d4: 60bb str r3, [r7, #8] 80063d6: 68bb ldr r3, [r7, #8] pwrclkchanged = SET; 80063d8: 2301 movs r3, #1 80063da: 75fb strb r3, [r7, #23] } if (HAL_IS_BIT_CLR(PWR->CR, PWR_CR_DBP)) 80063dc: 4b46 ldr r3, [pc, #280] @ (80064f8 ) 80063de: 681b ldr r3, [r3, #0] 80063e0: f403 7380 and.w r3, r3, #256 @ 0x100 80063e4: 2b00 cmp r3, #0 80063e6: d118 bne.n 800641a { /* Enable write access to Backup domain */ SET_BIT(PWR->CR, PWR_CR_DBP); 80063e8: 4b43 ldr r3, [pc, #268] @ (80064f8 ) 80063ea: 681b ldr r3, [r3, #0] 80063ec: 4a42 ldr r2, [pc, #264] @ (80064f8 ) 80063ee: f443 7380 orr.w r3, r3, #256 @ 0x100 80063f2: 6013 str r3, [r2, #0] /* Wait for Backup domain Write protection disable */ tickstart = HAL_GetTick(); 80063f4: f7fc ff6e bl 80032d4 80063f8: 6138 str r0, [r7, #16] while (HAL_IS_BIT_CLR(PWR->CR, PWR_CR_DBP)) 80063fa: e008 b.n 800640e { if ((HAL_GetTick() - tickstart) > RCC_DBP_TIMEOUT_VALUE) 80063fc: f7fc ff6a bl 80032d4 8006400: 4602 mov r2, r0 8006402: 693b ldr r3, [r7, #16] 8006404: 1ad3 subs r3, r2, r3 8006406: 2b64 cmp r3, #100 @ 0x64 8006408: d901 bls.n 800640e { return HAL_TIMEOUT; 800640a: 2303 movs r3, #3 800640c: e06d b.n 80064ea while (HAL_IS_BIT_CLR(PWR->CR, PWR_CR_DBP)) 800640e: 4b3a ldr r3, [pc, #232] @ (80064f8 ) 8006410: 681b ldr r3, [r3, #0] 8006412: f403 7380 and.w r3, r3, #256 @ 0x100 8006416: 2b00 cmp r3, #0 8006418: d0f0 beq.n 80063fc } } } /* Reset the Backup domain only if the RTC Clock source selection is modified from reset value */ temp_reg = (RCC->BDCR & RCC_BDCR_RTCSEL); 800641a: 4b36 ldr r3, [pc, #216] @ (80064f4 ) 800641c: 6a1b ldr r3, [r3, #32] 800641e: f403 7340 and.w r3, r3, #768 @ 0x300 8006422: 60fb str r3, [r7, #12] if ((temp_reg != 0x00000000U) && (temp_reg != (PeriphClkInit->RTCClockSelection & RCC_BDCR_RTCSEL))) 8006424: 68fb ldr r3, [r7, #12] 8006426: 2b00 cmp r3, #0 8006428: d02e beq.n 8006488 800642a: 687b ldr r3, [r7, #4] 800642c: 685b ldr r3, [r3, #4] 800642e: f403 7340 and.w r3, r3, #768 @ 0x300 8006432: 68fa ldr r2, [r7, #12] 8006434: 429a cmp r2, r3 8006436: d027 beq.n 8006488 { /* Store the content of BDCR register before the reset of Backup Domain */ temp_reg = (RCC->BDCR & ~(RCC_BDCR_RTCSEL)); 8006438: 4b2e ldr r3, [pc, #184] @ (80064f4 ) 800643a: 6a1b ldr r3, [r3, #32] 800643c: f423 7340 bic.w r3, r3, #768 @ 0x300 8006440: 60fb str r3, [r7, #12] /* RTC Clock selection can be changed only if the Backup Domain is reset */ __HAL_RCC_BACKUPRESET_FORCE(); 8006442: 4b2e ldr r3, [pc, #184] @ (80064fc ) 8006444: 2201 movs r2, #1 8006446: 601a str r2, [r3, #0] __HAL_RCC_BACKUPRESET_RELEASE(); 8006448: 4b2c ldr r3, [pc, #176] @ (80064fc ) 800644a: 2200 movs r2, #0 800644c: 601a str r2, [r3, #0] /* Restore the Content of BDCR register */ RCC->BDCR = temp_reg; 800644e: 4a29 ldr r2, [pc, #164] @ (80064f4 ) 8006450: 68fb ldr r3, [r7, #12] 8006452: 6213 str r3, [r2, #32] /* Wait for LSERDY if LSE was enabled */ if (HAL_IS_BIT_SET(temp_reg, RCC_BDCR_LSEON)) 8006454: 68fb ldr r3, [r7, #12] 8006456: f003 0301 and.w r3, r3, #1 800645a: 2b00 cmp r3, #0 800645c: d014 beq.n 8006488 { /* Get Start Tick */ tickstart = HAL_GetTick(); 800645e: f7fc ff39 bl 80032d4 8006462: 6138 str r0, [r7, #16] /* Wait till LSE is ready */ while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSERDY) == RESET) 8006464: e00a b.n 800647c { if ((HAL_GetTick() - tickstart) > RCC_LSE_TIMEOUT_VALUE) 8006466: f7fc ff35 bl 80032d4 800646a: 4602 mov r2, r0 800646c: 693b ldr r3, [r7, #16] 800646e: 1ad3 subs r3, r2, r3 8006470: f241 3288 movw r2, #5000 @ 0x1388 8006474: 4293 cmp r3, r2 8006476: d901 bls.n 800647c { return HAL_TIMEOUT; 8006478: 2303 movs r3, #3 800647a: e036 b.n 80064ea while (__HAL_RCC_GET_FLAG(RCC_FLAG_LSERDY) == RESET) 800647c: 4b1d ldr r3, [pc, #116] @ (80064f4 ) 800647e: 6a1b ldr r3, [r3, #32] 8006480: f003 0302 and.w r3, r3, #2 8006484: 2b00 cmp r3, #0 8006486: d0ee beq.n 8006466 } } } } __HAL_RCC_RTC_CONFIG(PeriphClkInit->RTCClockSelection); 8006488: 4b1a ldr r3, [pc, #104] @ (80064f4 ) 800648a: 6a1b ldr r3, [r3, #32] 800648c: f423 7240 bic.w r2, r3, #768 @ 0x300 8006490: 687b ldr r3, [r7, #4] 8006492: 685b ldr r3, [r3, #4] 8006494: 4917 ldr r1, [pc, #92] @ (80064f4 ) 8006496: 4313 orrs r3, r2 8006498: 620b str r3, [r1, #32] /* Require to disable power clock if necessary */ if (pwrclkchanged == SET) 800649a: 7dfb ldrb r3, [r7, #23] 800649c: 2b01 cmp r3, #1 800649e: d105 bne.n 80064ac { __HAL_RCC_PWR_CLK_DISABLE(); 80064a0: 4b14 ldr r3, [pc, #80] @ (80064f4 ) 80064a2: 69db ldr r3, [r3, #28] 80064a4: 4a13 ldr r2, [pc, #76] @ (80064f4 ) 80064a6: f023 5380 bic.w r3, r3, #268435456 @ 0x10000000 80064aa: 61d3 str r3, [r2, #28] } } /*------------------------------ ADC clock Configuration ------------------*/ if (((PeriphClkInit->PeriphClockSelection) & RCC_PERIPHCLK_ADC) == RCC_PERIPHCLK_ADC) 80064ac: 687b ldr r3, [r7, #4] 80064ae: 681b ldr r3, [r3, #0] 80064b0: f003 0302 and.w r3, r3, #2 80064b4: 2b00 cmp r3, #0 80064b6: d008 beq.n 80064ca { /* Check the parameters */ assert_param(IS_RCC_ADCPLLCLK_DIV(PeriphClkInit->AdcClockSelection)); /* Configure the ADC clock source */ __HAL_RCC_ADC_CONFIG(PeriphClkInit->AdcClockSelection); 80064b8: 4b0e ldr r3, [pc, #56] @ (80064f4 ) 80064ba: 685b ldr r3, [r3, #4] 80064bc: f423 4240 bic.w r2, r3, #49152 @ 0xc000 80064c0: 687b ldr r3, [r7, #4] 80064c2: 689b ldr r3, [r3, #8] 80064c4: 490b ldr r1, [pc, #44] @ (80064f4 ) 80064c6: 4313 orrs r3, r2 80064c8: 604b str r3, [r1, #4] #if defined(STM32F102x6) || defined(STM32F102xB) || defined(STM32F103x6)\ || defined(STM32F103xB) || defined(STM32F103xE) || defined(STM32F103xG)\ || defined(STM32F105xC) || defined(STM32F107xC) /*------------------------------ USB clock Configuration ------------------*/ if (((PeriphClkInit->PeriphClockSelection) & RCC_PERIPHCLK_USB) == RCC_PERIPHCLK_USB) 80064ca: 687b ldr r3, [r7, #4] 80064cc: 681b ldr r3, [r3, #0] 80064ce: f003 0310 and.w r3, r3, #16 80064d2: 2b00 cmp r3, #0 80064d4: d008 beq.n 80064e8 { /* Check the parameters */ assert_param(IS_RCC_USBPLLCLK_DIV(PeriphClkInit->UsbClockSelection)); /* Configure the USB clock source */ __HAL_RCC_USB_CONFIG(PeriphClkInit->UsbClockSelection); 80064d6: 4b07 ldr r3, [pc, #28] @ (80064f4 ) 80064d8: 685b ldr r3, [r3, #4] 80064da: f423 0280 bic.w r2, r3, #4194304 @ 0x400000 80064de: 687b ldr r3, [r7, #4] 80064e0: 68db ldr r3, [r3, #12] 80064e2: 4904 ldr r1, [pc, #16] @ (80064f4 ) 80064e4: 4313 orrs r3, r2 80064e6: 604b str r3, [r1, #4] } #endif /* STM32F102x6 || STM32F102xB || STM32F103x6 || STM32F103xB || STM32F103xE || STM32F103xG || STM32F105xC || STM32F107xC */ return HAL_OK; 80064e8: 2300 movs r3, #0 } 80064ea: 4618 mov r0, r3 80064ec: 3718 adds r7, #24 80064ee: 46bd mov sp, r7 80064f0: bd80 pop {r7, pc} 80064f2: bf00 nop 80064f4: 40021000 .word 0x40021000 80064f8: 40007000 .word 0x40007000 80064fc: 42420440 .word 0x42420440 08006500 : * @arg @ref RCC_PERIPHCLK_USB USB peripheral clock @endif * @retval Frequency in Hz (0: means that no available frequency for the peripheral) */ uint32_t HAL_RCCEx_GetPeriphCLKFreq(uint32_t PeriphClk) { 8006500: b580 push {r7, lr} 8006502: b088 sub sp, #32 8006504: af00 add r7, sp, #0 8006506: 6078 str r0, [r7, #4] #if defined(STM32F102x6) || defined(STM32F102xB) || defined(STM32F103x6) || \ defined(STM32F103xB) || defined(STM32F103xE) || defined(STM32F103xG) static const uint8_t aPLLMULFactorTable[16U] = {2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 16}; static const uint8_t aPredivFactorTable[2U] = {1, 2}; uint32_t prediv1 = 0U, pllclk = 0U, pllmul = 0U; 8006508: 2300 movs r3, #0 800650a: 617b str r3, [r7, #20] 800650c: 2300 movs r3, #0 800650e: 61fb str r3, [r7, #28] 8006510: 2300 movs r3, #0 8006512: 613b str r3, [r7, #16] #endif /* STM32F102x6 || STM32F102xB || STM32F103x6 || STM32F103xB || STM32F103xE || STM32F103xG */ uint32_t temp_reg = 0U, frequency = 0U; 8006514: 2300 movs r3, #0 8006516: 60fb str r3, [r7, #12] 8006518: 2300 movs r3, #0 800651a: 61bb str r3, [r7, #24] /* Check the parameters */ assert_param(IS_RCC_PERIPHCLOCK(PeriphClk)); switch (PeriphClk) 800651c: 687b ldr r3, [r7, #4] 800651e: 2b10 cmp r3, #16 8006520: d00a beq.n 8006538 8006522: 687b ldr r3, [r7, #4] 8006524: 2b10 cmp r3, #16 8006526: f200 8089 bhi.w 800663c 800652a: 687b ldr r3, [r7, #4] 800652c: 2b01 cmp r3, #1 800652e: d045 beq.n 80065bc 8006530: 687b ldr r3, [r7, #4] 8006532: 2b02 cmp r3, #2 8006534: d074 beq.n 8006620 frequency = HAL_RCC_GetPCLK2Freq() / (((__HAL_RCC_GET_ADC_SOURCE() >> RCC_CFGR_ADCPRE_Pos) + 1) * 2); break; } default: { break; 8006536: e081 b.n 800663c temp_reg = RCC->CFGR; 8006538: 4b45 ldr r3, [pc, #276] @ (8006650 ) 800653a: 685b ldr r3, [r3, #4] 800653c: 60fb str r3, [r7, #12] if (HAL_IS_BIT_SET(RCC->CR, RCC_CR_PLLON)) 800653e: 4b44 ldr r3, [pc, #272] @ (8006650 ) 8006540: 681b ldr r3, [r3, #0] 8006542: f003 7380 and.w r3, r3, #16777216 @ 0x1000000 8006546: 2b00 cmp r3, #0 8006548: d07a beq.n 8006640 pllmul = aPLLMULFactorTable[(uint32_t)(temp_reg & RCC_CFGR_PLLMULL) >> RCC_CFGR_PLLMULL_Pos]; 800654a: 68fb ldr r3, [r7, #12] 800654c: 0c9b lsrs r3, r3, #18 800654e: f003 030f and.w r3, r3, #15 8006552: 4a40 ldr r2, [pc, #256] @ (8006654 ) 8006554: 5cd3 ldrb r3, [r2, r3] 8006556: 613b str r3, [r7, #16] if ((temp_reg & RCC_CFGR_PLLSRC) != RCC_PLLSOURCE_HSI_DIV2) 8006558: 68fb ldr r3, [r7, #12] 800655a: f403 3380 and.w r3, r3, #65536 @ 0x10000 800655e: 2b00 cmp r3, #0 8006560: d015 beq.n 800658e prediv1 = aPredivFactorTable[(uint32_t)(RCC->CFGR & RCC_CFGR_PLLXTPRE) >> RCC_CFGR_PLLXTPRE_Pos]; 8006562: 4b3b ldr r3, [pc, #236] @ (8006650 ) 8006564: 685b ldr r3, [r3, #4] 8006566: 0c5b lsrs r3, r3, #17 8006568: f003 0301 and.w r3, r3, #1 800656c: 4a3a ldr r2, [pc, #232] @ (8006658 ) 800656e: 5cd3 ldrb r3, [r2, r3] 8006570: 617b str r3, [r7, #20] if ((temp_reg & RCC_CFGR_PLLSRC) != RCC_PLLSOURCE_HSI_DIV2) 8006572: 68fb ldr r3, [r7, #12] 8006574: f403 3380 and.w r3, r3, #65536 @ 0x10000 8006578: 2b00 cmp r3, #0 800657a: d00d beq.n 8006598 pllclk = (uint32_t)((HSE_VALUE / prediv1) * pllmul); 800657c: 4a37 ldr r2, [pc, #220] @ (800665c ) 800657e: 697b ldr r3, [r7, #20] 8006580: fbb2 f2f3 udiv r2, r2, r3 8006584: 693b ldr r3, [r7, #16] 8006586: fb02 f303 mul.w r3, r2, r3 800658a: 61fb str r3, [r7, #28] 800658c: e004 b.n 8006598 pllclk = (uint32_t)((HSI_VALUE >> 1) * pllmul); 800658e: 693b ldr r3, [r7, #16] 8006590: 4a33 ldr r2, [pc, #204] @ (8006660 ) 8006592: fb02 f303 mul.w r3, r2, r3 8006596: 61fb str r3, [r7, #28] if (__HAL_RCC_GET_USB_SOURCE() == RCC_USBCLKSOURCE_PLL) 8006598: 4b2d ldr r3, [pc, #180] @ (8006650 ) 800659a: 685b ldr r3, [r3, #4] 800659c: f403 0380 and.w r3, r3, #4194304 @ 0x400000 80065a0: f5b3 0f80 cmp.w r3, #4194304 @ 0x400000 80065a4: d102 bne.n 80065ac frequency = pllclk; 80065a6: 69fb ldr r3, [r7, #28] 80065a8: 61bb str r3, [r7, #24] break; 80065aa: e049 b.n 8006640 frequency = (pllclk * 2) / 3; 80065ac: 69fb ldr r3, [r7, #28] 80065ae: 005b lsls r3, r3, #1 80065b0: 4a2c ldr r2, [pc, #176] @ (8006664 ) 80065b2: fba2 2303 umull r2, r3, r2, r3 80065b6: 085b lsrs r3, r3, #1 80065b8: 61bb str r3, [r7, #24] break; 80065ba: e041 b.n 8006640 temp_reg = RCC->BDCR; 80065bc: 4b24 ldr r3, [pc, #144] @ (8006650 ) 80065be: 6a1b ldr r3, [r3, #32] 80065c0: 60fb str r3, [r7, #12] if (((temp_reg & RCC_BDCR_RTCSEL) == RCC_RTCCLKSOURCE_LSE) && (HAL_IS_BIT_SET(temp_reg, RCC_BDCR_LSERDY))) 80065c2: 68fb ldr r3, [r7, #12] 80065c4: f403 7340 and.w r3, r3, #768 @ 0x300 80065c8: f5b3 7f80 cmp.w r3, #256 @ 0x100 80065cc: d108 bne.n 80065e0 80065ce: 68fb ldr r3, [r7, #12] 80065d0: f003 0302 and.w r3, r3, #2 80065d4: 2b00 cmp r3, #0 80065d6: d003 beq.n 80065e0 frequency = LSE_VALUE; 80065d8: f44f 4300 mov.w r3, #32768 @ 0x8000 80065dc: 61bb str r3, [r7, #24] 80065de: e01e b.n 800661e else if (((temp_reg & RCC_BDCR_RTCSEL) == RCC_RTCCLKSOURCE_LSI) && (HAL_IS_BIT_SET(RCC->CSR, RCC_CSR_LSIRDY))) 80065e0: 68fb ldr r3, [r7, #12] 80065e2: f403 7340 and.w r3, r3, #768 @ 0x300 80065e6: f5b3 7f00 cmp.w r3, #512 @ 0x200 80065ea: d109 bne.n 8006600 80065ec: 4b18 ldr r3, [pc, #96] @ (8006650 ) 80065ee: 6a5b ldr r3, [r3, #36] @ 0x24 80065f0: f003 0302 and.w r3, r3, #2 80065f4: 2b00 cmp r3, #0 80065f6: d003 beq.n 8006600 frequency = LSI_VALUE; 80065f8: f649 4340 movw r3, #40000 @ 0x9c40 80065fc: 61bb str r3, [r7, #24] 80065fe: e00e b.n 800661e else if (((temp_reg & RCC_BDCR_RTCSEL) == RCC_RTCCLKSOURCE_HSE_DIV128) && (HAL_IS_BIT_SET(RCC->CR, RCC_CR_HSERDY))) 8006600: 68fb ldr r3, [r7, #12] 8006602: f403 7340 and.w r3, r3, #768 @ 0x300 8006606: f5b3 7f40 cmp.w r3, #768 @ 0x300 800660a: d11b bne.n 8006644 800660c: 4b10 ldr r3, [pc, #64] @ (8006650 ) 800660e: 681b ldr r3, [r3, #0] 8006610: f403 3300 and.w r3, r3, #131072 @ 0x20000 8006614: 2b00 cmp r3, #0 8006616: d015 beq.n 8006644 frequency = HSE_VALUE / 128U; 8006618: 4b13 ldr r3, [pc, #76] @ (8006668 ) 800661a: 61bb str r3, [r7, #24] break; 800661c: e012 b.n 8006644 800661e: e011 b.n 8006644 frequency = HAL_RCC_GetPCLK2Freq() / (((__HAL_RCC_GET_ADC_SOURCE() >> RCC_CFGR_ADCPRE_Pos) + 1) * 2); 8006620: f7ff fe86 bl 8006330 8006624: 4602 mov r2, r0 8006626: 4b0a ldr r3, [pc, #40] @ (8006650 ) 8006628: 685b ldr r3, [r3, #4] 800662a: 0b9b lsrs r3, r3, #14 800662c: f003 0303 and.w r3, r3, #3 8006630: 3301 adds r3, #1 8006632: 005b lsls r3, r3, #1 8006634: fbb2 f3f3 udiv r3, r2, r3 8006638: 61bb str r3, [r7, #24] break; 800663a: e004 b.n 8006646 break; 800663c: bf00 nop 800663e: e002 b.n 8006646 break; 8006640: bf00 nop 8006642: e000 b.n 8006646 break; 8006644: bf00 nop } } return (frequency); 8006646: 69bb ldr r3, [r7, #24] } 8006648: 4618 mov r0, r3 800664a: 3720 adds r7, #32 800664c: 46bd mov sp, r7 800664e: bd80 pop {r7, pc} 8006650: 40021000 .word 0x40021000 8006654: 08007a8c .word 0x08007a8c 8006658: 08007a9c .word 0x08007a9c 800665c: 00b71b00 .word 0x00b71b00 8006660: 003d0900 .word 0x003d0900 8006664: aaaaaaab .word 0xaaaaaaab 8006668: 00016e36 .word 0x00016e36 0800666c : * Ex: call @ref HAL_TIM_Base_DeInit() before HAL_TIM_Base_Init() * @param htim TIM Base handle * @retval HAL status */ HAL_StatusTypeDef HAL_TIM_Base_Init(TIM_HandleTypeDef *htim) { 800666c: b580 push {r7, lr} 800666e: b082 sub sp, #8 8006670: af00 add r7, sp, #0 8006672: 6078 str r0, [r7, #4] /* Check the TIM handle allocation */ if (htim == NULL) 8006674: 687b ldr r3, [r7, #4] 8006676: 2b00 cmp r3, #0 8006678: d101 bne.n 800667e { return HAL_ERROR; 800667a: 2301 movs r3, #1 800667c: e041 b.n 8006702 assert_param(IS_TIM_COUNTER_MODE(htim->Init.CounterMode)); assert_param(IS_TIM_CLOCKDIVISION_DIV(htim->Init.ClockDivision)); assert_param(IS_TIM_PERIOD(htim->Init.Period)); assert_param(IS_TIM_AUTORELOAD_PRELOAD(htim->Init.AutoReloadPreload)); if (htim->State == HAL_TIM_STATE_RESET) 800667e: 687b ldr r3, [r7, #4] 8006680: f893 303d ldrb.w r3, [r3, #61] @ 0x3d 8006684: b2db uxtb r3, r3 8006686: 2b00 cmp r3, #0 8006688: d106 bne.n 8006698 { /* Allocate lock resource and initialize it */ htim->Lock = HAL_UNLOCKED; 800668a: 687b ldr r3, [r7, #4] 800668c: 2200 movs r2, #0 800668e: f883 203c strb.w r2, [r3, #60] @ 0x3c } /* Init the low level hardware : GPIO, CLOCK, NVIC */ htim->Base_MspInitCallback(htim); #else /* Init the low level hardware : GPIO, CLOCK, NVIC */ HAL_TIM_Base_MspInit(htim); 8006692: 6878 ldr r0, [r7, #4] 8006694: f7fc fd04 bl 80030a0 #endif /* USE_HAL_TIM_REGISTER_CALLBACKS */ } /* Set the TIM state */ htim->State = HAL_TIM_STATE_BUSY; 8006698: 687b ldr r3, [r7, #4] 800669a: 2202 movs r2, #2 800669c: f883 203d strb.w r2, [r3, #61] @ 0x3d /* Set the Time Base configuration */ TIM_Base_SetConfig(htim->Instance, &htim->Init); 80066a0: 687b ldr r3, [r7, #4] 80066a2: 681a ldr r2, [r3, #0] 80066a4: 687b ldr r3, [r7, #4] 80066a6: 3304 adds r3, #4 80066a8: 4619 mov r1, r3 80066aa: 4610 mov r0, r2 80066ac: f000 f940 bl 8006930 /* Initialize the DMA burst operation state */ htim->DMABurstState = HAL_DMA_BURST_STATE_READY; 80066b0: 687b ldr r3, [r7, #4] 80066b2: 2201 movs r2, #1 80066b4: f883 2046 strb.w r2, [r3, #70] @ 0x46 /* Initialize the TIM channels state */ TIM_CHANNEL_STATE_SET_ALL(htim, HAL_TIM_CHANNEL_STATE_READY); 80066b8: 687b ldr r3, [r7, #4] 80066ba: 2201 movs r2, #1 80066bc: f883 203e strb.w r2, [r3, #62] @ 0x3e 80066c0: 687b ldr r3, [r7, #4] 80066c2: 2201 movs r2, #1 80066c4: f883 203f strb.w r2, [r3, #63] @ 0x3f 80066c8: 687b ldr r3, [r7, #4] 80066ca: 2201 movs r2, #1 80066cc: f883 2040 strb.w r2, [r3, #64] @ 0x40 80066d0: 687b ldr r3, [r7, #4] 80066d2: 2201 movs r2, #1 80066d4: f883 2041 strb.w r2, [r3, #65] @ 0x41 TIM_CHANNEL_N_STATE_SET_ALL(htim, HAL_TIM_CHANNEL_STATE_READY); 80066d8: 687b ldr r3, [r7, #4] 80066da: 2201 movs r2, #1 80066dc: f883 2042 strb.w r2, [r3, #66] @ 0x42 80066e0: 687b ldr r3, [r7, #4] 80066e2: 2201 movs r2, #1 80066e4: f883 2043 strb.w r2, [r3, #67] @ 0x43 80066e8: 687b ldr r3, [r7, #4] 80066ea: 2201 movs r2, #1 80066ec: f883 2044 strb.w r2, [r3, #68] @ 0x44 80066f0: 687b ldr r3, [r7, #4] 80066f2: 2201 movs r2, #1 80066f4: f883 2045 strb.w r2, [r3, #69] @ 0x45 /* Initialize the TIM state*/ htim->State = HAL_TIM_STATE_READY; 80066f8: 687b ldr r3, [r7, #4] 80066fa: 2201 movs r2, #1 80066fc: f883 203d strb.w r2, [r3, #61] @ 0x3d return HAL_OK; 8006700: 2300 movs r3, #0 } 8006702: 4618 mov r0, r3 8006704: 3708 adds r7, #8 8006706: 46bd mov sp, r7 8006708: bd80 pop {r7, pc} ... 0800670c : * @brief Starts the TIM Base generation. * @param htim TIM Base handle * @retval HAL status */ HAL_StatusTypeDef HAL_TIM_Base_Start(TIM_HandleTypeDef *htim) { 800670c: b480 push {r7} 800670e: b085 sub sp, #20 8006710: af00 add r7, sp, #0 8006712: 6078 str r0, [r7, #4] /* Check the parameters */ assert_param(IS_TIM_INSTANCE(htim->Instance)); /* Check the TIM state */ if (htim->State != HAL_TIM_STATE_READY) 8006714: 687b ldr r3, [r7, #4] 8006716: f893 303d ldrb.w r3, [r3, #61] @ 0x3d 800671a: b2db uxtb r3, r3 800671c: 2b01 cmp r3, #1 800671e: d001 beq.n 8006724 { return HAL_ERROR; 8006720: 2301 movs r3, #1 8006722: e032 b.n 800678a } /* Set the TIM state */ htim->State = HAL_TIM_STATE_BUSY; 8006724: 687b ldr r3, [r7, #4] 8006726: 2202 movs r2, #2 8006728: f883 203d strb.w r2, [r3, #61] @ 0x3d /* Enable the Peripheral, except in trigger mode where enable is automatically done with trigger */ if (IS_TIM_SLAVE_INSTANCE(htim->Instance)) 800672c: 687b ldr r3, [r7, #4] 800672e: 681b ldr r3, [r3, #0] 8006730: 4a18 ldr r2, [pc, #96] @ (8006794 ) 8006732: 4293 cmp r3, r2 8006734: d00e beq.n 8006754 8006736: 687b ldr r3, [r7, #4] 8006738: 681b ldr r3, [r3, #0] 800673a: f1b3 4f80 cmp.w r3, #1073741824 @ 0x40000000 800673e: d009 beq.n 8006754 8006740: 687b ldr r3, [r7, #4] 8006742: 681b ldr r3, [r3, #0] 8006744: 4a14 ldr r2, [pc, #80] @ (8006798 ) 8006746: 4293 cmp r3, r2 8006748: d004 beq.n 8006754 800674a: 687b ldr r3, [r7, #4] 800674c: 681b ldr r3, [r3, #0] 800674e: 4a13 ldr r2, [pc, #76] @ (800679c ) 8006750: 4293 cmp r3, r2 8006752: d111 bne.n 8006778 { tmpsmcr = htim->Instance->SMCR & TIM_SMCR_SMS; 8006754: 687b ldr r3, [r7, #4] 8006756: 681b ldr r3, [r3, #0] 8006758: 689b ldr r3, [r3, #8] 800675a: f003 0307 and.w r3, r3, #7 800675e: 60fb str r3, [r7, #12] if (!IS_TIM_SLAVEMODE_TRIGGER_ENABLED(tmpsmcr)) 8006760: 68fb ldr r3, [r7, #12] 8006762: 2b06 cmp r3, #6 8006764: d010 beq.n 8006788 { __HAL_TIM_ENABLE(htim); 8006766: 687b ldr r3, [r7, #4] 8006768: 681b ldr r3, [r3, #0] 800676a: 681a ldr r2, [r3, #0] 800676c: 687b ldr r3, [r7, #4] 800676e: 681b ldr r3, [r3, #0] 8006770: f042 0201 orr.w r2, r2, #1 8006774: 601a str r2, [r3, #0] if (!IS_TIM_SLAVEMODE_TRIGGER_ENABLED(tmpsmcr)) 8006776: e007 b.n 8006788 } } else { __HAL_TIM_ENABLE(htim); 8006778: 687b ldr r3, [r7, #4] 800677a: 681b ldr r3, [r3, #0] 800677c: 681a ldr r2, [r3, #0] 800677e: 687b ldr r3, [r7, #4] 8006780: 681b ldr r3, [r3, #0] 8006782: f042 0201 orr.w r2, r2, #1 8006786: 601a str r2, [r3, #0] } /* Return function status */ return HAL_OK; 8006788: 2300 movs r3, #0 } 800678a: 4618 mov r0, r3 800678c: 3714 adds r7, #20 800678e: 46bd mov sp, r7 8006790: bc80 pop {r7} 8006792: 4770 bx lr 8006794: 40012c00 .word 0x40012c00 8006798: 40000400 .word 0x40000400 800679c: 40000800 .word 0x40000800 080067a0 : * @param sClockSourceConfig pointer to a TIM_ClockConfigTypeDef structure that * contains the clock source information for the TIM peripheral. * @retval HAL status */ HAL_StatusTypeDef HAL_TIM_ConfigClockSource(TIM_HandleTypeDef *htim, const TIM_ClockConfigTypeDef *sClockSourceConfig) { 80067a0: b580 push {r7, lr} 80067a2: b084 sub sp, #16 80067a4: af00 add r7, sp, #0 80067a6: 6078 str r0, [r7, #4] 80067a8: 6039 str r1, [r7, #0] HAL_StatusTypeDef status = HAL_OK; 80067aa: 2300 movs r3, #0 80067ac: 73fb strb r3, [r7, #15] uint32_t tmpsmcr; /* Process Locked */ __HAL_LOCK(htim); 80067ae: 687b ldr r3, [r7, #4] 80067b0: f893 303c ldrb.w r3, [r3, #60] @ 0x3c 80067b4: 2b01 cmp r3, #1 80067b6: d101 bne.n 80067bc 80067b8: 2302 movs r3, #2 80067ba: e0b4 b.n 8006926 80067bc: 687b ldr r3, [r7, #4] 80067be: 2201 movs r2, #1 80067c0: f883 203c strb.w r2, [r3, #60] @ 0x3c htim->State = HAL_TIM_STATE_BUSY; 80067c4: 687b ldr r3, [r7, #4] 80067c6: 2202 movs r2, #2 80067c8: f883 203d strb.w r2, [r3, #61] @ 0x3d /* Check the parameters */ assert_param(IS_TIM_CLOCKSOURCE(sClockSourceConfig->ClockSource)); /* Reset the SMS, TS, ECE, ETPS and ETRF bits */ tmpsmcr = htim->Instance->SMCR; 80067cc: 687b ldr r3, [r7, #4] 80067ce: 681b ldr r3, [r3, #0] 80067d0: 689b ldr r3, [r3, #8] 80067d2: 60bb str r3, [r7, #8] tmpsmcr &= ~(TIM_SMCR_SMS | TIM_SMCR_TS); 80067d4: 68bb ldr r3, [r7, #8] 80067d6: f023 0377 bic.w r3, r3, #119 @ 0x77 80067da: 60bb str r3, [r7, #8] tmpsmcr &= ~(TIM_SMCR_ETF | TIM_SMCR_ETPS | TIM_SMCR_ECE | TIM_SMCR_ETP); 80067dc: 68bb ldr r3, [r7, #8] 80067de: f423 437f bic.w r3, r3, #65280 @ 0xff00 80067e2: 60bb str r3, [r7, #8] htim->Instance->SMCR = tmpsmcr; 80067e4: 687b ldr r3, [r7, #4] 80067e6: 681b ldr r3, [r3, #0] 80067e8: 68ba ldr r2, [r7, #8] 80067ea: 609a str r2, [r3, #8] switch (sClockSourceConfig->ClockSource) 80067ec: 683b ldr r3, [r7, #0] 80067ee: 681b ldr r3, [r3, #0] 80067f0: f5b3 5f00 cmp.w r3, #8192 @ 0x2000 80067f4: d03e beq.n 8006874 80067f6: f5b3 5f00 cmp.w r3, #8192 @ 0x2000 80067fa: f200 8087 bhi.w 800690c 80067fe: f5b3 5f80 cmp.w r3, #4096 @ 0x1000 8006802: f000 8086 beq.w 8006912 8006806: f5b3 5f80 cmp.w r3, #4096 @ 0x1000 800680a: d87f bhi.n 800690c 800680c: 2b70 cmp r3, #112 @ 0x70 800680e: d01a beq.n 8006846 8006810: 2b70 cmp r3, #112 @ 0x70 8006812: d87b bhi.n 800690c 8006814: 2b60 cmp r3, #96 @ 0x60 8006816: d050 beq.n 80068ba 8006818: 2b60 cmp r3, #96 @ 0x60 800681a: d877 bhi.n 800690c 800681c: 2b50 cmp r3, #80 @ 0x50 800681e: d03c beq.n 800689a 8006820: 2b50 cmp r3, #80 @ 0x50 8006822: d873 bhi.n 800690c 8006824: 2b40 cmp r3, #64 @ 0x40 8006826: d058 beq.n 80068da 8006828: 2b40 cmp r3, #64 @ 0x40 800682a: d86f bhi.n 800690c 800682c: 2b30 cmp r3, #48 @ 0x30 800682e: d064 beq.n 80068fa 8006830: 2b30 cmp r3, #48 @ 0x30 8006832: d86b bhi.n 800690c 8006834: 2b20 cmp r3, #32 8006836: d060 beq.n 80068fa 8006838: 2b20 cmp r3, #32 800683a: d867 bhi.n 800690c 800683c: 2b00 cmp r3, #0 800683e: d05c beq.n 80068fa 8006840: 2b10 cmp r3, #16 8006842: d05a beq.n 80068fa 8006844: e062 b.n 800690c assert_param(IS_TIM_CLOCKPRESCALER(sClockSourceConfig->ClockPrescaler)); assert_param(IS_TIM_CLOCKPOLARITY(sClockSourceConfig->ClockPolarity)); assert_param(IS_TIM_CLOCKFILTER(sClockSourceConfig->ClockFilter)); /* Configure the ETR Clock source */ TIM_ETR_SetConfig(htim->Instance, 8006846: 687b ldr r3, [r7, #4] 8006848: 6818 ldr r0, [r3, #0] sClockSourceConfig->ClockPrescaler, 800684a: 683b ldr r3, [r7, #0] 800684c: 6899 ldr r1, [r3, #8] sClockSourceConfig->ClockPolarity, 800684e: 683b ldr r3, [r7, #0] 8006850: 685a ldr r2, [r3, #4] sClockSourceConfig->ClockFilter); 8006852: 683b ldr r3, [r7, #0] 8006854: 68db ldr r3, [r3, #12] TIM_ETR_SetConfig(htim->Instance, 8006856: f000 f950 bl 8006afa /* Select the External clock mode1 and the ETRF trigger */ tmpsmcr = htim->Instance->SMCR; 800685a: 687b ldr r3, [r7, #4] 800685c: 681b ldr r3, [r3, #0] 800685e: 689b ldr r3, [r3, #8] 8006860: 60bb str r3, [r7, #8] tmpsmcr |= (TIM_SLAVEMODE_EXTERNAL1 | TIM_CLOCKSOURCE_ETRMODE1); 8006862: 68bb ldr r3, [r7, #8] 8006864: f043 0377 orr.w r3, r3, #119 @ 0x77 8006868: 60bb str r3, [r7, #8] /* Write to TIMx SMCR */ htim->Instance->SMCR = tmpsmcr; 800686a: 687b ldr r3, [r7, #4] 800686c: 681b ldr r3, [r3, #0] 800686e: 68ba ldr r2, [r7, #8] 8006870: 609a str r2, [r3, #8] break; 8006872: e04f b.n 8006914 assert_param(IS_TIM_CLOCKPRESCALER(sClockSourceConfig->ClockPrescaler)); assert_param(IS_TIM_CLOCKPOLARITY(sClockSourceConfig->ClockPolarity)); assert_param(IS_TIM_CLOCKFILTER(sClockSourceConfig->ClockFilter)); /* Configure the ETR Clock source */ TIM_ETR_SetConfig(htim->Instance, 8006874: 687b ldr r3, [r7, #4] 8006876: 6818 ldr r0, [r3, #0] sClockSourceConfig->ClockPrescaler, 8006878: 683b ldr r3, [r7, #0] 800687a: 6899 ldr r1, [r3, #8] sClockSourceConfig->ClockPolarity, 800687c: 683b ldr r3, [r7, #0] 800687e: 685a ldr r2, [r3, #4] sClockSourceConfig->ClockFilter); 8006880: 683b ldr r3, [r7, #0] 8006882: 68db ldr r3, [r3, #12] TIM_ETR_SetConfig(htim->Instance, 8006884: f000 f939 bl 8006afa /* Enable the External clock mode2 */ htim->Instance->SMCR |= TIM_SMCR_ECE; 8006888: 687b ldr r3, [r7, #4] 800688a: 681b ldr r3, [r3, #0] 800688c: 689a ldr r2, [r3, #8] 800688e: 687b ldr r3, [r7, #4] 8006890: 681b ldr r3, [r3, #0] 8006892: f442 4280 orr.w r2, r2, #16384 @ 0x4000 8006896: 609a str r2, [r3, #8] break; 8006898: e03c b.n 8006914 /* Check TI1 input conditioning related parameters */ assert_param(IS_TIM_CLOCKPOLARITY(sClockSourceConfig->ClockPolarity)); assert_param(IS_TIM_CLOCKFILTER(sClockSourceConfig->ClockFilter)); TIM_TI1_ConfigInputStage(htim->Instance, 800689a: 687b ldr r3, [r7, #4] 800689c: 6818 ldr r0, [r3, #0] sClockSourceConfig->ClockPolarity, 800689e: 683b ldr r3, [r7, #0] 80068a0: 6859 ldr r1, [r3, #4] sClockSourceConfig->ClockFilter); 80068a2: 683b ldr r3, [r7, #0] 80068a4: 68db ldr r3, [r3, #12] TIM_TI1_ConfigInputStage(htim->Instance, 80068a6: 461a mov r2, r3 80068a8: f000 f8b0 bl 8006a0c TIM_ITRx_SetConfig(htim->Instance, TIM_CLOCKSOURCE_TI1); 80068ac: 687b ldr r3, [r7, #4] 80068ae: 681b ldr r3, [r3, #0] 80068b0: 2150 movs r1, #80 @ 0x50 80068b2: 4618 mov r0, r3 80068b4: f000 f907 bl 8006ac6 break; 80068b8: e02c b.n 8006914 /* Check TI2 input conditioning related parameters */ assert_param(IS_TIM_CLOCKPOLARITY(sClockSourceConfig->ClockPolarity)); assert_param(IS_TIM_CLOCKFILTER(sClockSourceConfig->ClockFilter)); TIM_TI2_ConfigInputStage(htim->Instance, 80068ba: 687b ldr r3, [r7, #4] 80068bc: 6818 ldr r0, [r3, #0] sClockSourceConfig->ClockPolarity, 80068be: 683b ldr r3, [r7, #0] 80068c0: 6859 ldr r1, [r3, #4] sClockSourceConfig->ClockFilter); 80068c2: 683b ldr r3, [r7, #0] 80068c4: 68db ldr r3, [r3, #12] TIM_TI2_ConfigInputStage(htim->Instance, 80068c6: 461a mov r2, r3 80068c8: f000 f8ce bl 8006a68 TIM_ITRx_SetConfig(htim->Instance, TIM_CLOCKSOURCE_TI2); 80068cc: 687b ldr r3, [r7, #4] 80068ce: 681b ldr r3, [r3, #0] 80068d0: 2160 movs r1, #96 @ 0x60 80068d2: 4618 mov r0, r3 80068d4: f000 f8f7 bl 8006ac6 break; 80068d8: e01c b.n 8006914 /* Check TI1 input conditioning related parameters */ assert_param(IS_TIM_CLOCKPOLARITY(sClockSourceConfig->ClockPolarity)); assert_param(IS_TIM_CLOCKFILTER(sClockSourceConfig->ClockFilter)); TIM_TI1_ConfigInputStage(htim->Instance, 80068da: 687b ldr r3, [r7, #4] 80068dc: 6818 ldr r0, [r3, #0] sClockSourceConfig->ClockPolarity, 80068de: 683b ldr r3, [r7, #0] 80068e0: 6859 ldr r1, [r3, #4] sClockSourceConfig->ClockFilter); 80068e2: 683b ldr r3, [r7, #0] 80068e4: 68db ldr r3, [r3, #12] TIM_TI1_ConfigInputStage(htim->Instance, 80068e6: 461a mov r2, r3 80068e8: f000 f890 bl 8006a0c TIM_ITRx_SetConfig(htim->Instance, TIM_CLOCKSOURCE_TI1ED); 80068ec: 687b ldr r3, [r7, #4] 80068ee: 681b ldr r3, [r3, #0] 80068f0: 2140 movs r1, #64 @ 0x40 80068f2: 4618 mov r0, r3 80068f4: f000 f8e7 bl 8006ac6 break; 80068f8: e00c b.n 8006914 case TIM_CLOCKSOURCE_ITR3: { /* Check whether or not the timer instance supports internal trigger input */ assert_param(IS_TIM_CLOCKSOURCE_ITRX_INSTANCE(htim->Instance)); TIM_ITRx_SetConfig(htim->Instance, sClockSourceConfig->ClockSource); 80068fa: 687b ldr r3, [r7, #4] 80068fc: 681a ldr r2, [r3, #0] 80068fe: 683b ldr r3, [r7, #0] 8006900: 681b ldr r3, [r3, #0] 8006902: 4619 mov r1, r3 8006904: 4610 mov r0, r2 8006906: f000 f8de bl 8006ac6 break; 800690a: e003 b.n 8006914 } default: status = HAL_ERROR; 800690c: 2301 movs r3, #1 800690e: 73fb strb r3, [r7, #15] break; 8006910: e000 b.n 8006914 break; 8006912: bf00 nop } htim->State = HAL_TIM_STATE_READY; 8006914: 687b ldr r3, [r7, #4] 8006916: 2201 movs r2, #1 8006918: f883 203d strb.w r2, [r3, #61] @ 0x3d __HAL_UNLOCK(htim); 800691c: 687b ldr r3, [r7, #4] 800691e: 2200 movs r2, #0 8006920: f883 203c strb.w r2, [r3, #60] @ 0x3c return status; 8006924: 7bfb ldrb r3, [r7, #15] } 8006926: 4618 mov r0, r3 8006928: 3710 adds r7, #16 800692a: 46bd mov sp, r7 800692c: bd80 pop {r7, pc} ... 08006930 : * @param TIMx TIM peripheral * @param Structure TIM Base configuration structure * @retval None */ void TIM_Base_SetConfig(TIM_TypeDef *TIMx, const TIM_Base_InitTypeDef *Structure) { 8006930: b480 push {r7} 8006932: b085 sub sp, #20 8006934: af00 add r7, sp, #0 8006936: 6078 str r0, [r7, #4] 8006938: 6039 str r1, [r7, #0] uint32_t tmpcr1; tmpcr1 = TIMx->CR1; 800693a: 687b ldr r3, [r7, #4] 800693c: 681b ldr r3, [r3, #0] 800693e: 60fb str r3, [r7, #12] /* Set TIM Time Base Unit parameters ---------------------------------------*/ if (IS_TIM_COUNTER_MODE_SELECT_INSTANCE(TIMx)) 8006940: 687b ldr r3, [r7, #4] 8006942: 4a2f ldr r2, [pc, #188] @ (8006a00 ) 8006944: 4293 cmp r3, r2 8006946: d00b beq.n 8006960 8006948: 687b ldr r3, [r7, #4] 800694a: f1b3 4f80 cmp.w r3, #1073741824 @ 0x40000000 800694e: d007 beq.n 8006960 8006950: 687b ldr r3, [r7, #4] 8006952: 4a2c ldr r2, [pc, #176] @ (8006a04 ) 8006954: 4293 cmp r3, r2 8006956: d003 beq.n 8006960 8006958: 687b ldr r3, [r7, #4] 800695a: 4a2b ldr r2, [pc, #172] @ (8006a08 ) 800695c: 4293 cmp r3, r2 800695e: d108 bne.n 8006972 { /* Select the Counter Mode */ tmpcr1 &= ~(TIM_CR1_DIR | TIM_CR1_CMS); 8006960: 68fb ldr r3, [r7, #12] 8006962: f023 0370 bic.w r3, r3, #112 @ 0x70 8006966: 60fb str r3, [r7, #12] tmpcr1 |= Structure->CounterMode; 8006968: 683b ldr r3, [r7, #0] 800696a: 685b ldr r3, [r3, #4] 800696c: 68fa ldr r2, [r7, #12] 800696e: 4313 orrs r3, r2 8006970: 60fb str r3, [r7, #12] } if (IS_TIM_CLOCK_DIVISION_INSTANCE(TIMx)) 8006972: 687b ldr r3, [r7, #4] 8006974: 4a22 ldr r2, [pc, #136] @ (8006a00 ) 8006976: 4293 cmp r3, r2 8006978: d00b beq.n 8006992 800697a: 687b ldr r3, [r7, #4] 800697c: f1b3 4f80 cmp.w r3, #1073741824 @ 0x40000000 8006980: d007 beq.n 8006992 8006982: 687b ldr r3, [r7, #4] 8006984: 4a1f ldr r2, [pc, #124] @ (8006a04 ) 8006986: 4293 cmp r3, r2 8006988: d003 beq.n 8006992 800698a: 687b ldr r3, [r7, #4] 800698c: 4a1e ldr r2, [pc, #120] @ (8006a08 ) 800698e: 4293 cmp r3, r2 8006990: d108 bne.n 80069a4 { /* Set the clock division */ tmpcr1 &= ~TIM_CR1_CKD; 8006992: 68fb ldr r3, [r7, #12] 8006994: f423 7340 bic.w r3, r3, #768 @ 0x300 8006998: 60fb str r3, [r7, #12] tmpcr1 |= (uint32_t)Structure->ClockDivision; 800699a: 683b ldr r3, [r7, #0] 800699c: 68db ldr r3, [r3, #12] 800699e: 68fa ldr r2, [r7, #12] 80069a0: 4313 orrs r3, r2 80069a2: 60fb str r3, [r7, #12] } /* Set the auto-reload preload */ MODIFY_REG(tmpcr1, TIM_CR1_ARPE, Structure->AutoReloadPreload); 80069a4: 68fb ldr r3, [r7, #12] 80069a6: f023 0280 bic.w r2, r3, #128 @ 0x80 80069aa: 683b ldr r3, [r7, #0] 80069ac: 695b ldr r3, [r3, #20] 80069ae: 4313 orrs r3, r2 80069b0: 60fb str r3, [r7, #12] TIMx->CR1 = tmpcr1; 80069b2: 687b ldr r3, [r7, #4] 80069b4: 68fa ldr r2, [r7, #12] 80069b6: 601a str r2, [r3, #0] /* Set the Autoreload value */ TIMx->ARR = (uint32_t)Structure->Period ; 80069b8: 683b ldr r3, [r7, #0] 80069ba: 689a ldr r2, [r3, #8] 80069bc: 687b ldr r3, [r7, #4] 80069be: 62da str r2, [r3, #44] @ 0x2c /* Set the Prescaler value */ TIMx->PSC = Structure->Prescaler; 80069c0: 683b ldr r3, [r7, #0] 80069c2: 681a ldr r2, [r3, #0] 80069c4: 687b ldr r3, [r7, #4] 80069c6: 629a str r2, [r3, #40] @ 0x28 if (IS_TIM_REPETITION_COUNTER_INSTANCE(TIMx)) 80069c8: 687b ldr r3, [r7, #4] 80069ca: 4a0d ldr r2, [pc, #52] @ (8006a00 ) 80069cc: 4293 cmp r3, r2 80069ce: d103 bne.n 80069d8 { /* Set the Repetition Counter value */ TIMx->RCR = Structure->RepetitionCounter; 80069d0: 683b ldr r3, [r7, #0] 80069d2: 691a ldr r2, [r3, #16] 80069d4: 687b ldr r3, [r7, #4] 80069d6: 631a str r2, [r3, #48] @ 0x30 } /* Generate an update event to reload the Prescaler and the repetition counter (only for advanced timer) value immediately */ TIMx->EGR = TIM_EGR_UG; 80069d8: 687b ldr r3, [r7, #4] 80069da: 2201 movs r2, #1 80069dc: 615a str r2, [r3, #20] /* Check if the update flag is set after the Update Generation, if so clear the UIF flag */ if (HAL_IS_BIT_SET(TIMx->SR, TIM_FLAG_UPDATE)) 80069de: 687b ldr r3, [r7, #4] 80069e0: 691b ldr r3, [r3, #16] 80069e2: f003 0301 and.w r3, r3, #1 80069e6: 2b00 cmp r3, #0 80069e8: d005 beq.n 80069f6 { /* Clear the update flag */ CLEAR_BIT(TIMx->SR, TIM_FLAG_UPDATE); 80069ea: 687b ldr r3, [r7, #4] 80069ec: 691b ldr r3, [r3, #16] 80069ee: f023 0201 bic.w r2, r3, #1 80069f2: 687b ldr r3, [r7, #4] 80069f4: 611a str r2, [r3, #16] } } 80069f6: bf00 nop 80069f8: 3714 adds r7, #20 80069fa: 46bd mov sp, r7 80069fc: bc80 pop {r7} 80069fe: 4770 bx lr 8006a00: 40012c00 .word 0x40012c00 8006a04: 40000400 .word 0x40000400 8006a08: 40000800 .word 0x40000800 08006a0c : * @param TIM_ICFilter Specifies the Input Capture Filter. * This parameter must be a value between 0x00 and 0x0F. * @retval None */ static void TIM_TI1_ConfigInputStage(TIM_TypeDef *TIMx, uint32_t TIM_ICPolarity, uint32_t TIM_ICFilter) { 8006a0c: b480 push {r7} 8006a0e: b087 sub sp, #28 8006a10: af00 add r7, sp, #0 8006a12: 60f8 str r0, [r7, #12] 8006a14: 60b9 str r1, [r7, #8] 8006a16: 607a str r2, [r7, #4] uint32_t tmpccmr1; uint32_t tmpccer; /* Disable the Channel 1: Reset the CC1E Bit */ tmpccer = TIMx->CCER; 8006a18: 68fb ldr r3, [r7, #12] 8006a1a: 6a1b ldr r3, [r3, #32] 8006a1c: 617b str r3, [r7, #20] TIMx->CCER &= ~TIM_CCER_CC1E; 8006a1e: 68fb ldr r3, [r7, #12] 8006a20: 6a1b ldr r3, [r3, #32] 8006a22: f023 0201 bic.w r2, r3, #1 8006a26: 68fb ldr r3, [r7, #12] 8006a28: 621a str r2, [r3, #32] tmpccmr1 = TIMx->CCMR1; 8006a2a: 68fb ldr r3, [r7, #12] 8006a2c: 699b ldr r3, [r3, #24] 8006a2e: 613b str r3, [r7, #16] /* Set the filter */ tmpccmr1 &= ~TIM_CCMR1_IC1F; 8006a30: 693b ldr r3, [r7, #16] 8006a32: f023 03f0 bic.w r3, r3, #240 @ 0xf0 8006a36: 613b str r3, [r7, #16] tmpccmr1 |= (TIM_ICFilter << 4U); 8006a38: 687b ldr r3, [r7, #4] 8006a3a: 011b lsls r3, r3, #4 8006a3c: 693a ldr r2, [r7, #16] 8006a3e: 4313 orrs r3, r2 8006a40: 613b str r3, [r7, #16] /* Select the Polarity and set the CC1E Bit */ tmpccer &= ~(TIM_CCER_CC1P | TIM_CCER_CC1NP); 8006a42: 697b ldr r3, [r7, #20] 8006a44: f023 030a bic.w r3, r3, #10 8006a48: 617b str r3, [r7, #20] tmpccer |= TIM_ICPolarity; 8006a4a: 697a ldr r2, [r7, #20] 8006a4c: 68bb ldr r3, [r7, #8] 8006a4e: 4313 orrs r3, r2 8006a50: 617b str r3, [r7, #20] /* Write to TIMx CCMR1 and CCER registers */ TIMx->CCMR1 = tmpccmr1; 8006a52: 68fb ldr r3, [r7, #12] 8006a54: 693a ldr r2, [r7, #16] 8006a56: 619a str r2, [r3, #24] TIMx->CCER = tmpccer; 8006a58: 68fb ldr r3, [r7, #12] 8006a5a: 697a ldr r2, [r7, #20] 8006a5c: 621a str r2, [r3, #32] } 8006a5e: bf00 nop 8006a60: 371c adds r7, #28 8006a62: 46bd mov sp, r7 8006a64: bc80 pop {r7} 8006a66: 4770 bx lr 08006a68 : * @param TIM_ICFilter Specifies the Input Capture Filter. * This parameter must be a value between 0x00 and 0x0F. * @retval None */ static void TIM_TI2_ConfigInputStage(TIM_TypeDef *TIMx, uint32_t TIM_ICPolarity, uint32_t TIM_ICFilter) { 8006a68: b480 push {r7} 8006a6a: b087 sub sp, #28 8006a6c: af00 add r7, sp, #0 8006a6e: 60f8 str r0, [r7, #12] 8006a70: 60b9 str r1, [r7, #8] 8006a72: 607a str r2, [r7, #4] uint32_t tmpccmr1; uint32_t tmpccer; /* Disable the Channel 2: Reset the CC2E Bit */ tmpccer = TIMx->CCER; 8006a74: 68fb ldr r3, [r7, #12] 8006a76: 6a1b ldr r3, [r3, #32] 8006a78: 617b str r3, [r7, #20] TIMx->CCER &= ~TIM_CCER_CC2E; 8006a7a: 68fb ldr r3, [r7, #12] 8006a7c: 6a1b ldr r3, [r3, #32] 8006a7e: f023 0210 bic.w r2, r3, #16 8006a82: 68fb ldr r3, [r7, #12] 8006a84: 621a str r2, [r3, #32] tmpccmr1 = TIMx->CCMR1; 8006a86: 68fb ldr r3, [r7, #12] 8006a88: 699b ldr r3, [r3, #24] 8006a8a: 613b str r3, [r7, #16] /* Set the filter */ tmpccmr1 &= ~TIM_CCMR1_IC2F; 8006a8c: 693b ldr r3, [r7, #16] 8006a8e: f423 4370 bic.w r3, r3, #61440 @ 0xf000 8006a92: 613b str r3, [r7, #16] tmpccmr1 |= (TIM_ICFilter << 12U); 8006a94: 687b ldr r3, [r7, #4] 8006a96: 031b lsls r3, r3, #12 8006a98: 693a ldr r2, [r7, #16] 8006a9a: 4313 orrs r3, r2 8006a9c: 613b str r3, [r7, #16] /* Select the Polarity and set the CC2E Bit */ tmpccer &= ~(TIM_CCER_CC2P | TIM_CCER_CC2NP); 8006a9e: 697b ldr r3, [r7, #20] 8006aa0: f023 03a0 bic.w r3, r3, #160 @ 0xa0 8006aa4: 617b str r3, [r7, #20] tmpccer |= (TIM_ICPolarity << 4U); 8006aa6: 68bb ldr r3, [r7, #8] 8006aa8: 011b lsls r3, r3, #4 8006aaa: 697a ldr r2, [r7, #20] 8006aac: 4313 orrs r3, r2 8006aae: 617b str r3, [r7, #20] /* Write to TIMx CCMR1 and CCER registers */ TIMx->CCMR1 = tmpccmr1 ; 8006ab0: 68fb ldr r3, [r7, #12] 8006ab2: 693a ldr r2, [r7, #16] 8006ab4: 619a str r2, [r3, #24] TIMx->CCER = tmpccer; 8006ab6: 68fb ldr r3, [r7, #12] 8006ab8: 697a ldr r2, [r7, #20] 8006aba: 621a str r2, [r3, #32] } 8006abc: bf00 nop 8006abe: 371c adds r7, #28 8006ac0: 46bd mov sp, r7 8006ac2: bc80 pop {r7} 8006ac4: 4770 bx lr 08006ac6 : * @arg TIM_TS_TI2FP2: Filtered Timer Input 2 * @arg TIM_TS_ETRF: External Trigger input * @retval None */ static void TIM_ITRx_SetConfig(TIM_TypeDef *TIMx, uint32_t InputTriggerSource) { 8006ac6: b480 push {r7} 8006ac8: b085 sub sp, #20 8006aca: af00 add r7, sp, #0 8006acc: 6078 str r0, [r7, #4] 8006ace: 6039 str r1, [r7, #0] uint32_t tmpsmcr; /* Get the TIMx SMCR register value */ tmpsmcr = TIMx->SMCR; 8006ad0: 687b ldr r3, [r7, #4] 8006ad2: 689b ldr r3, [r3, #8] 8006ad4: 60fb str r3, [r7, #12] /* Reset the TS Bits */ tmpsmcr &= ~TIM_SMCR_TS; 8006ad6: 68fb ldr r3, [r7, #12] 8006ad8: f023 0370 bic.w r3, r3, #112 @ 0x70 8006adc: 60fb str r3, [r7, #12] /* Set the Input Trigger source and the slave mode*/ tmpsmcr |= (InputTriggerSource | TIM_SLAVEMODE_EXTERNAL1); 8006ade: 683a ldr r2, [r7, #0] 8006ae0: 68fb ldr r3, [r7, #12] 8006ae2: 4313 orrs r3, r2 8006ae4: f043 0307 orr.w r3, r3, #7 8006ae8: 60fb str r3, [r7, #12] /* Write to TIMx SMCR */ TIMx->SMCR = tmpsmcr; 8006aea: 687b ldr r3, [r7, #4] 8006aec: 68fa ldr r2, [r7, #12] 8006aee: 609a str r2, [r3, #8] } 8006af0: bf00 nop 8006af2: 3714 adds r7, #20 8006af4: 46bd mov sp, r7 8006af6: bc80 pop {r7} 8006af8: 4770 bx lr 08006afa : * This parameter must be a value between 0x00 and 0x0F * @retval None */ void TIM_ETR_SetConfig(TIM_TypeDef *TIMx, uint32_t TIM_ExtTRGPrescaler, uint32_t TIM_ExtTRGPolarity, uint32_t ExtTRGFilter) { 8006afa: b480 push {r7} 8006afc: b087 sub sp, #28 8006afe: af00 add r7, sp, #0 8006b00: 60f8 str r0, [r7, #12] 8006b02: 60b9 str r1, [r7, #8] 8006b04: 607a str r2, [r7, #4] 8006b06: 603b str r3, [r7, #0] uint32_t tmpsmcr; tmpsmcr = TIMx->SMCR; 8006b08: 68fb ldr r3, [r7, #12] 8006b0a: 689b ldr r3, [r3, #8] 8006b0c: 617b str r3, [r7, #20] /* Reset the ETR Bits */ tmpsmcr &= ~(TIM_SMCR_ETF | TIM_SMCR_ETPS | TIM_SMCR_ECE | TIM_SMCR_ETP); 8006b0e: 697b ldr r3, [r7, #20] 8006b10: f423 437f bic.w r3, r3, #65280 @ 0xff00 8006b14: 617b str r3, [r7, #20] /* Set the Prescaler, the Filter value and the Polarity */ tmpsmcr |= (uint32_t)(TIM_ExtTRGPrescaler | (TIM_ExtTRGPolarity | (ExtTRGFilter << 8U))); 8006b16: 683b ldr r3, [r7, #0] 8006b18: 021a lsls r2, r3, #8 8006b1a: 687b ldr r3, [r7, #4] 8006b1c: 431a orrs r2, r3 8006b1e: 68bb ldr r3, [r7, #8] 8006b20: 4313 orrs r3, r2 8006b22: 697a ldr r2, [r7, #20] 8006b24: 4313 orrs r3, r2 8006b26: 617b str r3, [r7, #20] /* Write to TIMx SMCR */ TIMx->SMCR = tmpsmcr; 8006b28: 68fb ldr r3, [r7, #12] 8006b2a: 697a ldr r2, [r7, #20] 8006b2c: 609a str r2, [r3, #8] } 8006b2e: bf00 nop 8006b30: 371c adds r7, #28 8006b32: 46bd mov sp, r7 8006b34: bc80 pop {r7} 8006b36: 4770 bx lr 08006b38 : * mode. * @retval HAL status */ HAL_StatusTypeDef HAL_TIMEx_MasterConfigSynchronization(TIM_HandleTypeDef *htim, const TIM_MasterConfigTypeDef *sMasterConfig) { 8006b38: b480 push {r7} 8006b3a: b085 sub sp, #20 8006b3c: af00 add r7, sp, #0 8006b3e: 6078 str r0, [r7, #4] 8006b40: 6039 str r1, [r7, #0] assert_param(IS_TIM_MASTER_INSTANCE(htim->Instance)); assert_param(IS_TIM_TRGO_SOURCE(sMasterConfig->MasterOutputTrigger)); assert_param(IS_TIM_MSM_STATE(sMasterConfig->MasterSlaveMode)); /* Check input state */ __HAL_LOCK(htim); 8006b42: 687b ldr r3, [r7, #4] 8006b44: f893 303c ldrb.w r3, [r3, #60] @ 0x3c 8006b48: 2b01 cmp r3, #1 8006b4a: d101 bne.n 8006b50 8006b4c: 2302 movs r3, #2 8006b4e: e046 b.n 8006bde 8006b50: 687b ldr r3, [r7, #4] 8006b52: 2201 movs r2, #1 8006b54: f883 203c strb.w r2, [r3, #60] @ 0x3c /* Change the handler state */ htim->State = HAL_TIM_STATE_BUSY; 8006b58: 687b ldr r3, [r7, #4] 8006b5a: 2202 movs r2, #2 8006b5c: f883 203d strb.w r2, [r3, #61] @ 0x3d /* Get the TIMx CR2 register value */ tmpcr2 = htim->Instance->CR2; 8006b60: 687b ldr r3, [r7, #4] 8006b62: 681b ldr r3, [r3, #0] 8006b64: 685b ldr r3, [r3, #4] 8006b66: 60fb str r3, [r7, #12] /* Get the TIMx SMCR register value */ tmpsmcr = htim->Instance->SMCR; 8006b68: 687b ldr r3, [r7, #4] 8006b6a: 681b ldr r3, [r3, #0] 8006b6c: 689b ldr r3, [r3, #8] 8006b6e: 60bb str r3, [r7, #8] /* Reset the MMS Bits */ tmpcr2 &= ~TIM_CR2_MMS; 8006b70: 68fb ldr r3, [r7, #12] 8006b72: f023 0370 bic.w r3, r3, #112 @ 0x70 8006b76: 60fb str r3, [r7, #12] /* Select the TRGO source */ tmpcr2 |= sMasterConfig->MasterOutputTrigger; 8006b78: 683b ldr r3, [r7, #0] 8006b7a: 681b ldr r3, [r3, #0] 8006b7c: 68fa ldr r2, [r7, #12] 8006b7e: 4313 orrs r3, r2 8006b80: 60fb str r3, [r7, #12] /* Update TIMx CR2 */ htim->Instance->CR2 = tmpcr2; 8006b82: 687b ldr r3, [r7, #4] 8006b84: 681b ldr r3, [r3, #0] 8006b86: 68fa ldr r2, [r7, #12] 8006b88: 605a str r2, [r3, #4] if (IS_TIM_SLAVE_INSTANCE(htim->Instance)) 8006b8a: 687b ldr r3, [r7, #4] 8006b8c: 681b ldr r3, [r3, #0] 8006b8e: 4a16 ldr r2, [pc, #88] @ (8006be8 ) 8006b90: 4293 cmp r3, r2 8006b92: d00e beq.n 8006bb2 8006b94: 687b ldr r3, [r7, #4] 8006b96: 681b ldr r3, [r3, #0] 8006b98: f1b3 4f80 cmp.w r3, #1073741824 @ 0x40000000 8006b9c: d009 beq.n 8006bb2 8006b9e: 687b ldr r3, [r7, #4] 8006ba0: 681b ldr r3, [r3, #0] 8006ba2: 4a12 ldr r2, [pc, #72] @ (8006bec ) 8006ba4: 4293 cmp r3, r2 8006ba6: d004 beq.n 8006bb2 8006ba8: 687b ldr r3, [r7, #4] 8006baa: 681b ldr r3, [r3, #0] 8006bac: 4a10 ldr r2, [pc, #64] @ (8006bf0 ) 8006bae: 4293 cmp r3, r2 8006bb0: d10c bne.n 8006bcc { /* Reset the MSM Bit */ tmpsmcr &= ~TIM_SMCR_MSM; 8006bb2: 68bb ldr r3, [r7, #8] 8006bb4: f023 0380 bic.w r3, r3, #128 @ 0x80 8006bb8: 60bb str r3, [r7, #8] /* Set master mode */ tmpsmcr |= sMasterConfig->MasterSlaveMode; 8006bba: 683b ldr r3, [r7, #0] 8006bbc: 685b ldr r3, [r3, #4] 8006bbe: 68ba ldr r2, [r7, #8] 8006bc0: 4313 orrs r3, r2 8006bc2: 60bb str r3, [r7, #8] /* Update TIMx SMCR */ htim->Instance->SMCR = tmpsmcr; 8006bc4: 687b ldr r3, [r7, #4] 8006bc6: 681b ldr r3, [r3, #0] 8006bc8: 68ba ldr r2, [r7, #8] 8006bca: 609a str r2, [r3, #8] } /* Change the htim state */ htim->State = HAL_TIM_STATE_READY; 8006bcc: 687b ldr r3, [r7, #4] 8006bce: 2201 movs r2, #1 8006bd0: f883 203d strb.w r2, [r3, #61] @ 0x3d __HAL_UNLOCK(htim); 8006bd4: 687b ldr r3, [r7, #4] 8006bd6: 2200 movs r2, #0 8006bd8: f883 203c strb.w r2, [r3, #60] @ 0x3c return HAL_OK; 8006bdc: 2300 movs r3, #0 } 8006bde: 4618 mov r0, r3 8006be0: 3714 adds r7, #20 8006be2: 46bd mov sp, r7 8006be4: bc80 pop {r7} 8006be6: 4770 bx lr 8006be8: 40012c00 .word 0x40012c00 8006bec: 40000400 .word 0x40000400 8006bf0: 40000800 .word 0x40000800 08006bf4 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval HAL status */ HAL_StatusTypeDef HAL_UART_Init(UART_HandleTypeDef *huart) { 8006bf4: b580 push {r7, lr} 8006bf6: b082 sub sp, #8 8006bf8: af00 add r7, sp, #0 8006bfa: 6078 str r0, [r7, #4] /* Check the UART handle allocation */ if (huart == NULL) 8006bfc: 687b ldr r3, [r7, #4] 8006bfe: 2b00 cmp r3, #0 8006c00: d101 bne.n 8006c06 { return HAL_ERROR; 8006c02: 2301 movs r3, #1 8006c04: e042 b.n 8006c8c assert_param(IS_UART_WORD_LENGTH(huart->Init.WordLength)); #if defined(USART_CR1_OVER8) assert_param(IS_UART_OVERSAMPLING(huart->Init.OverSampling)); #endif /* USART_CR1_OVER8 */ if (huart->gState == HAL_UART_STATE_RESET) 8006c06: 687b ldr r3, [r7, #4] 8006c08: f893 3041 ldrb.w r3, [r3, #65] @ 0x41 8006c0c: b2db uxtb r3, r3 8006c0e: 2b00 cmp r3, #0 8006c10: d106 bne.n 8006c20 { /* Allocate lock resource and initialize it */ huart->Lock = HAL_UNLOCKED; 8006c12: 687b ldr r3, [r7, #4] 8006c14: 2200 movs r2, #0 8006c16: f883 2040 strb.w r2, [r3, #64] @ 0x40 /* Init the low level hardware */ huart->MspInitCallback(huart); #else /* Init the low level hardware : GPIO, CLOCK */ HAL_UART_MspInit(huart); 8006c1a: 6878 ldr r0, [r7, #4] 8006c1c: f7fc fa88 bl 8003130 #endif /* (USE_HAL_UART_REGISTER_CALLBACKS) */ } huart->gState = HAL_UART_STATE_BUSY; 8006c20: 687b ldr r3, [r7, #4] 8006c22: 2224 movs r2, #36 @ 0x24 8006c24: f883 2041 strb.w r2, [r3, #65] @ 0x41 /* Disable the peripheral */ __HAL_UART_DISABLE(huart); 8006c28: 687b ldr r3, [r7, #4] 8006c2a: 681b ldr r3, [r3, #0] 8006c2c: 68da ldr r2, [r3, #12] 8006c2e: 687b ldr r3, [r7, #4] 8006c30: 681b ldr r3, [r3, #0] 8006c32: f422 5200 bic.w r2, r2, #8192 @ 0x2000 8006c36: 60da str r2, [r3, #12] /* Set the UART Communication parameters */ UART_SetConfig(huart); 8006c38: 6878 ldr r0, [r7, #4] 8006c3a: f000 fd63 bl 8007704 /* In asynchronous mode, the following bits must be kept cleared: - LINEN and CLKEN bits in the USART_CR2 register, - SCEN, HDSEL and IREN bits in the USART_CR3 register.*/ CLEAR_BIT(huart->Instance->CR2, (USART_CR2_LINEN | USART_CR2_CLKEN)); 8006c3e: 687b ldr r3, [r7, #4] 8006c40: 681b ldr r3, [r3, #0] 8006c42: 691a ldr r2, [r3, #16] 8006c44: 687b ldr r3, [r7, #4] 8006c46: 681b ldr r3, [r3, #0] 8006c48: f422 4290 bic.w r2, r2, #18432 @ 0x4800 8006c4c: 611a str r2, [r3, #16] CLEAR_BIT(huart->Instance->CR3, (USART_CR3_SCEN | USART_CR3_HDSEL | USART_CR3_IREN)); 8006c4e: 687b ldr r3, [r7, #4] 8006c50: 681b ldr r3, [r3, #0] 8006c52: 695a ldr r2, [r3, #20] 8006c54: 687b ldr r3, [r7, #4] 8006c56: 681b ldr r3, [r3, #0] 8006c58: f022 022a bic.w r2, r2, #42 @ 0x2a 8006c5c: 615a str r2, [r3, #20] /* Enable the peripheral */ __HAL_UART_ENABLE(huart); 8006c5e: 687b ldr r3, [r7, #4] 8006c60: 681b ldr r3, [r3, #0] 8006c62: 68da ldr r2, [r3, #12] 8006c64: 687b ldr r3, [r7, #4] 8006c66: 681b ldr r3, [r3, #0] 8006c68: f442 5200 orr.w r2, r2, #8192 @ 0x2000 8006c6c: 60da str r2, [r3, #12] /* Initialize the UART state */ huart->ErrorCode = HAL_UART_ERROR_NONE; 8006c6e: 687b ldr r3, [r7, #4] 8006c70: 2200 movs r2, #0 8006c72: 645a str r2, [r3, #68] @ 0x44 huart->gState = HAL_UART_STATE_READY; 8006c74: 687b ldr r3, [r7, #4] 8006c76: 2220 movs r2, #32 8006c78: f883 2041 strb.w r2, [r3, #65] @ 0x41 huart->RxState = HAL_UART_STATE_READY; 8006c7c: 687b ldr r3, [r7, #4] 8006c7e: 2220 movs r2, #32 8006c80: f883 2042 strb.w r2, [r3, #66] @ 0x42 huart->RxEventType = HAL_UART_RXEVENT_TC; 8006c84: 687b ldr r3, [r7, #4] 8006c86: 2200 movs r2, #0 8006c88: 635a str r2, [r3, #52] @ 0x34 return HAL_OK; 8006c8a: 2300 movs r3, #0 } 8006c8c: 4618 mov r0, r3 8006c8e: 3708 adds r7, #8 8006c90: 46bd mov sp, r7 8006c92: bd80 pop {r7, pc} 08006c94 : * @param Size Amount of data elements (u8 or u16) to be sent * @param Timeout Timeout duration * @retval HAL status */ HAL_StatusTypeDef HAL_UART_Transmit(UART_HandleTypeDef *huart, const uint8_t *pData, uint16_t Size, uint32_t Timeout) { 8006c94: b580 push {r7, lr} 8006c96: b08a sub sp, #40 @ 0x28 8006c98: af02 add r7, sp, #8 8006c9a: 60f8 str r0, [r7, #12] 8006c9c: 60b9 str r1, [r7, #8] 8006c9e: 603b str r3, [r7, #0] 8006ca0: 4613 mov r3, r2 8006ca2: 80fb strh r3, [r7, #6] const uint8_t *pdata8bits; const uint16_t *pdata16bits; uint32_t tickstart = 0U; 8006ca4: 2300 movs r3, #0 8006ca6: 617b str r3, [r7, #20] /* Check that a Tx process is not already ongoing */ if (huart->gState == HAL_UART_STATE_READY) 8006ca8: 68fb ldr r3, [r7, #12] 8006caa: f893 3041 ldrb.w r3, [r3, #65] @ 0x41 8006cae: b2db uxtb r3, r3 8006cb0: 2b20 cmp r3, #32 8006cb2: d175 bne.n 8006da0 { if ((pData == NULL) || (Size == 0U)) 8006cb4: 68bb ldr r3, [r7, #8] 8006cb6: 2b00 cmp r3, #0 8006cb8: d002 beq.n 8006cc0 8006cba: 88fb ldrh r3, [r7, #6] 8006cbc: 2b00 cmp r3, #0 8006cbe: d101 bne.n 8006cc4 { return HAL_ERROR; 8006cc0: 2301 movs r3, #1 8006cc2: e06e b.n 8006da2 } huart->ErrorCode = HAL_UART_ERROR_NONE; 8006cc4: 68fb ldr r3, [r7, #12] 8006cc6: 2200 movs r2, #0 8006cc8: 645a str r2, [r3, #68] @ 0x44 huart->gState = HAL_UART_STATE_BUSY_TX; 8006cca: 68fb ldr r3, [r7, #12] 8006ccc: 2221 movs r2, #33 @ 0x21 8006cce: f883 2041 strb.w r2, [r3, #65] @ 0x41 /* Init tickstart for timeout management */ tickstart = HAL_GetTick(); 8006cd2: f7fc faff bl 80032d4 8006cd6: 6178 str r0, [r7, #20] huart->TxXferSize = Size; 8006cd8: 68fb ldr r3, [r7, #12] 8006cda: 88fa ldrh r2, [r7, #6] 8006cdc: 849a strh r2, [r3, #36] @ 0x24 huart->TxXferCount = Size; 8006cde: 68fb ldr r3, [r7, #12] 8006ce0: 88fa ldrh r2, [r7, #6] 8006ce2: 84da strh r2, [r3, #38] @ 0x26 /* In case of 9bits/No Parity transfer, pData needs to be handled as a uint16_t pointer */ if ((huart->Init.WordLength == UART_WORDLENGTH_9B) && (huart->Init.Parity == UART_PARITY_NONE)) 8006ce4: 68fb ldr r3, [r7, #12] 8006ce6: 689b ldr r3, [r3, #8] 8006ce8: f5b3 5f80 cmp.w r3, #4096 @ 0x1000 8006cec: d108 bne.n 8006d00 8006cee: 68fb ldr r3, [r7, #12] 8006cf0: 691b ldr r3, [r3, #16] 8006cf2: 2b00 cmp r3, #0 8006cf4: d104 bne.n 8006d00 { pdata8bits = NULL; 8006cf6: 2300 movs r3, #0 8006cf8: 61fb str r3, [r7, #28] pdata16bits = (const uint16_t *) pData; 8006cfa: 68bb ldr r3, [r7, #8] 8006cfc: 61bb str r3, [r7, #24] 8006cfe: e003 b.n 8006d08 } else { pdata8bits = pData; 8006d00: 68bb ldr r3, [r7, #8] 8006d02: 61fb str r3, [r7, #28] pdata16bits = NULL; 8006d04: 2300 movs r3, #0 8006d06: 61bb str r3, [r7, #24] } while (huart->TxXferCount > 0U) 8006d08: e02e b.n 8006d68 { if (UART_WaitOnFlagUntilTimeout(huart, UART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK) 8006d0a: 683b ldr r3, [r7, #0] 8006d0c: 9300 str r3, [sp, #0] 8006d0e: 697b ldr r3, [r7, #20] 8006d10: 2200 movs r2, #0 8006d12: 2180 movs r1, #128 @ 0x80 8006d14: 68f8 ldr r0, [r7, #12] 8006d16: f000 fb01 bl 800731c 8006d1a: 4603 mov r3, r0 8006d1c: 2b00 cmp r3, #0 8006d1e: d005 beq.n 8006d2c { huart->gState = HAL_UART_STATE_READY; 8006d20: 68fb ldr r3, [r7, #12] 8006d22: 2220 movs r2, #32 8006d24: f883 2041 strb.w r2, [r3, #65] @ 0x41 return HAL_TIMEOUT; 8006d28: 2303 movs r3, #3 8006d2a: e03a b.n 8006da2 } if (pdata8bits == NULL) 8006d2c: 69fb ldr r3, [r7, #28] 8006d2e: 2b00 cmp r3, #0 8006d30: d10b bne.n 8006d4a { huart->Instance->DR = (uint16_t)(*pdata16bits & 0x01FFU); 8006d32: 69bb ldr r3, [r7, #24] 8006d34: 881b ldrh r3, [r3, #0] 8006d36: 461a mov r2, r3 8006d38: 68fb ldr r3, [r7, #12] 8006d3a: 681b ldr r3, [r3, #0] 8006d3c: f3c2 0208 ubfx r2, r2, #0, #9 8006d40: 605a str r2, [r3, #4] pdata16bits++; 8006d42: 69bb ldr r3, [r7, #24] 8006d44: 3302 adds r3, #2 8006d46: 61bb str r3, [r7, #24] 8006d48: e007 b.n 8006d5a } else { huart->Instance->DR = (uint8_t)(*pdata8bits & 0xFFU); 8006d4a: 69fb ldr r3, [r7, #28] 8006d4c: 781a ldrb r2, [r3, #0] 8006d4e: 68fb ldr r3, [r7, #12] 8006d50: 681b ldr r3, [r3, #0] 8006d52: 605a str r2, [r3, #4] pdata8bits++; 8006d54: 69fb ldr r3, [r7, #28] 8006d56: 3301 adds r3, #1 8006d58: 61fb str r3, [r7, #28] } huart->TxXferCount--; 8006d5a: 68fb ldr r3, [r7, #12] 8006d5c: 8cdb ldrh r3, [r3, #38] @ 0x26 8006d5e: b29b uxth r3, r3 8006d60: 3b01 subs r3, #1 8006d62: b29a uxth r2, r3 8006d64: 68fb ldr r3, [r7, #12] 8006d66: 84da strh r2, [r3, #38] @ 0x26 while (huart->TxXferCount > 0U) 8006d68: 68fb ldr r3, [r7, #12] 8006d6a: 8cdb ldrh r3, [r3, #38] @ 0x26 8006d6c: b29b uxth r3, r3 8006d6e: 2b00 cmp r3, #0 8006d70: d1cb bne.n 8006d0a } if (UART_WaitOnFlagUntilTimeout(huart, UART_FLAG_TC, RESET, tickstart, Timeout) != HAL_OK) 8006d72: 683b ldr r3, [r7, #0] 8006d74: 9300 str r3, [sp, #0] 8006d76: 697b ldr r3, [r7, #20] 8006d78: 2200 movs r2, #0 8006d7a: 2140 movs r1, #64 @ 0x40 8006d7c: 68f8 ldr r0, [r7, #12] 8006d7e: f000 facd bl 800731c 8006d82: 4603 mov r3, r0 8006d84: 2b00 cmp r3, #0 8006d86: d005 beq.n 8006d94 { huart->gState = HAL_UART_STATE_READY; 8006d88: 68fb ldr r3, [r7, #12] 8006d8a: 2220 movs r2, #32 8006d8c: f883 2041 strb.w r2, [r3, #65] @ 0x41 return HAL_TIMEOUT; 8006d90: 2303 movs r3, #3 8006d92: e006 b.n 8006da2 } /* At end of Tx process, restore huart->gState to Ready */ huart->gState = HAL_UART_STATE_READY; 8006d94: 68fb ldr r3, [r7, #12] 8006d96: 2220 movs r2, #32 8006d98: f883 2041 strb.w r2, [r3, #65] @ 0x41 return HAL_OK; 8006d9c: 2300 movs r3, #0 8006d9e: e000 b.n 8006da2 } else { return HAL_BUSY; 8006da0: 2302 movs r3, #2 } } 8006da2: 4618 mov r0, r3 8006da4: 3720 adds r7, #32 8006da6: 46bd mov sp, r7 8006da8: bd80 pop {r7, pc} ... 08006dac : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval None */ void HAL_UART_IRQHandler(UART_HandleTypeDef *huart) { 8006dac: b580 push {r7, lr} 8006dae: b0ba sub sp, #232 @ 0xe8 8006db0: af00 add r7, sp, #0 8006db2: 6078 str r0, [r7, #4] uint32_t isrflags = READ_REG(huart->Instance->SR); 8006db4: 687b ldr r3, [r7, #4] 8006db6: 681b ldr r3, [r3, #0] 8006db8: 681b ldr r3, [r3, #0] 8006dba: f8c7 30e4 str.w r3, [r7, #228] @ 0xe4 uint32_t cr1its = READ_REG(huart->Instance->CR1); 8006dbe: 687b ldr r3, [r7, #4] 8006dc0: 681b ldr r3, [r3, #0] 8006dc2: 68db ldr r3, [r3, #12] 8006dc4: f8c7 30e0 str.w r3, [r7, #224] @ 0xe0 uint32_t cr3its = READ_REG(huart->Instance->CR3); 8006dc8: 687b ldr r3, [r7, #4] 8006dca: 681b ldr r3, [r3, #0] 8006dcc: 695b ldr r3, [r3, #20] 8006dce: f8c7 30dc str.w r3, [r7, #220] @ 0xdc uint32_t errorflags = 0x00U; 8006dd2: 2300 movs r3, #0 8006dd4: f8c7 30d8 str.w r3, [r7, #216] @ 0xd8 uint32_t dmarequest = 0x00U; 8006dd8: 2300 movs r3, #0 8006dda: f8c7 30d4 str.w r3, [r7, #212] @ 0xd4 /* If no error occurs */ errorflags = (isrflags & (uint32_t)(USART_SR_PE | USART_SR_FE | USART_SR_ORE | USART_SR_NE)); 8006dde: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006de2: f003 030f and.w r3, r3, #15 8006de6: f8c7 30d8 str.w r3, [r7, #216] @ 0xd8 if (errorflags == RESET) 8006dea: f8d7 30d8 ldr.w r3, [r7, #216] @ 0xd8 8006dee: 2b00 cmp r3, #0 8006df0: d10f bne.n 8006e12 { /* UART in mode Receiver -------------------------------------------------*/ if (((isrflags & USART_SR_RXNE) != RESET) && ((cr1its & USART_CR1_RXNEIE) != RESET)) 8006df2: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006df6: f003 0320 and.w r3, r3, #32 8006dfa: 2b00 cmp r3, #0 8006dfc: d009 beq.n 8006e12 8006dfe: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8006e02: f003 0320 and.w r3, r3, #32 8006e06: 2b00 cmp r3, #0 8006e08: d003 beq.n 8006e12 { UART_Receive_IT(huart); 8006e0a: 6878 ldr r0, [r7, #4] 8006e0c: f000 fbbc bl 8007588 return; 8006e10: e25b b.n 80072ca } } /* If some errors occur */ if ((errorflags != RESET) && (((cr3its & USART_CR3_EIE) != RESET) 8006e12: f8d7 30d8 ldr.w r3, [r7, #216] @ 0xd8 8006e16: 2b00 cmp r3, #0 8006e18: f000 80de beq.w 8006fd8 8006e1c: f8d7 30dc ldr.w r3, [r7, #220] @ 0xdc 8006e20: f003 0301 and.w r3, r3, #1 8006e24: 2b00 cmp r3, #0 8006e26: d106 bne.n 8006e36 || ((cr1its & (USART_CR1_RXNEIE | USART_CR1_PEIE)) != RESET))) 8006e28: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8006e2c: f403 7390 and.w r3, r3, #288 @ 0x120 8006e30: 2b00 cmp r3, #0 8006e32: f000 80d1 beq.w 8006fd8 { /* UART parity error interrupt occurred ----------------------------------*/ if (((isrflags & USART_SR_PE) != RESET) && ((cr1its & USART_CR1_PEIE) != RESET)) 8006e36: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006e3a: f003 0301 and.w r3, r3, #1 8006e3e: 2b00 cmp r3, #0 8006e40: d00b beq.n 8006e5a 8006e42: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8006e46: f403 7380 and.w r3, r3, #256 @ 0x100 8006e4a: 2b00 cmp r3, #0 8006e4c: d005 beq.n 8006e5a { huart->ErrorCode |= HAL_UART_ERROR_PE; 8006e4e: 687b ldr r3, [r7, #4] 8006e50: 6c5b ldr r3, [r3, #68] @ 0x44 8006e52: f043 0201 orr.w r2, r3, #1 8006e56: 687b ldr r3, [r7, #4] 8006e58: 645a str r2, [r3, #68] @ 0x44 } /* UART noise error interrupt occurred -----------------------------------*/ if (((isrflags & USART_SR_NE) != RESET) && ((cr3its & USART_CR3_EIE) != RESET)) 8006e5a: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006e5e: f003 0304 and.w r3, r3, #4 8006e62: 2b00 cmp r3, #0 8006e64: d00b beq.n 8006e7e 8006e66: f8d7 30dc ldr.w r3, [r7, #220] @ 0xdc 8006e6a: f003 0301 and.w r3, r3, #1 8006e6e: 2b00 cmp r3, #0 8006e70: d005 beq.n 8006e7e { huart->ErrorCode |= HAL_UART_ERROR_NE; 8006e72: 687b ldr r3, [r7, #4] 8006e74: 6c5b ldr r3, [r3, #68] @ 0x44 8006e76: f043 0202 orr.w r2, r3, #2 8006e7a: 687b ldr r3, [r7, #4] 8006e7c: 645a str r2, [r3, #68] @ 0x44 } /* UART frame error interrupt occurred -----------------------------------*/ if (((isrflags & USART_SR_FE) != RESET) && ((cr3its & USART_CR3_EIE) != RESET)) 8006e7e: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006e82: f003 0302 and.w r3, r3, #2 8006e86: 2b00 cmp r3, #0 8006e88: d00b beq.n 8006ea2 8006e8a: f8d7 30dc ldr.w r3, [r7, #220] @ 0xdc 8006e8e: f003 0301 and.w r3, r3, #1 8006e92: 2b00 cmp r3, #0 8006e94: d005 beq.n 8006ea2 { huart->ErrorCode |= HAL_UART_ERROR_FE; 8006e96: 687b ldr r3, [r7, #4] 8006e98: 6c5b ldr r3, [r3, #68] @ 0x44 8006e9a: f043 0204 orr.w r2, r3, #4 8006e9e: 687b ldr r3, [r7, #4] 8006ea0: 645a str r2, [r3, #68] @ 0x44 } /* UART Over-Run interrupt occurred --------------------------------------*/ if (((isrflags & USART_SR_ORE) != RESET) && (((cr1its & USART_CR1_RXNEIE) != RESET) 8006ea2: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006ea6: f003 0308 and.w r3, r3, #8 8006eaa: 2b00 cmp r3, #0 8006eac: d011 beq.n 8006ed2 8006eae: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8006eb2: f003 0320 and.w r3, r3, #32 8006eb6: 2b00 cmp r3, #0 8006eb8: d105 bne.n 8006ec6 || ((cr3its & USART_CR3_EIE) != RESET))) 8006eba: f8d7 30dc ldr.w r3, [r7, #220] @ 0xdc 8006ebe: f003 0301 and.w r3, r3, #1 8006ec2: 2b00 cmp r3, #0 8006ec4: d005 beq.n 8006ed2 { huart->ErrorCode |= HAL_UART_ERROR_ORE; 8006ec6: 687b ldr r3, [r7, #4] 8006ec8: 6c5b ldr r3, [r3, #68] @ 0x44 8006eca: f043 0208 orr.w r2, r3, #8 8006ece: 687b ldr r3, [r7, #4] 8006ed0: 645a str r2, [r3, #68] @ 0x44 } /* Call UART Error Call back function if need be --------------------------*/ if (huart->ErrorCode != HAL_UART_ERROR_NONE) 8006ed2: 687b ldr r3, [r7, #4] 8006ed4: 6c5b ldr r3, [r3, #68] @ 0x44 8006ed6: 2b00 cmp r3, #0 8006ed8: f000 81f2 beq.w 80072c0 { /* UART in mode Receiver -----------------------------------------------*/ if (((isrflags & USART_SR_RXNE) != RESET) && ((cr1its & USART_CR1_RXNEIE) != RESET)) 8006edc: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006ee0: f003 0320 and.w r3, r3, #32 8006ee4: 2b00 cmp r3, #0 8006ee6: d008 beq.n 8006efa 8006ee8: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8006eec: f003 0320 and.w r3, r3, #32 8006ef0: 2b00 cmp r3, #0 8006ef2: d002 beq.n 8006efa { UART_Receive_IT(huart); 8006ef4: 6878 ldr r0, [r7, #4] 8006ef6: f000 fb47 bl 8007588 } /* If Overrun error occurs, or if any error occurs in DMA mode reception, consider error as blocking */ dmarequest = HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR); 8006efa: 687b ldr r3, [r7, #4] 8006efc: 681b ldr r3, [r3, #0] 8006efe: 695b ldr r3, [r3, #20] 8006f00: f003 0340 and.w r3, r3, #64 @ 0x40 8006f04: 2b00 cmp r3, #0 8006f06: bf14 ite ne 8006f08: 2301 movne r3, #1 8006f0a: 2300 moveq r3, #0 8006f0c: b2db uxtb r3, r3 8006f0e: f8c7 30d4 str.w r3, [r7, #212] @ 0xd4 if (((huart->ErrorCode & HAL_UART_ERROR_ORE) != RESET) || dmarequest) 8006f12: 687b ldr r3, [r7, #4] 8006f14: 6c5b ldr r3, [r3, #68] @ 0x44 8006f16: f003 0308 and.w r3, r3, #8 8006f1a: 2b00 cmp r3, #0 8006f1c: d103 bne.n 8006f26 8006f1e: f8d7 30d4 ldr.w r3, [r7, #212] @ 0xd4 8006f22: 2b00 cmp r3, #0 8006f24: d04f beq.n 8006fc6 { /* Blocking error : transfer is aborted Set the UART state ready to be able to start again the process, Disable Rx Interrupts, and disable Rx DMA request, if ongoing */ UART_EndRxTransfer(huart); 8006f26: 6878 ldr r0, [r7, #4] 8006f28: f000 fa51 bl 80073ce /* Disable the UART DMA Rx request if enabled */ if (HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR)) 8006f2c: 687b ldr r3, [r7, #4] 8006f2e: 681b ldr r3, [r3, #0] 8006f30: 695b ldr r3, [r3, #20] 8006f32: f003 0340 and.w r3, r3, #64 @ 0x40 8006f36: 2b00 cmp r3, #0 8006f38: d041 beq.n 8006fbe { ATOMIC_CLEAR_BIT(huart->Instance->CR3, USART_CR3_DMAR); 8006f3a: 687b ldr r3, [r7, #4] 8006f3c: 681b ldr r3, [r3, #0] 8006f3e: 3314 adds r3, #20 8006f40: f8c7 309c str.w r3, [r7, #156] @ 0x9c */ __STATIC_FORCEINLINE uint32_t __LDREXW(volatile uint32_t *addr) { uint32_t result; __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 8006f44: f8d7 309c ldr.w r3, [r7, #156] @ 0x9c 8006f48: e853 3f00 ldrex r3, [r3] 8006f4c: f8c7 3098 str.w r3, [r7, #152] @ 0x98 return(result); 8006f50: f8d7 3098 ldr.w r3, [r7, #152] @ 0x98 8006f54: f023 0340 bic.w r3, r3, #64 @ 0x40 8006f58: f8c7 30d0 str.w r3, [r7, #208] @ 0xd0 8006f5c: 687b ldr r3, [r7, #4] 8006f5e: 681b ldr r3, [r3, #0] 8006f60: 3314 adds r3, #20 8006f62: f8d7 20d0 ldr.w r2, [r7, #208] @ 0xd0 8006f66: f8c7 20a8 str.w r2, [r7, #168] @ 0xa8 8006f6a: f8c7 30a4 str.w r3, [r7, #164] @ 0xa4 */ __STATIC_FORCEINLINE uint32_t __STREXW(uint32_t value, volatile uint32_t *addr) { uint32_t result; __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 8006f6e: f8d7 10a4 ldr.w r1, [r7, #164] @ 0xa4 8006f72: f8d7 20a8 ldr.w r2, [r7, #168] @ 0xa8 8006f76: e841 2300 strex r3, r2, [r1] 8006f7a: f8c7 30a0 str.w r3, [r7, #160] @ 0xa0 return(result); 8006f7e: f8d7 30a0 ldr.w r3, [r7, #160] @ 0xa0 8006f82: 2b00 cmp r3, #0 8006f84: d1d9 bne.n 8006f3a /* Abort the UART DMA Rx channel */ if (huart->hdmarx != NULL) 8006f86: 687b ldr r3, [r7, #4] 8006f88: 6bdb ldr r3, [r3, #60] @ 0x3c 8006f8a: 2b00 cmp r3, #0 8006f8c: d013 beq.n 8006fb6 { /* Set the UART DMA Abort callback : will lead to call HAL_UART_ErrorCallback() at end of DMA abort procedure */ huart->hdmarx->XferAbortCallback = UART_DMAAbortOnError; 8006f8e: 687b ldr r3, [r7, #4] 8006f90: 6bdb ldr r3, [r3, #60] @ 0x3c 8006f92: 4a7e ldr r2, [pc, #504] @ (800718c ) 8006f94: 635a str r2, [r3, #52] @ 0x34 if (HAL_DMA_Abort_IT(huart->hdmarx) != HAL_OK) 8006f96: 687b ldr r3, [r7, #4] 8006f98: 6bdb ldr r3, [r3, #60] @ 0x3c 8006f9a: 4618 mov r0, r3 8006f9c: f7fd f83c bl 8004018 8006fa0: 4603 mov r3, r0 8006fa2: 2b00 cmp r3, #0 8006fa4: d016 beq.n 8006fd4 { /* Call Directly XferAbortCallback function in case of error */ huart->hdmarx->XferAbortCallback(huart->hdmarx); 8006fa6: 687b ldr r3, [r7, #4] 8006fa8: 6bdb ldr r3, [r3, #60] @ 0x3c 8006faa: 6b5b ldr r3, [r3, #52] @ 0x34 8006fac: 687a ldr r2, [r7, #4] 8006fae: 6bd2 ldr r2, [r2, #60] @ 0x3c 8006fb0: 4610 mov r0, r2 8006fb2: 4798 blx r3 if (HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR)) 8006fb4: e00e b.n 8006fd4 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered error callback*/ huart->ErrorCallback(huart); #else /*Call legacy weak error callback*/ HAL_UART_ErrorCallback(huart); 8006fb6: 6878 ldr r0, [r7, #4] 8006fb8: f000 f99c bl 80072f4 if (HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR)) 8006fbc: e00a b.n 8006fd4 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered error callback*/ huart->ErrorCallback(huart); #else /*Call legacy weak error callback*/ HAL_UART_ErrorCallback(huart); 8006fbe: 6878 ldr r0, [r7, #4] 8006fc0: f000 f998 bl 80072f4 if (HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR)) 8006fc4: e006 b.n 8006fd4 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered error callback*/ huart->ErrorCallback(huart); #else /*Call legacy weak error callback*/ HAL_UART_ErrorCallback(huart); 8006fc6: 6878 ldr r0, [r7, #4] 8006fc8: f000 f994 bl 80072f4 #endif /* USE_HAL_UART_REGISTER_CALLBACKS */ huart->ErrorCode = HAL_UART_ERROR_NONE; 8006fcc: 687b ldr r3, [r7, #4] 8006fce: 2200 movs r2, #0 8006fd0: 645a str r2, [r3, #68] @ 0x44 } } return; 8006fd2: e175 b.n 80072c0 if (HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR)) 8006fd4: bf00 nop return; 8006fd6: e173 b.n 80072c0 } /* End if some error occurs */ /* Check current reception Mode : If Reception till IDLE event has been selected : */ if ((huart->ReceptionType == HAL_UART_RECEPTION_TOIDLE) 8006fd8: 687b ldr r3, [r7, #4] 8006fda: 6b1b ldr r3, [r3, #48] @ 0x30 8006fdc: 2b01 cmp r3, #1 8006fde: f040 814f bne.w 8007280 && ((isrflags & USART_SR_IDLE) != 0U) 8006fe2: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8006fe6: f003 0310 and.w r3, r3, #16 8006fea: 2b00 cmp r3, #0 8006fec: f000 8148 beq.w 8007280 && ((cr1its & USART_SR_IDLE) != 0U)) 8006ff0: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8006ff4: f003 0310 and.w r3, r3, #16 8006ff8: 2b00 cmp r3, #0 8006ffa: f000 8141 beq.w 8007280 { __HAL_UART_CLEAR_IDLEFLAG(huart); 8006ffe: 2300 movs r3, #0 8007000: 60bb str r3, [r7, #8] 8007002: 687b ldr r3, [r7, #4] 8007004: 681b ldr r3, [r3, #0] 8007006: 681b ldr r3, [r3, #0] 8007008: 60bb str r3, [r7, #8] 800700a: 687b ldr r3, [r7, #4] 800700c: 681b ldr r3, [r3, #0] 800700e: 685b ldr r3, [r3, #4] 8007010: 60bb str r3, [r7, #8] 8007012: 68bb ldr r3, [r7, #8] /* Check if DMA mode is enabled in UART */ if (HAL_IS_BIT_SET(huart->Instance->CR3, USART_CR3_DMAR)) 8007014: 687b ldr r3, [r7, #4] 8007016: 681b ldr r3, [r3, #0] 8007018: 695b ldr r3, [r3, #20] 800701a: f003 0340 and.w r3, r3, #64 @ 0x40 800701e: 2b00 cmp r3, #0 8007020: f000 80b6 beq.w 8007190 { /* DMA mode enabled */ /* Check received length : If all expected data are received, do nothing, (DMA cplt callback will be called). Otherwise, if at least one data has already been received, IDLE event is to be notified to user */ uint16_t nb_remaining_rx_data = (uint16_t) __HAL_DMA_GET_COUNTER(huart->hdmarx); 8007024: 687b ldr r3, [r7, #4] 8007026: 6bdb ldr r3, [r3, #60] @ 0x3c 8007028: 681b ldr r3, [r3, #0] 800702a: 685b ldr r3, [r3, #4] 800702c: f8a7 30be strh.w r3, [r7, #190] @ 0xbe if ((nb_remaining_rx_data > 0U) 8007030: f8b7 30be ldrh.w r3, [r7, #190] @ 0xbe 8007034: 2b00 cmp r3, #0 8007036: f000 8145 beq.w 80072c4 && (nb_remaining_rx_data < huart->RxXferSize)) 800703a: 687b ldr r3, [r7, #4] 800703c: 8d9b ldrh r3, [r3, #44] @ 0x2c 800703e: f8b7 20be ldrh.w r2, [r7, #190] @ 0xbe 8007042: 429a cmp r2, r3 8007044: f080 813e bcs.w 80072c4 { /* Reception is not complete */ huart->RxXferCount = nb_remaining_rx_data; 8007048: 687b ldr r3, [r7, #4] 800704a: f8b7 20be ldrh.w r2, [r7, #190] @ 0xbe 800704e: 85da strh r2, [r3, #46] @ 0x2e /* In Normal mode, end DMA xfer and HAL UART Rx process*/ if (huart->hdmarx->Init.Mode != DMA_CIRCULAR) 8007050: 687b ldr r3, [r7, #4] 8007052: 6bdb ldr r3, [r3, #60] @ 0x3c 8007054: 699b ldr r3, [r3, #24] 8007056: 2b20 cmp r3, #32 8007058: f000 8088 beq.w 800716c { /* Disable PE and ERR (Frame error, noise error, overrun error) interrupts */ ATOMIC_CLEAR_BIT(huart->Instance->CR1, USART_CR1_PEIE); 800705c: 687b ldr r3, [r7, #4] 800705e: 681b ldr r3, [r3, #0] 8007060: 330c adds r3, #12 8007062: f8c7 3088 str.w r3, [r7, #136] @ 0x88 __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 8007066: f8d7 3088 ldr.w r3, [r7, #136] @ 0x88 800706a: e853 3f00 ldrex r3, [r3] 800706e: f8c7 3084 str.w r3, [r7, #132] @ 0x84 return(result); 8007072: f8d7 3084 ldr.w r3, [r7, #132] @ 0x84 8007076: f423 7380 bic.w r3, r3, #256 @ 0x100 800707a: f8c7 30b8 str.w r3, [r7, #184] @ 0xb8 800707e: 687b ldr r3, [r7, #4] 8007080: 681b ldr r3, [r3, #0] 8007082: 330c adds r3, #12 8007084: f8d7 20b8 ldr.w r2, [r7, #184] @ 0xb8 8007088: f8c7 2094 str.w r2, [r7, #148] @ 0x94 800708c: f8c7 3090 str.w r3, [r7, #144] @ 0x90 __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 8007090: f8d7 1090 ldr.w r1, [r7, #144] @ 0x90 8007094: f8d7 2094 ldr.w r2, [r7, #148] @ 0x94 8007098: e841 2300 strex r3, r2, [r1] 800709c: f8c7 308c str.w r3, [r7, #140] @ 0x8c return(result); 80070a0: f8d7 308c ldr.w r3, [r7, #140] @ 0x8c 80070a4: 2b00 cmp r3, #0 80070a6: d1d9 bne.n 800705c ATOMIC_CLEAR_BIT(huart->Instance->CR3, USART_CR3_EIE); 80070a8: 687b ldr r3, [r7, #4] 80070aa: 681b ldr r3, [r3, #0] 80070ac: 3314 adds r3, #20 80070ae: 677b str r3, [r7, #116] @ 0x74 __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 80070b0: 6f7b ldr r3, [r7, #116] @ 0x74 80070b2: e853 3f00 ldrex r3, [r3] 80070b6: 673b str r3, [r7, #112] @ 0x70 return(result); 80070b8: 6f3b ldr r3, [r7, #112] @ 0x70 80070ba: f023 0301 bic.w r3, r3, #1 80070be: f8c7 30b4 str.w r3, [r7, #180] @ 0xb4 80070c2: 687b ldr r3, [r7, #4] 80070c4: 681b ldr r3, [r3, #0] 80070c6: 3314 adds r3, #20 80070c8: f8d7 20b4 ldr.w r2, [r7, #180] @ 0xb4 80070cc: f8c7 2080 str.w r2, [r7, #128] @ 0x80 80070d0: 67fb str r3, [r7, #124] @ 0x7c __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 80070d2: 6ff9 ldr r1, [r7, #124] @ 0x7c 80070d4: f8d7 2080 ldr.w r2, [r7, #128] @ 0x80 80070d8: e841 2300 strex r3, r2, [r1] 80070dc: 67bb str r3, [r7, #120] @ 0x78 return(result); 80070de: 6fbb ldr r3, [r7, #120] @ 0x78 80070e0: 2b00 cmp r3, #0 80070e2: d1e1 bne.n 80070a8 /* Disable the DMA transfer for the receiver request by resetting the DMAR bit in the UART CR3 register */ ATOMIC_CLEAR_BIT(huart->Instance->CR3, USART_CR3_DMAR); 80070e4: 687b ldr r3, [r7, #4] 80070e6: 681b ldr r3, [r3, #0] 80070e8: 3314 adds r3, #20 80070ea: 663b str r3, [r7, #96] @ 0x60 __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 80070ec: 6e3b ldr r3, [r7, #96] @ 0x60 80070ee: e853 3f00 ldrex r3, [r3] 80070f2: 65fb str r3, [r7, #92] @ 0x5c return(result); 80070f4: 6dfb ldr r3, [r7, #92] @ 0x5c 80070f6: f023 0340 bic.w r3, r3, #64 @ 0x40 80070fa: f8c7 30b0 str.w r3, [r7, #176] @ 0xb0 80070fe: 687b ldr r3, [r7, #4] 8007100: 681b ldr r3, [r3, #0] 8007102: 3314 adds r3, #20 8007104: f8d7 20b0 ldr.w r2, [r7, #176] @ 0xb0 8007108: 66fa str r2, [r7, #108] @ 0x6c 800710a: 66bb str r3, [r7, #104] @ 0x68 __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 800710c: 6eb9 ldr r1, [r7, #104] @ 0x68 800710e: 6efa ldr r2, [r7, #108] @ 0x6c 8007110: e841 2300 strex r3, r2, [r1] 8007114: 667b str r3, [r7, #100] @ 0x64 return(result); 8007116: 6e7b ldr r3, [r7, #100] @ 0x64 8007118: 2b00 cmp r3, #0 800711a: d1e3 bne.n 80070e4 /* At end of Rx process, restore huart->RxState to Ready */ huart->RxState = HAL_UART_STATE_READY; 800711c: 687b ldr r3, [r7, #4] 800711e: 2220 movs r2, #32 8007120: f883 2042 strb.w r2, [r3, #66] @ 0x42 huart->ReceptionType = HAL_UART_RECEPTION_STANDARD; 8007124: 687b ldr r3, [r7, #4] 8007126: 2200 movs r2, #0 8007128: 631a str r2, [r3, #48] @ 0x30 ATOMIC_CLEAR_BIT(huart->Instance->CR1, USART_CR1_IDLEIE); 800712a: 687b ldr r3, [r7, #4] 800712c: 681b ldr r3, [r3, #0] 800712e: 330c adds r3, #12 8007130: 64fb str r3, [r7, #76] @ 0x4c __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 8007132: 6cfb ldr r3, [r7, #76] @ 0x4c 8007134: e853 3f00 ldrex r3, [r3] 8007138: 64bb str r3, [r7, #72] @ 0x48 return(result); 800713a: 6cbb ldr r3, [r7, #72] @ 0x48 800713c: f023 0310 bic.w r3, r3, #16 8007140: f8c7 30ac str.w r3, [r7, #172] @ 0xac 8007144: 687b ldr r3, [r7, #4] 8007146: 681b ldr r3, [r3, #0] 8007148: 330c adds r3, #12 800714a: f8d7 20ac ldr.w r2, [r7, #172] @ 0xac 800714e: 65ba str r2, [r7, #88] @ 0x58 8007150: 657b str r3, [r7, #84] @ 0x54 __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 8007152: 6d79 ldr r1, [r7, #84] @ 0x54 8007154: 6dba ldr r2, [r7, #88] @ 0x58 8007156: e841 2300 strex r3, r2, [r1] 800715a: 653b str r3, [r7, #80] @ 0x50 return(result); 800715c: 6d3b ldr r3, [r7, #80] @ 0x50 800715e: 2b00 cmp r3, #0 8007160: d1e3 bne.n 800712a /* Last bytes received, so no need as the abort is immediate */ (void)HAL_DMA_Abort(huart->hdmarx); 8007162: 687b ldr r3, [r7, #4] 8007164: 6bdb ldr r3, [r3, #60] @ 0x3c 8007166: 4618 mov r0, r3 8007168: f7fc ff1a bl 8003fa0 } /* Initialize type of RxEvent that correspond to RxEvent callback execution; In this case, Rx Event type is Idle Event */ huart->RxEventType = HAL_UART_RXEVENT_IDLE; 800716c: 687b ldr r3, [r7, #4] 800716e: 2202 movs r2, #2 8007170: 635a str r2, [r3, #52] @ 0x34 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered Rx Event callback*/ huart->RxEventCallback(huart, (huart->RxXferSize - huart->RxXferCount)); #else /*Call legacy weak Rx Event callback*/ HAL_UARTEx_RxEventCallback(huart, (huart->RxXferSize - huart->RxXferCount)); 8007172: 687b ldr r3, [r7, #4] 8007174: 8d9a ldrh r2, [r3, #44] @ 0x2c 8007176: 687b ldr r3, [r7, #4] 8007178: 8ddb ldrh r3, [r3, #46] @ 0x2e 800717a: b29b uxth r3, r3 800717c: 1ad3 subs r3, r2, r3 800717e: b29b uxth r3, r3 8007180: 4619 mov r1, r3 8007182: 6878 ldr r0, [r7, #4] 8007184: f000 f8bf bl 8007306 #endif /* USE_HAL_UART_REGISTER_CALLBACKS */ } return; 8007188: e09c b.n 80072c4 800718a: bf00 nop 800718c: 08007493 .word 0x08007493 else { /* DMA mode not enabled */ /* Check received length : If all expected data are received, do nothing. Otherwise, if at least one data has already been received, IDLE event is to be notified to user */ uint16_t nb_rx_data = huart->RxXferSize - huart->RxXferCount; 8007190: 687b ldr r3, [r7, #4] 8007192: 8d9a ldrh r2, [r3, #44] @ 0x2c 8007194: 687b ldr r3, [r7, #4] 8007196: 8ddb ldrh r3, [r3, #46] @ 0x2e 8007198: b29b uxth r3, r3 800719a: 1ad3 subs r3, r2, r3 800719c: f8a7 30ce strh.w r3, [r7, #206] @ 0xce if ((huart->RxXferCount > 0U) 80071a0: 687b ldr r3, [r7, #4] 80071a2: 8ddb ldrh r3, [r3, #46] @ 0x2e 80071a4: b29b uxth r3, r3 80071a6: 2b00 cmp r3, #0 80071a8: f000 808e beq.w 80072c8 && (nb_rx_data > 0U)) 80071ac: f8b7 30ce ldrh.w r3, [r7, #206] @ 0xce 80071b0: 2b00 cmp r3, #0 80071b2: f000 8089 beq.w 80072c8 { /* Disable the UART Parity Error Interrupt and RXNE interrupts */ ATOMIC_CLEAR_BIT(huart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE)); 80071b6: 687b ldr r3, [r7, #4] 80071b8: 681b ldr r3, [r3, #0] 80071ba: 330c adds r3, #12 80071bc: 63bb str r3, [r7, #56] @ 0x38 __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 80071be: 6bbb ldr r3, [r7, #56] @ 0x38 80071c0: e853 3f00 ldrex r3, [r3] 80071c4: 637b str r3, [r7, #52] @ 0x34 return(result); 80071c6: 6b7b ldr r3, [r7, #52] @ 0x34 80071c8: f423 7390 bic.w r3, r3, #288 @ 0x120 80071cc: f8c7 30c8 str.w r3, [r7, #200] @ 0xc8 80071d0: 687b ldr r3, [r7, #4] 80071d2: 681b ldr r3, [r3, #0] 80071d4: 330c adds r3, #12 80071d6: f8d7 20c8 ldr.w r2, [r7, #200] @ 0xc8 80071da: 647a str r2, [r7, #68] @ 0x44 80071dc: 643b str r3, [r7, #64] @ 0x40 __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 80071de: 6c39 ldr r1, [r7, #64] @ 0x40 80071e0: 6c7a ldr r2, [r7, #68] @ 0x44 80071e2: e841 2300 strex r3, r2, [r1] 80071e6: 63fb str r3, [r7, #60] @ 0x3c return(result); 80071e8: 6bfb ldr r3, [r7, #60] @ 0x3c 80071ea: 2b00 cmp r3, #0 80071ec: d1e3 bne.n 80071b6 /* Disable the UART Error Interrupt: (Frame error, noise error, overrun error) */ ATOMIC_CLEAR_BIT(huart->Instance->CR3, USART_CR3_EIE); 80071ee: 687b ldr r3, [r7, #4] 80071f0: 681b ldr r3, [r3, #0] 80071f2: 3314 adds r3, #20 80071f4: 627b str r3, [r7, #36] @ 0x24 __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 80071f6: 6a7b ldr r3, [r7, #36] @ 0x24 80071f8: e853 3f00 ldrex r3, [r3] 80071fc: 623b str r3, [r7, #32] return(result); 80071fe: 6a3b ldr r3, [r7, #32] 8007200: f023 0301 bic.w r3, r3, #1 8007204: f8c7 30c4 str.w r3, [r7, #196] @ 0xc4 8007208: 687b ldr r3, [r7, #4] 800720a: 681b ldr r3, [r3, #0] 800720c: 3314 adds r3, #20 800720e: f8d7 20c4 ldr.w r2, [r7, #196] @ 0xc4 8007212: 633a str r2, [r7, #48] @ 0x30 8007214: 62fb str r3, [r7, #44] @ 0x2c __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 8007216: 6af9 ldr r1, [r7, #44] @ 0x2c 8007218: 6b3a ldr r2, [r7, #48] @ 0x30 800721a: e841 2300 strex r3, r2, [r1] 800721e: 62bb str r3, [r7, #40] @ 0x28 return(result); 8007220: 6abb ldr r3, [r7, #40] @ 0x28 8007222: 2b00 cmp r3, #0 8007224: d1e3 bne.n 80071ee /* Rx process is completed, restore huart->RxState to Ready */ huart->RxState = HAL_UART_STATE_READY; 8007226: 687b ldr r3, [r7, #4] 8007228: 2220 movs r2, #32 800722a: f883 2042 strb.w r2, [r3, #66] @ 0x42 huart->ReceptionType = HAL_UART_RECEPTION_STANDARD; 800722e: 687b ldr r3, [r7, #4] 8007230: 2200 movs r2, #0 8007232: 631a str r2, [r3, #48] @ 0x30 ATOMIC_CLEAR_BIT(huart->Instance->CR1, USART_CR1_IDLEIE); 8007234: 687b ldr r3, [r7, #4] 8007236: 681b ldr r3, [r3, #0] 8007238: 330c adds r3, #12 800723a: 613b str r3, [r7, #16] __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 800723c: 693b ldr r3, [r7, #16] 800723e: e853 3f00 ldrex r3, [r3] 8007242: 60fb str r3, [r7, #12] return(result); 8007244: 68fb ldr r3, [r7, #12] 8007246: f023 0310 bic.w r3, r3, #16 800724a: f8c7 30c0 str.w r3, [r7, #192] @ 0xc0 800724e: 687b ldr r3, [r7, #4] 8007250: 681b ldr r3, [r3, #0] 8007252: 330c adds r3, #12 8007254: f8d7 20c0 ldr.w r2, [r7, #192] @ 0xc0 8007258: 61fa str r2, [r7, #28] 800725a: 61bb str r3, [r7, #24] __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 800725c: 69b9 ldr r1, [r7, #24] 800725e: 69fa ldr r2, [r7, #28] 8007260: e841 2300 strex r3, r2, [r1] 8007264: 617b str r3, [r7, #20] return(result); 8007266: 697b ldr r3, [r7, #20] 8007268: 2b00 cmp r3, #0 800726a: d1e3 bne.n 8007234 /* Initialize type of RxEvent that correspond to RxEvent callback execution; In this case, Rx Event type is Idle Event */ huart->RxEventType = HAL_UART_RXEVENT_IDLE; 800726c: 687b ldr r3, [r7, #4] 800726e: 2202 movs r2, #2 8007270: 635a str r2, [r3, #52] @ 0x34 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered Rx complete callback*/ huart->RxEventCallback(huart, nb_rx_data); #else /*Call legacy weak Rx Event callback*/ HAL_UARTEx_RxEventCallback(huart, nb_rx_data); 8007272: f8b7 30ce ldrh.w r3, [r7, #206] @ 0xce 8007276: 4619 mov r1, r3 8007278: 6878 ldr r0, [r7, #4] 800727a: f000 f844 bl 8007306 #endif /* USE_HAL_UART_REGISTER_CALLBACKS */ } return; 800727e: e023 b.n 80072c8 } } /* UART in mode Transmitter ------------------------------------------------*/ if (((isrflags & USART_SR_TXE) != RESET) && ((cr1its & USART_CR1_TXEIE) != RESET)) 8007280: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 8007284: f003 0380 and.w r3, r3, #128 @ 0x80 8007288: 2b00 cmp r3, #0 800728a: d009 beq.n 80072a0 800728c: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 8007290: f003 0380 and.w r3, r3, #128 @ 0x80 8007294: 2b00 cmp r3, #0 8007296: d003 beq.n 80072a0 { UART_Transmit_IT(huart); 8007298: 6878 ldr r0, [r7, #4] 800729a: f000 f90e bl 80074ba return; 800729e: e014 b.n 80072ca } /* UART in mode Transmitter end --------------------------------------------*/ if (((isrflags & USART_SR_TC) != RESET) && ((cr1its & USART_CR1_TCIE) != RESET)) 80072a0: f8d7 30e4 ldr.w r3, [r7, #228] @ 0xe4 80072a4: f003 0340 and.w r3, r3, #64 @ 0x40 80072a8: 2b00 cmp r3, #0 80072aa: d00e beq.n 80072ca 80072ac: f8d7 30e0 ldr.w r3, [r7, #224] @ 0xe0 80072b0: f003 0340 and.w r3, r3, #64 @ 0x40 80072b4: 2b00 cmp r3, #0 80072b6: d008 beq.n 80072ca { UART_EndTransmit_IT(huart); 80072b8: 6878 ldr r0, [r7, #4] 80072ba: f000 f94d bl 8007558 return; 80072be: e004 b.n 80072ca return; 80072c0: bf00 nop 80072c2: e002 b.n 80072ca return; 80072c4: bf00 nop 80072c6: e000 b.n 80072ca return; 80072c8: bf00 nop } } 80072ca: 37e8 adds r7, #232 @ 0xe8 80072cc: 46bd mov sp, r7 80072ce: bd80 pop {r7, pc} 080072d0 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval None */ __weak void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart) { 80072d0: b480 push {r7} 80072d2: b083 sub sp, #12 80072d4: af00 add r7, sp, #0 80072d6: 6078 str r0, [r7, #4] /* Prevent unused argument(s) compilation warning */ UNUSED(huart); /* NOTE: This function should not be modified, when the callback is needed, the HAL_UART_TxCpltCallback could be implemented in the user file */ } 80072d8: bf00 nop 80072da: 370c adds r7, #12 80072dc: 46bd mov sp, r7 80072de: bc80 pop {r7} 80072e0: 4770 bx lr 080072e2 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval None */ __weak void HAL_UART_RxCpltCallback(UART_HandleTypeDef *huart) { 80072e2: b480 push {r7} 80072e4: b083 sub sp, #12 80072e6: af00 add r7, sp, #0 80072e8: 6078 str r0, [r7, #4] /* Prevent unused argument(s) compilation warning */ UNUSED(huart); /* NOTE: This function should not be modified, when the callback is needed, the HAL_UART_RxCpltCallback could be implemented in the user file */ } 80072ea: bf00 nop 80072ec: 370c adds r7, #12 80072ee: 46bd mov sp, r7 80072f0: bc80 pop {r7} 80072f2: 4770 bx lr 080072f4 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval None */ __weak void HAL_UART_ErrorCallback(UART_HandleTypeDef *huart) { 80072f4: b480 push {r7} 80072f6: b083 sub sp, #12 80072f8: af00 add r7, sp, #0 80072fa: 6078 str r0, [r7, #4] /* Prevent unused argument(s) compilation warning */ UNUSED(huart); /* NOTE: This function should not be modified, when the callback is needed, the HAL_UART_ErrorCallback could be implemented in the user file */ } 80072fc: bf00 nop 80072fe: 370c adds r7, #12 8007300: 46bd mov sp, r7 8007302: bc80 pop {r7} 8007304: 4770 bx lr 08007306 : * @param Size Number of data available in application reception buffer (indicates a position in * reception buffer until which, data are available) * @retval None */ __weak void HAL_UARTEx_RxEventCallback(UART_HandleTypeDef *huart, uint16_t Size) { 8007306: b480 push {r7} 8007308: b083 sub sp, #12 800730a: af00 add r7, sp, #0 800730c: 6078 str r0, [r7, #4] 800730e: 460b mov r3, r1 8007310: 807b strh r3, [r7, #2] UNUSED(Size); /* NOTE : This function should not be modified, when the callback is needed, the HAL_UARTEx_RxEventCallback can be implemented in the user file. */ } 8007312: bf00 nop 8007314: 370c adds r7, #12 8007316: 46bd mov sp, r7 8007318: bc80 pop {r7} 800731a: 4770 bx lr 0800731c : * @param Timeout Timeout duration * @retval HAL status */ static HAL_StatusTypeDef UART_WaitOnFlagUntilTimeout(UART_HandleTypeDef *huart, uint32_t Flag, FlagStatus Status, uint32_t Tickstart, uint32_t Timeout) { 800731c: b580 push {r7, lr} 800731e: b086 sub sp, #24 8007320: af00 add r7, sp, #0 8007322: 60f8 str r0, [r7, #12] 8007324: 60b9 str r1, [r7, #8] 8007326: 603b str r3, [r7, #0] 8007328: 4613 mov r3, r2 800732a: 71fb strb r3, [r7, #7] /* Wait until flag is set */ while ((__HAL_UART_GET_FLAG(huart, Flag) ? SET : RESET) == Status) 800732c: e03b b.n 80073a6 { /* Check for the Timeout */ if (Timeout != HAL_MAX_DELAY) 800732e: 6a3b ldr r3, [r7, #32] 8007330: f1b3 3fff cmp.w r3, #4294967295 8007334: d037 beq.n 80073a6 { if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U)) 8007336: f7fb ffcd bl 80032d4 800733a: 4602 mov r2, r0 800733c: 683b ldr r3, [r7, #0] 800733e: 1ad3 subs r3, r2, r3 8007340: 6a3a ldr r2, [r7, #32] 8007342: 429a cmp r2, r3 8007344: d302 bcc.n 800734c 8007346: 6a3b ldr r3, [r7, #32] 8007348: 2b00 cmp r3, #0 800734a: d101 bne.n 8007350 { return HAL_TIMEOUT; 800734c: 2303 movs r3, #3 800734e: e03a b.n 80073c6 } if ((READ_BIT(huart->Instance->CR1, USART_CR1_RE) != 0U) && (Flag != UART_FLAG_TXE) && (Flag != UART_FLAG_TC)) 8007350: 68fb ldr r3, [r7, #12] 8007352: 681b ldr r3, [r3, #0] 8007354: 68db ldr r3, [r3, #12] 8007356: f003 0304 and.w r3, r3, #4 800735a: 2b00 cmp r3, #0 800735c: d023 beq.n 80073a6 800735e: 68bb ldr r3, [r7, #8] 8007360: 2b80 cmp r3, #128 @ 0x80 8007362: d020 beq.n 80073a6 8007364: 68bb ldr r3, [r7, #8] 8007366: 2b40 cmp r3, #64 @ 0x40 8007368: d01d beq.n 80073a6 { if (__HAL_UART_GET_FLAG(huart, UART_FLAG_ORE) == SET) 800736a: 68fb ldr r3, [r7, #12] 800736c: 681b ldr r3, [r3, #0] 800736e: 681b ldr r3, [r3, #0] 8007370: f003 0308 and.w r3, r3, #8 8007374: 2b08 cmp r3, #8 8007376: d116 bne.n 80073a6 { /* Clear Overrun Error flag*/ __HAL_UART_CLEAR_OREFLAG(huart); 8007378: 2300 movs r3, #0 800737a: 617b str r3, [r7, #20] 800737c: 68fb ldr r3, [r7, #12] 800737e: 681b ldr r3, [r3, #0] 8007380: 681b ldr r3, [r3, #0] 8007382: 617b str r3, [r7, #20] 8007384: 68fb ldr r3, [r7, #12] 8007386: 681b ldr r3, [r3, #0] 8007388: 685b ldr r3, [r3, #4] 800738a: 617b str r3, [r7, #20] 800738c: 697b ldr r3, [r7, #20] /* Blocking error : transfer is aborted Set the UART state ready to be able to start again the process, Disable Rx Interrupts if ongoing */ UART_EndRxTransfer(huart); 800738e: 68f8 ldr r0, [r7, #12] 8007390: f000 f81d bl 80073ce huart->ErrorCode = HAL_UART_ERROR_ORE; 8007394: 68fb ldr r3, [r7, #12] 8007396: 2208 movs r2, #8 8007398: 645a str r2, [r3, #68] @ 0x44 /* Process Unlocked */ __HAL_UNLOCK(huart); 800739a: 68fb ldr r3, [r7, #12] 800739c: 2200 movs r2, #0 800739e: f883 2040 strb.w r2, [r3, #64] @ 0x40 return HAL_ERROR; 80073a2: 2301 movs r3, #1 80073a4: e00f b.n 80073c6 while ((__HAL_UART_GET_FLAG(huart, Flag) ? SET : RESET) == Status) 80073a6: 68fb ldr r3, [r7, #12] 80073a8: 681b ldr r3, [r3, #0] 80073aa: 681a ldr r2, [r3, #0] 80073ac: 68bb ldr r3, [r7, #8] 80073ae: 4013 ands r3, r2 80073b0: 68ba ldr r2, [r7, #8] 80073b2: 429a cmp r2, r3 80073b4: bf0c ite eq 80073b6: 2301 moveq r3, #1 80073b8: 2300 movne r3, #0 80073ba: b2db uxtb r3, r3 80073bc: 461a mov r2, r3 80073be: 79fb ldrb r3, [r7, #7] 80073c0: 429a cmp r2, r3 80073c2: d0b4 beq.n 800732e } } } } return HAL_OK; 80073c4: 2300 movs r3, #0 } 80073c6: 4618 mov r0, r3 80073c8: 3718 adds r7, #24 80073ca: 46bd mov sp, r7 80073cc: bd80 pop {r7, pc} 080073ce : * @brief End ongoing Rx transfer on UART peripheral (following error detection or Reception completion). * @param huart UART handle. * @retval None */ static void UART_EndRxTransfer(UART_HandleTypeDef *huart) { 80073ce: b480 push {r7} 80073d0: b095 sub sp, #84 @ 0x54 80073d2: af00 add r7, sp, #0 80073d4: 6078 str r0, [r7, #4] /* Disable RXNE, PE and ERR (Frame error, noise error, overrun error) interrupts */ ATOMIC_CLEAR_BIT(huart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE)); 80073d6: 687b ldr r3, [r7, #4] 80073d8: 681b ldr r3, [r3, #0] 80073da: 330c adds r3, #12 80073dc: 637b str r3, [r7, #52] @ 0x34 __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 80073de: 6b7b ldr r3, [r7, #52] @ 0x34 80073e0: e853 3f00 ldrex r3, [r3] 80073e4: 633b str r3, [r7, #48] @ 0x30 return(result); 80073e6: 6b3b ldr r3, [r7, #48] @ 0x30 80073e8: f423 7390 bic.w r3, r3, #288 @ 0x120 80073ec: 64fb str r3, [r7, #76] @ 0x4c 80073ee: 687b ldr r3, [r7, #4] 80073f0: 681b ldr r3, [r3, #0] 80073f2: 330c adds r3, #12 80073f4: 6cfa ldr r2, [r7, #76] @ 0x4c 80073f6: 643a str r2, [r7, #64] @ 0x40 80073f8: 63fb str r3, [r7, #60] @ 0x3c __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 80073fa: 6bf9 ldr r1, [r7, #60] @ 0x3c 80073fc: 6c3a ldr r2, [r7, #64] @ 0x40 80073fe: e841 2300 strex r3, r2, [r1] 8007402: 63bb str r3, [r7, #56] @ 0x38 return(result); 8007404: 6bbb ldr r3, [r7, #56] @ 0x38 8007406: 2b00 cmp r3, #0 8007408: d1e5 bne.n 80073d6 ATOMIC_CLEAR_BIT(huart->Instance->CR3, USART_CR3_EIE); 800740a: 687b ldr r3, [r7, #4] 800740c: 681b ldr r3, [r3, #0] 800740e: 3314 adds r3, #20 8007410: 623b str r3, [r7, #32] __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 8007412: 6a3b ldr r3, [r7, #32] 8007414: e853 3f00 ldrex r3, [r3] 8007418: 61fb str r3, [r7, #28] return(result); 800741a: 69fb ldr r3, [r7, #28] 800741c: f023 0301 bic.w r3, r3, #1 8007420: 64bb str r3, [r7, #72] @ 0x48 8007422: 687b ldr r3, [r7, #4] 8007424: 681b ldr r3, [r3, #0] 8007426: 3314 adds r3, #20 8007428: 6cba ldr r2, [r7, #72] @ 0x48 800742a: 62fa str r2, [r7, #44] @ 0x2c 800742c: 62bb str r3, [r7, #40] @ 0x28 __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 800742e: 6ab9 ldr r1, [r7, #40] @ 0x28 8007430: 6afa ldr r2, [r7, #44] @ 0x2c 8007432: e841 2300 strex r3, r2, [r1] 8007436: 627b str r3, [r7, #36] @ 0x24 return(result); 8007438: 6a7b ldr r3, [r7, #36] @ 0x24 800743a: 2b00 cmp r3, #0 800743c: d1e5 bne.n 800740a /* In case of reception waiting for IDLE event, disable also the IDLE IE interrupt source */ if (huart->ReceptionType == HAL_UART_RECEPTION_TOIDLE) 800743e: 687b ldr r3, [r7, #4] 8007440: 6b1b ldr r3, [r3, #48] @ 0x30 8007442: 2b01 cmp r3, #1 8007444: d119 bne.n 800747a { ATOMIC_CLEAR_BIT(huart->Instance->CR1, USART_CR1_IDLEIE); 8007446: 687b ldr r3, [r7, #4] 8007448: 681b ldr r3, [r3, #0] 800744a: 330c adds r3, #12 800744c: 60fb str r3, [r7, #12] __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 800744e: 68fb ldr r3, [r7, #12] 8007450: e853 3f00 ldrex r3, [r3] 8007454: 60bb str r3, [r7, #8] return(result); 8007456: 68bb ldr r3, [r7, #8] 8007458: f023 0310 bic.w r3, r3, #16 800745c: 647b str r3, [r7, #68] @ 0x44 800745e: 687b ldr r3, [r7, #4] 8007460: 681b ldr r3, [r3, #0] 8007462: 330c adds r3, #12 8007464: 6c7a ldr r2, [r7, #68] @ 0x44 8007466: 61ba str r2, [r7, #24] 8007468: 617b str r3, [r7, #20] __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 800746a: 6979 ldr r1, [r7, #20] 800746c: 69ba ldr r2, [r7, #24] 800746e: e841 2300 strex r3, r2, [r1] 8007472: 613b str r3, [r7, #16] return(result); 8007474: 693b ldr r3, [r7, #16] 8007476: 2b00 cmp r3, #0 8007478: d1e5 bne.n 8007446 } /* At end of Rx process, restore huart->RxState to Ready */ huart->RxState = HAL_UART_STATE_READY; 800747a: 687b ldr r3, [r7, #4] 800747c: 2220 movs r2, #32 800747e: f883 2042 strb.w r2, [r3, #66] @ 0x42 huart->ReceptionType = HAL_UART_RECEPTION_STANDARD; 8007482: 687b ldr r3, [r7, #4] 8007484: 2200 movs r2, #0 8007486: 631a str r2, [r3, #48] @ 0x30 } 8007488: bf00 nop 800748a: 3754 adds r7, #84 @ 0x54 800748c: 46bd mov sp, r7 800748e: bc80 pop {r7} 8007490: 4770 bx lr 08007492 : * @param hdma Pointer to a DMA_HandleTypeDef structure that contains * the configuration information for the specified DMA module. * @retval None */ static void UART_DMAAbortOnError(DMA_HandleTypeDef *hdma) { 8007492: b580 push {r7, lr} 8007494: b084 sub sp, #16 8007496: af00 add r7, sp, #0 8007498: 6078 str r0, [r7, #4] UART_HandleTypeDef *huart = (UART_HandleTypeDef *)((DMA_HandleTypeDef *)hdma)->Parent; 800749a: 687b ldr r3, [r7, #4] 800749c: 6a5b ldr r3, [r3, #36] @ 0x24 800749e: 60fb str r3, [r7, #12] huart->RxXferCount = 0x00U; 80074a0: 68fb ldr r3, [r7, #12] 80074a2: 2200 movs r2, #0 80074a4: 85da strh r2, [r3, #46] @ 0x2e huart->TxXferCount = 0x00U; 80074a6: 68fb ldr r3, [r7, #12] 80074a8: 2200 movs r2, #0 80074aa: 84da strh r2, [r3, #38] @ 0x26 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered error callback*/ huart->ErrorCallback(huart); #else /*Call legacy weak error callback*/ HAL_UART_ErrorCallback(huart); 80074ac: 68f8 ldr r0, [r7, #12] 80074ae: f7ff ff21 bl 80072f4 #endif /* USE_HAL_UART_REGISTER_CALLBACKS */ } 80074b2: bf00 nop 80074b4: 3710 adds r7, #16 80074b6: 46bd mov sp, r7 80074b8: bd80 pop {r7, pc} 080074ba : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval HAL status */ static HAL_StatusTypeDef UART_Transmit_IT(UART_HandleTypeDef *huart) { 80074ba: b480 push {r7} 80074bc: b085 sub sp, #20 80074be: af00 add r7, sp, #0 80074c0: 6078 str r0, [r7, #4] const uint16_t *tmp; /* Check that a Tx process is ongoing */ if (huart->gState == HAL_UART_STATE_BUSY_TX) 80074c2: 687b ldr r3, [r7, #4] 80074c4: f893 3041 ldrb.w r3, [r3, #65] @ 0x41 80074c8: b2db uxtb r3, r3 80074ca: 2b21 cmp r3, #33 @ 0x21 80074cc: d13e bne.n 800754c { if ((huart->Init.WordLength == UART_WORDLENGTH_9B) && (huart->Init.Parity == UART_PARITY_NONE)) 80074ce: 687b ldr r3, [r7, #4] 80074d0: 689b ldr r3, [r3, #8] 80074d2: f5b3 5f80 cmp.w r3, #4096 @ 0x1000 80074d6: d114 bne.n 8007502 80074d8: 687b ldr r3, [r7, #4] 80074da: 691b ldr r3, [r3, #16] 80074dc: 2b00 cmp r3, #0 80074de: d110 bne.n 8007502 { tmp = (const uint16_t *) huart->pTxBuffPtr; 80074e0: 687b ldr r3, [r7, #4] 80074e2: 6a1b ldr r3, [r3, #32] 80074e4: 60fb str r3, [r7, #12] huart->Instance->DR = (uint16_t)(*tmp & (uint16_t)0x01FF); 80074e6: 68fb ldr r3, [r7, #12] 80074e8: 881b ldrh r3, [r3, #0] 80074ea: 461a mov r2, r3 80074ec: 687b ldr r3, [r7, #4] 80074ee: 681b ldr r3, [r3, #0] 80074f0: f3c2 0208 ubfx r2, r2, #0, #9 80074f4: 605a str r2, [r3, #4] huart->pTxBuffPtr += 2U; 80074f6: 687b ldr r3, [r7, #4] 80074f8: 6a1b ldr r3, [r3, #32] 80074fa: 1c9a adds r2, r3, #2 80074fc: 687b ldr r3, [r7, #4] 80074fe: 621a str r2, [r3, #32] 8007500: e008 b.n 8007514 } else { huart->Instance->DR = (uint8_t)(*huart->pTxBuffPtr++ & (uint8_t)0x00FF); 8007502: 687b ldr r3, [r7, #4] 8007504: 6a1b ldr r3, [r3, #32] 8007506: 1c59 adds r1, r3, #1 8007508: 687a ldr r2, [r7, #4] 800750a: 6211 str r1, [r2, #32] 800750c: 781a ldrb r2, [r3, #0] 800750e: 687b ldr r3, [r7, #4] 8007510: 681b ldr r3, [r3, #0] 8007512: 605a str r2, [r3, #4] } if (--huart->TxXferCount == 0U) 8007514: 687b ldr r3, [r7, #4] 8007516: 8cdb ldrh r3, [r3, #38] @ 0x26 8007518: b29b uxth r3, r3 800751a: 3b01 subs r3, #1 800751c: b29b uxth r3, r3 800751e: 687a ldr r2, [r7, #4] 8007520: 4619 mov r1, r3 8007522: 84d1 strh r1, [r2, #38] @ 0x26 8007524: 2b00 cmp r3, #0 8007526: d10f bne.n 8007548 { /* Disable the UART Transmit Data Register Empty Interrupt */ __HAL_UART_DISABLE_IT(huart, UART_IT_TXE); 8007528: 687b ldr r3, [r7, #4] 800752a: 681b ldr r3, [r3, #0] 800752c: 68da ldr r2, [r3, #12] 800752e: 687b ldr r3, [r7, #4] 8007530: 681b ldr r3, [r3, #0] 8007532: f022 0280 bic.w r2, r2, #128 @ 0x80 8007536: 60da str r2, [r3, #12] /* Enable the UART Transmit Complete Interrupt */ __HAL_UART_ENABLE_IT(huart, UART_IT_TC); 8007538: 687b ldr r3, [r7, #4] 800753a: 681b ldr r3, [r3, #0] 800753c: 68da ldr r2, [r3, #12] 800753e: 687b ldr r3, [r7, #4] 8007540: 681b ldr r3, [r3, #0] 8007542: f042 0240 orr.w r2, r2, #64 @ 0x40 8007546: 60da str r2, [r3, #12] } return HAL_OK; 8007548: 2300 movs r3, #0 800754a: e000 b.n 800754e } else { return HAL_BUSY; 800754c: 2302 movs r3, #2 } } 800754e: 4618 mov r0, r3 8007550: 3714 adds r7, #20 8007552: 46bd mov sp, r7 8007554: bc80 pop {r7} 8007556: 4770 bx lr 08007558 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval HAL status */ static HAL_StatusTypeDef UART_EndTransmit_IT(UART_HandleTypeDef *huart) { 8007558: b580 push {r7, lr} 800755a: b082 sub sp, #8 800755c: af00 add r7, sp, #0 800755e: 6078 str r0, [r7, #4] /* Disable the UART Transmit Complete Interrupt */ __HAL_UART_DISABLE_IT(huart, UART_IT_TC); 8007560: 687b ldr r3, [r7, #4] 8007562: 681b ldr r3, [r3, #0] 8007564: 68da ldr r2, [r3, #12] 8007566: 687b ldr r3, [r7, #4] 8007568: 681b ldr r3, [r3, #0] 800756a: f022 0240 bic.w r2, r2, #64 @ 0x40 800756e: 60da str r2, [r3, #12] /* Tx process is ended, restore huart->gState to Ready */ huart->gState = HAL_UART_STATE_READY; 8007570: 687b ldr r3, [r7, #4] 8007572: 2220 movs r2, #32 8007574: f883 2041 strb.w r2, [r3, #65] @ 0x41 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered Tx complete callback*/ huart->TxCpltCallback(huart); #else /*Call legacy weak Tx complete callback*/ HAL_UART_TxCpltCallback(huart); 8007578: 6878 ldr r0, [r7, #4] 800757a: f7ff fea9 bl 80072d0 #endif /* USE_HAL_UART_REGISTER_CALLBACKS */ return HAL_OK; 800757e: 2300 movs r3, #0 } 8007580: 4618 mov r0, r3 8007582: 3708 adds r7, #8 8007584: 46bd mov sp, r7 8007586: bd80 pop {r7, pc} 08007588 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval HAL status */ static HAL_StatusTypeDef UART_Receive_IT(UART_HandleTypeDef *huart) { 8007588: b580 push {r7, lr} 800758a: b08c sub sp, #48 @ 0x30 800758c: af00 add r7, sp, #0 800758e: 6078 str r0, [r7, #4] uint8_t *pdata8bits; uint16_t *pdata16bits; /* Check that a Rx process is ongoing */ if (huart->RxState == HAL_UART_STATE_BUSY_RX) 8007590: 687b ldr r3, [r7, #4] 8007592: f893 3042 ldrb.w r3, [r3, #66] @ 0x42 8007596: b2db uxtb r3, r3 8007598: 2b22 cmp r3, #34 @ 0x22 800759a: f040 80ae bne.w 80076fa { if ((huart->Init.WordLength == UART_WORDLENGTH_9B) && (huart->Init.Parity == UART_PARITY_NONE)) 800759e: 687b ldr r3, [r7, #4] 80075a0: 689b ldr r3, [r3, #8] 80075a2: f5b3 5f80 cmp.w r3, #4096 @ 0x1000 80075a6: d117 bne.n 80075d8 80075a8: 687b ldr r3, [r7, #4] 80075aa: 691b ldr r3, [r3, #16] 80075ac: 2b00 cmp r3, #0 80075ae: d113 bne.n 80075d8 { pdata8bits = NULL; 80075b0: 2300 movs r3, #0 80075b2: 62fb str r3, [r7, #44] @ 0x2c pdata16bits = (uint16_t *) huart->pRxBuffPtr; 80075b4: 687b ldr r3, [r7, #4] 80075b6: 6a9b ldr r3, [r3, #40] @ 0x28 80075b8: 62bb str r3, [r7, #40] @ 0x28 *pdata16bits = (uint16_t)(huart->Instance->DR & (uint16_t)0x01FF); 80075ba: 687b ldr r3, [r7, #4] 80075bc: 681b ldr r3, [r3, #0] 80075be: 685b ldr r3, [r3, #4] 80075c0: b29b uxth r3, r3 80075c2: f3c3 0308 ubfx r3, r3, #0, #9 80075c6: b29a uxth r2, r3 80075c8: 6abb ldr r3, [r7, #40] @ 0x28 80075ca: 801a strh r2, [r3, #0] huart->pRxBuffPtr += 2U; 80075cc: 687b ldr r3, [r7, #4] 80075ce: 6a9b ldr r3, [r3, #40] @ 0x28 80075d0: 1c9a adds r2, r3, #2 80075d2: 687b ldr r3, [r7, #4] 80075d4: 629a str r2, [r3, #40] @ 0x28 80075d6: e026 b.n 8007626 } else { pdata8bits = (uint8_t *) huart->pRxBuffPtr; 80075d8: 687b ldr r3, [r7, #4] 80075da: 6a9b ldr r3, [r3, #40] @ 0x28 80075dc: 62fb str r3, [r7, #44] @ 0x2c pdata16bits = NULL; 80075de: 2300 movs r3, #0 80075e0: 62bb str r3, [r7, #40] @ 0x28 if ((huart->Init.WordLength == UART_WORDLENGTH_9B) || ((huart->Init.WordLength == UART_WORDLENGTH_8B) && (huart->Init.Parity == UART_PARITY_NONE))) 80075e2: 687b ldr r3, [r7, #4] 80075e4: 689b ldr r3, [r3, #8] 80075e6: f5b3 5f80 cmp.w r3, #4096 @ 0x1000 80075ea: d007 beq.n 80075fc 80075ec: 687b ldr r3, [r7, #4] 80075ee: 689b ldr r3, [r3, #8] 80075f0: 2b00 cmp r3, #0 80075f2: d10a bne.n 800760a 80075f4: 687b ldr r3, [r7, #4] 80075f6: 691b ldr r3, [r3, #16] 80075f8: 2b00 cmp r3, #0 80075fa: d106 bne.n 800760a { *pdata8bits = (uint8_t)(huart->Instance->DR & (uint8_t)0x00FF); 80075fc: 687b ldr r3, [r7, #4] 80075fe: 681b ldr r3, [r3, #0] 8007600: 685b ldr r3, [r3, #4] 8007602: b2da uxtb r2, r3 8007604: 6afb ldr r3, [r7, #44] @ 0x2c 8007606: 701a strb r2, [r3, #0] 8007608: e008 b.n 800761c } else { *pdata8bits = (uint8_t)(huart->Instance->DR & (uint8_t)0x007F); 800760a: 687b ldr r3, [r7, #4] 800760c: 681b ldr r3, [r3, #0] 800760e: 685b ldr r3, [r3, #4] 8007610: b2db uxtb r3, r3 8007612: f003 037f and.w r3, r3, #127 @ 0x7f 8007616: b2da uxtb r2, r3 8007618: 6afb ldr r3, [r7, #44] @ 0x2c 800761a: 701a strb r2, [r3, #0] } huart->pRxBuffPtr += 1U; 800761c: 687b ldr r3, [r7, #4] 800761e: 6a9b ldr r3, [r3, #40] @ 0x28 8007620: 1c5a adds r2, r3, #1 8007622: 687b ldr r3, [r7, #4] 8007624: 629a str r2, [r3, #40] @ 0x28 } if (--huart->RxXferCount == 0U) 8007626: 687b ldr r3, [r7, #4] 8007628: 8ddb ldrh r3, [r3, #46] @ 0x2e 800762a: b29b uxth r3, r3 800762c: 3b01 subs r3, #1 800762e: b29b uxth r3, r3 8007630: 687a ldr r2, [r7, #4] 8007632: 4619 mov r1, r3 8007634: 85d1 strh r1, [r2, #46] @ 0x2e 8007636: 2b00 cmp r3, #0 8007638: d15d bne.n 80076f6 { /* Disable the UART Data Register not empty Interrupt */ __HAL_UART_DISABLE_IT(huart, UART_IT_RXNE); 800763a: 687b ldr r3, [r7, #4] 800763c: 681b ldr r3, [r3, #0] 800763e: 68da ldr r2, [r3, #12] 8007640: 687b ldr r3, [r7, #4] 8007642: 681b ldr r3, [r3, #0] 8007644: f022 0220 bic.w r2, r2, #32 8007648: 60da str r2, [r3, #12] /* Disable the UART Parity Error Interrupt */ __HAL_UART_DISABLE_IT(huart, UART_IT_PE); 800764a: 687b ldr r3, [r7, #4] 800764c: 681b ldr r3, [r3, #0] 800764e: 68da ldr r2, [r3, #12] 8007650: 687b ldr r3, [r7, #4] 8007652: 681b ldr r3, [r3, #0] 8007654: f422 7280 bic.w r2, r2, #256 @ 0x100 8007658: 60da str r2, [r3, #12] /* Disable the UART Error Interrupt: (Frame error, noise error, overrun error) */ __HAL_UART_DISABLE_IT(huart, UART_IT_ERR); 800765a: 687b ldr r3, [r7, #4] 800765c: 681b ldr r3, [r3, #0] 800765e: 695a ldr r2, [r3, #20] 8007660: 687b ldr r3, [r7, #4] 8007662: 681b ldr r3, [r3, #0] 8007664: f022 0201 bic.w r2, r2, #1 8007668: 615a str r2, [r3, #20] /* Rx process is completed, restore huart->RxState to Ready */ huart->RxState = HAL_UART_STATE_READY; 800766a: 687b ldr r3, [r7, #4] 800766c: 2220 movs r2, #32 800766e: f883 2042 strb.w r2, [r3, #66] @ 0x42 /* Initialize type of RxEvent to Transfer Complete */ huart->RxEventType = HAL_UART_RXEVENT_TC; 8007672: 687b ldr r3, [r7, #4] 8007674: 2200 movs r2, #0 8007676: 635a str r2, [r3, #52] @ 0x34 /* Check current reception Mode : If Reception till IDLE event has been selected : */ if (huart->ReceptionType == HAL_UART_RECEPTION_TOIDLE) 8007678: 687b ldr r3, [r7, #4] 800767a: 6b1b ldr r3, [r3, #48] @ 0x30 800767c: 2b01 cmp r3, #1 800767e: d135 bne.n 80076ec { /* Set reception type to Standard */ huart->ReceptionType = HAL_UART_RECEPTION_STANDARD; 8007680: 687b ldr r3, [r7, #4] 8007682: 2200 movs r2, #0 8007684: 631a str r2, [r3, #48] @ 0x30 /* Disable IDLE interrupt */ ATOMIC_CLEAR_BIT(huart->Instance->CR1, USART_CR1_IDLEIE); 8007686: 687b ldr r3, [r7, #4] 8007688: 681b ldr r3, [r3, #0] 800768a: 330c adds r3, #12 800768c: 617b str r3, [r7, #20] __ASM volatile ("ldrex %0, %1" : "=r" (result) : "Q" (*addr) ); 800768e: 697b ldr r3, [r7, #20] 8007690: e853 3f00 ldrex r3, [r3] 8007694: 613b str r3, [r7, #16] return(result); 8007696: 693b ldr r3, [r7, #16] 8007698: f023 0310 bic.w r3, r3, #16 800769c: 627b str r3, [r7, #36] @ 0x24 800769e: 687b ldr r3, [r7, #4] 80076a0: 681b ldr r3, [r3, #0] 80076a2: 330c adds r3, #12 80076a4: 6a7a ldr r2, [r7, #36] @ 0x24 80076a6: 623a str r2, [r7, #32] 80076a8: 61fb str r3, [r7, #28] __ASM volatile ("strex %0, %2, %1" : "=&r" (result), "=Q" (*addr) : "r" (value) ); 80076aa: 69f9 ldr r1, [r7, #28] 80076ac: 6a3a ldr r2, [r7, #32] 80076ae: e841 2300 strex r3, r2, [r1] 80076b2: 61bb str r3, [r7, #24] return(result); 80076b4: 69bb ldr r3, [r7, #24] 80076b6: 2b00 cmp r3, #0 80076b8: d1e5 bne.n 8007686 /* Check if IDLE flag is set */ if (__HAL_UART_GET_FLAG(huart, UART_FLAG_IDLE)) 80076ba: 687b ldr r3, [r7, #4] 80076bc: 681b ldr r3, [r3, #0] 80076be: 681b ldr r3, [r3, #0] 80076c0: f003 0310 and.w r3, r3, #16 80076c4: 2b10 cmp r3, #16 80076c6: d10a bne.n 80076de { /* Clear IDLE flag in ISR */ __HAL_UART_CLEAR_IDLEFLAG(huart); 80076c8: 2300 movs r3, #0 80076ca: 60fb str r3, [r7, #12] 80076cc: 687b ldr r3, [r7, #4] 80076ce: 681b ldr r3, [r3, #0] 80076d0: 681b ldr r3, [r3, #0] 80076d2: 60fb str r3, [r7, #12] 80076d4: 687b ldr r3, [r7, #4] 80076d6: 681b ldr r3, [r3, #0] 80076d8: 685b ldr r3, [r3, #4] 80076da: 60fb str r3, [r7, #12] 80076dc: 68fb ldr r3, [r7, #12] #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered Rx Event callback*/ huart->RxEventCallback(huart, huart->RxXferSize); #else /*Call legacy weak Rx Event callback*/ HAL_UARTEx_RxEventCallback(huart, huart->RxXferSize); 80076de: 687b ldr r3, [r7, #4] 80076e0: 8d9b ldrh r3, [r3, #44] @ 0x2c 80076e2: 4619 mov r1, r3 80076e4: 6878 ldr r0, [r7, #4] 80076e6: f7ff fe0e bl 8007306 80076ea: e002 b.n 80076f2 #if (USE_HAL_UART_REGISTER_CALLBACKS == 1) /*Call registered Rx complete callback*/ huart->RxCpltCallback(huart); #else /*Call legacy weak Rx complete callback*/ HAL_UART_RxCpltCallback(huart); 80076ec: 6878 ldr r0, [r7, #4] 80076ee: f7ff fdf8 bl 80072e2 #endif /* USE_HAL_UART_REGISTER_CALLBACKS */ } return HAL_OK; 80076f2: 2300 movs r3, #0 80076f4: e002 b.n 80076fc } return HAL_OK; 80076f6: 2300 movs r3, #0 80076f8: e000 b.n 80076fc } else { return HAL_BUSY; 80076fa: 2302 movs r3, #2 } } 80076fc: 4618 mov r0, r3 80076fe: 3730 adds r7, #48 @ 0x30 8007700: 46bd mov sp, r7 8007702: bd80 pop {r7, pc} 08007704 : * @param huart Pointer to a UART_HandleTypeDef structure that contains * the configuration information for the specified UART module. * @retval None */ static void UART_SetConfig(UART_HandleTypeDef *huart) { 8007704: b580 push {r7, lr} 8007706: b084 sub sp, #16 8007708: af00 add r7, sp, #0 800770a: 6078 str r0, [r7, #4] assert_param(IS_UART_MODE(huart->Init.Mode)); /*-------------------------- USART CR2 Configuration -----------------------*/ /* Configure the UART Stop Bits: Set STOP[13:12] bits according to huart->Init.StopBits value */ MODIFY_REG(huart->Instance->CR2, USART_CR2_STOP, huart->Init.StopBits); 800770c: 687b ldr r3, [r7, #4] 800770e: 681b ldr r3, [r3, #0] 8007710: 691b ldr r3, [r3, #16] 8007712: f423 5140 bic.w r1, r3, #12288 @ 0x3000 8007716: 687b ldr r3, [r7, #4] 8007718: 68da ldr r2, [r3, #12] 800771a: 687b ldr r3, [r7, #4] 800771c: 681b ldr r3, [r3, #0] 800771e: 430a orrs r2, r1 8007720: 611a str r2, [r3, #16] tmpreg = (uint32_t)huart->Init.WordLength | huart->Init.Parity | huart->Init.Mode | huart->Init.OverSampling; MODIFY_REG(huart->Instance->CR1, (uint32_t)(USART_CR1_M | USART_CR1_PCE | USART_CR1_PS | USART_CR1_TE | USART_CR1_RE | USART_CR1_OVER8), tmpreg); #else tmpreg = (uint32_t)huart->Init.WordLength | huart->Init.Parity | huart->Init.Mode; 8007722: 687b ldr r3, [r7, #4] 8007724: 689a ldr r2, [r3, #8] 8007726: 687b ldr r3, [r7, #4] 8007728: 691b ldr r3, [r3, #16] 800772a: 431a orrs r2, r3 800772c: 687b ldr r3, [r7, #4] 800772e: 695b ldr r3, [r3, #20] 8007730: 4313 orrs r3, r2 8007732: 60bb str r3, [r7, #8] MODIFY_REG(huart->Instance->CR1, 8007734: 687b ldr r3, [r7, #4] 8007736: 681b ldr r3, [r3, #0] 8007738: 68db ldr r3, [r3, #12] 800773a: f423 53b0 bic.w r3, r3, #5632 @ 0x1600 800773e: f023 030c bic.w r3, r3, #12 8007742: 687a ldr r2, [r7, #4] 8007744: 6812 ldr r2, [r2, #0] 8007746: 68b9 ldr r1, [r7, #8] 8007748: 430b orrs r3, r1 800774a: 60d3 str r3, [r2, #12] tmpreg); #endif /* USART_CR1_OVER8 */ /*-------------------------- USART CR3 Configuration -----------------------*/ /* Configure the UART HFC: Set CTSE and RTSE bits according to huart->Init.HwFlowCtl value */ MODIFY_REG(huart->Instance->CR3, (USART_CR3_RTSE | USART_CR3_CTSE), huart->Init.HwFlowCtl); 800774c: 687b ldr r3, [r7, #4] 800774e: 681b ldr r3, [r3, #0] 8007750: 695b ldr r3, [r3, #20] 8007752: f423 7140 bic.w r1, r3, #768 @ 0x300 8007756: 687b ldr r3, [r7, #4] 8007758: 699a ldr r2, [r3, #24] 800775a: 687b ldr r3, [r7, #4] 800775c: 681b ldr r3, [r3, #0] 800775e: 430a orrs r2, r1 8007760: 615a str r2, [r3, #20] if(huart->Instance == USART1) 8007762: 687b ldr r3, [r7, #4] 8007764: 681b ldr r3, [r3, #0] 8007766: 4a2c ldr r2, [pc, #176] @ (8007818 ) 8007768: 4293 cmp r3, r2 800776a: d103 bne.n 8007774 { pclk = HAL_RCC_GetPCLK2Freq(); 800776c: f7fe fde0 bl 8006330 8007770: 60f8 str r0, [r7, #12] 8007772: e002 b.n 800777a } else { pclk = HAL_RCC_GetPCLK1Freq(); 8007774: f7fe fdc8 bl 8006308 8007778: 60f8 str r0, [r7, #12] else { huart->Instance->BRR = UART_BRR_SAMPLING16(pclk, huart->Init.BaudRate); } #else huart->Instance->BRR = UART_BRR_SAMPLING16(pclk, huart->Init.BaudRate); 800777a: 68fa ldr r2, [r7, #12] 800777c: 4613 mov r3, r2 800777e: 009b lsls r3, r3, #2 8007780: 4413 add r3, r2 8007782: 009a lsls r2, r3, #2 8007784: 441a add r2, r3 8007786: 687b ldr r3, [r7, #4] 8007788: 685b ldr r3, [r3, #4] 800778a: 009b lsls r3, r3, #2 800778c: fbb2 f3f3 udiv r3, r2, r3 8007790: 4a22 ldr r2, [pc, #136] @ (800781c ) 8007792: fba2 2303 umull r2, r3, r2, r3 8007796: 095b lsrs r3, r3, #5 8007798: 0119 lsls r1, r3, #4 800779a: 68fa ldr r2, [r7, #12] 800779c: 4613 mov r3, r2 800779e: 009b lsls r3, r3, #2 80077a0: 4413 add r3, r2 80077a2: 009a lsls r2, r3, #2 80077a4: 441a add r2, r3 80077a6: 687b ldr r3, [r7, #4] 80077a8: 685b ldr r3, [r3, #4] 80077aa: 009b lsls r3, r3, #2 80077ac: fbb2 f2f3 udiv r2, r2, r3 80077b0: 4b1a ldr r3, [pc, #104] @ (800781c ) 80077b2: fba3 0302 umull r0, r3, r3, r2 80077b6: 095b lsrs r3, r3, #5 80077b8: 2064 movs r0, #100 @ 0x64 80077ba: fb00 f303 mul.w r3, r0, r3 80077be: 1ad3 subs r3, r2, r3 80077c0: 011b lsls r3, r3, #4 80077c2: 3332 adds r3, #50 @ 0x32 80077c4: 4a15 ldr r2, [pc, #84] @ (800781c ) 80077c6: fba2 2303 umull r2, r3, r2, r3 80077ca: 095b lsrs r3, r3, #5 80077cc: f003 03f0 and.w r3, r3, #240 @ 0xf0 80077d0: 4419 add r1, r3 80077d2: 68fa ldr r2, [r7, #12] 80077d4: 4613 mov r3, r2 80077d6: 009b lsls r3, r3, #2 80077d8: 4413 add r3, r2 80077da: 009a lsls r2, r3, #2 80077dc: 441a add r2, r3 80077de: 687b ldr r3, [r7, #4] 80077e0: 685b ldr r3, [r3, #4] 80077e2: 009b lsls r3, r3, #2 80077e4: fbb2 f2f3 udiv r2, r2, r3 80077e8: 4b0c ldr r3, [pc, #48] @ (800781c ) 80077ea: fba3 0302 umull r0, r3, r3, r2 80077ee: 095b lsrs r3, r3, #5 80077f0: 2064 movs r0, #100 @ 0x64 80077f2: fb00 f303 mul.w r3, r0, r3 80077f6: 1ad3 subs r3, r2, r3 80077f8: 011b lsls r3, r3, #4 80077fa: 3332 adds r3, #50 @ 0x32 80077fc: 4a07 ldr r2, [pc, #28] @ (800781c ) 80077fe: fba2 2303 umull r2, r3, r2, r3 8007802: 095b lsrs r3, r3, #5 8007804: f003 020f and.w r2, r3, #15 8007808: 687b ldr r3, [r7, #4] 800780a: 681b ldr r3, [r3, #0] 800780c: 440a add r2, r1 800780e: 609a str r2, [r3, #8] #endif /* USART_CR1_OVER8 */ } 8007810: bf00 nop 8007812: 3710 adds r7, #16 8007814: 46bd mov sp, r7 8007816: bd80 pop {r7, pc} 8007818: 40013800 .word 0x40013800 800781c: 51eb851f .word 0x51eb851f 08007820 : 8007820: 4603 mov r3, r0 8007822: 4402 add r2, r0 8007824: 4293 cmp r3, r2 8007826: d100 bne.n 800782a 8007828: 4770 bx lr 800782a: f803 1b01 strb.w r1, [r3], #1 800782e: e7f9 b.n 8007824 08007830 <__errno>: 8007830: 4b01 ldr r3, [pc, #4] @ (8007838 <__errno+0x8>) 8007832: 6818 ldr r0, [r3, #0] 8007834: 4770 bx lr 8007836: bf00 nop 8007838: 20000030 .word 0x20000030 0800783c <__libc_init_array>: 800783c: b570 push {r4, r5, r6, lr} 800783e: 2600 movs r6, #0 8007840: 4d0c ldr r5, [pc, #48] @ (8007874 <__libc_init_array+0x38>) 8007842: 4b0d ldr r3, [pc, #52] @ (8007878 <__libc_init_array+0x3c>) 8007844: 1b5b subs r3, r3, r5 8007846: 109c asrs r4, r3, #2 8007848: 42a6 cmp r6, r4 800784a: d109 bne.n 8007860 <__libc_init_array+0x24> 800784c: 2600 movs r6, #0 800784e: f000 f8db bl 8007a08 <_init> 8007852: 4d0a ldr r5, [pc, #40] @ (800787c <__libc_init_array+0x40>) 8007854: 4b0a ldr r3, [pc, #40] @ (8007880 <__libc_init_array+0x44>) 8007856: 1b5b subs r3, r3, r5 8007858: 109c asrs r4, r3, #2 800785a: 42a6 cmp r6, r4 800785c: d105 bne.n 800786a <__libc_init_array+0x2e> 800785e: bd70 pop {r4, r5, r6, pc} 8007860: f855 3b04 ldr.w r3, [r5], #4 8007864: 4798 blx r3 8007866: 3601 adds r6, #1 8007868: e7ee b.n 8007848 <__libc_init_array+0xc> 800786a: f855 3b04 ldr.w r3, [r5], #4 800786e: 4798 blx r3 8007870: 3601 adds r6, #1 8007872: e7f2 b.n 800785a <__libc_init_array+0x1e> 8007874: 08007ab0 .word 0x08007ab0 8007878: 08007ab0 .word 0x08007ab0 800787c: 08007ab0 .word 0x08007ab0 8007880: 08007ab4 .word 0x08007ab4 08007884 : 8007884: 440a add r2, r1 8007886: 4291 cmp r1, r2 8007888: f100 33ff add.w r3, r0, #4294967295 800788c: d100 bne.n 8007890 800788e: 4770 bx lr 8007890: b510 push {r4, lr} 8007892: f811 4b01 ldrb.w r4, [r1], #1 8007896: 4291 cmp r1, r2 8007898: f803 4f01 strb.w r4, [r3, #1]! 800789c: d1f9 bne.n 8007892 800789e: bd10 pop {r4, pc} 080078a0 : 80078a0: b538 push {r3, r4, r5, lr} 80078a2: 4604 mov r4, r0 80078a4: f000 f81a bl 80078dc <__ieee754_sqrtf> 80078a8: 4621 mov r1, r4 80078aa: 4605 mov r5, r0 80078ac: 4620 mov r0, r4 80078ae: f7f9 fbf9 bl 80010a4 <__aeabi_fcmpun> 80078b2: b920 cbnz r0, 80078be 80078b4: 4620 mov r0, r4 80078b6: 2100 movs r1, #0 80078b8: f7f9 fbcc bl 8001054 <__aeabi_fcmplt> 80078bc: b908 cbnz r0, 80078c2 80078be: 4628 mov r0, r5 80078c0: bd38 pop {r3, r4, r5, pc} 80078c2: f7ff ffb5 bl 8007830 <__errno> 80078c6: 2221 movs r2, #33 @ 0x21 80078c8: 4603 mov r3, r0 80078ca: 2100 movs r1, #0 80078cc: 601a str r2, [r3, #0] 80078ce: 4608 mov r0, r1 80078d0: f7f9 fad6 bl 8000e80 <__aeabi_fdiv> 80078d4: 4605 mov r5, r0 80078d6: 4628 mov r0, r5 80078d8: bd38 pop {r3, r4, r5, pc} 80078da: bf00 nop 080078dc <__ieee754_sqrtf>: 80078dc: f020 4200 bic.w r2, r0, #2147483648 @ 0x80000000 80078e0: f1b2 4fff cmp.w r2, #2139095040 @ 0x7f800000 80078e4: e92d 41f0 stmdb sp!, {r4, r5, r6, r7, r8, lr} 80078e8: 4604 mov r4, r0 80078ea: d24f bcs.n 800798c <__ieee754_sqrtf+0xb0> 80078ec: 2a00 cmp r2, #0 80078ee: d04b beq.n 8007988 <__ieee754_sqrtf+0xac> 80078f0: 2800 cmp r0, #0 80078f2: 4603 mov r3, r0 80078f4: db54 blt.n 80079a0 <__ieee754_sqrtf+0xc4> 80078f6: f010 42ff ands.w r2, r0, #2139095040 @ 0x7f800000 80078fa: d14f bne.n 800799c <__ieee754_sqrtf+0xc0> 80078fc: 005b lsls r3, r3, #1 80078fe: 0218 lsls r0, r3, #8 8007900: 4611 mov r1, r2 8007902: f102 0201 add.w r2, r2, #1 8007906: d5f9 bpl.n 80078fc <__ieee754_sqrtf+0x20> 8007908: 4249 negs r1, r1 800790a: 2400 movs r4, #0 800790c: f3c3 0216 ubfx r2, r3, #0, #23 8007910: f1a1 057f sub.w r5, r1, #127 @ 0x7f 8007914: 07cb lsls r3, r1, #31 8007916: f04f 0e19 mov.w lr, #25 800791a: f04f 7c80 mov.w ip, #16777216 @ 0x1000000 800791e: 4621 mov r1, r4 8007920: f442 0200 orr.w r2, r2, #8388608 @ 0x800000 8007924: bf58 it pl 8007926: 0052 lslpl r2, r2, #1 8007928: 106d asrs r5, r5, #1 800792a: 0052 lsls r2, r2, #1 800792c: eb01 030c add.w r3, r1, ip 8007930: 4293 cmp r3, r2 8007932: bfcf iteee gt 8007934: 4613 movgt r3, r2 8007936: eb03 010c addle.w r1, r3, ip 800793a: 4464 addle r4, ip 800793c: 1ad3 suble r3, r2, r3 800793e: f1be 0e01 subs.w lr, lr, #1 8007942: ea4f 0243 mov.w r2, r3, lsl #1 8007946: ea4f 0c5c mov.w ip, ip, lsr #1 800794a: d1ef bne.n 800792c <__ieee754_sqrtf+0x50> 800794c: b1bb cbz r3, 800797e <__ieee754_sqrtf+0xa2> 800794e: 4e1a ldr r6, [pc, #104] @ (80079b8 <__ieee754_sqrtf+0xdc>) 8007950: 4f1a ldr r7, [pc, #104] @ (80079bc <__ieee754_sqrtf+0xe0>) 8007952: 6830 ldr r0, [r6, #0] 8007954: 6839 ldr r1, [r7, #0] 8007956: f7f9 f8d5 bl 8000b04 <__aeabi_fsub> 800795a: f8d6 8000 ldr.w r8, [r6] 800795e: 4601 mov r1, r0 8007960: 4640 mov r0, r8 8007962: f7f9 fb81 bl 8001068 <__aeabi_fcmple> 8007966: b150 cbz r0, 800797e <__ieee754_sqrtf+0xa2> 8007968: 6830 ldr r0, [r6, #0] 800796a: 6839 ldr r1, [r7, #0] 800796c: f7f9 f8cc bl 8000b08 <__addsf3> 8007970: 6836 ldr r6, [r6, #0] 8007972: 4601 mov r1, r0 8007974: 4630 mov r0, r6 8007976: f7f9 fb6d bl 8001054 <__aeabi_fcmplt> 800797a: b1c8 cbz r0, 80079b0 <__ieee754_sqrtf+0xd4> 800797c: 3402 adds r4, #2 800797e: 1060 asrs r0, r4, #1 8007980: f100 507c add.w r0, r0, #1056964608 @ 0x3f000000 8007984: eb00 50c5 add.w r0, r0, r5, lsl #23 8007988: e8bd 81f0 ldmia.w sp!, {r4, r5, r6, r7, r8, pc} 800798c: 4601 mov r1, r0 800798e: f7f9 f9c3 bl 8000d18 <__aeabi_fmul> 8007992: 4621 mov r1, r4 8007994: f7f9 f8b8 bl 8000b08 <__addsf3> 8007998: e8bd 81f0 ldmia.w sp!, {r4, r5, r6, r7, r8, pc} 800799c: 15c1 asrs r1, r0, #23 800799e: e7b4 b.n 800790a <__ieee754_sqrtf+0x2e> 80079a0: 4601 mov r1, r0 80079a2: f7f9 f8af bl 8000b04 <__aeabi_fsub> 80079a6: 4601 mov r1, r0 80079a8: f7f9 fa6a bl 8000e80 <__aeabi_fdiv> 80079ac: e8bd 81f0 ldmia.w sp!, {r4, r5, r6, r7, r8, pc} 80079b0: 3401 adds r4, #1 80079b2: f024 0401 bic.w r4, r4, #1 80079b6: e7e2 b.n 800797e <__ieee754_sqrtf+0xa2> 80079b8: 08007aa4 .word 0x08007aa4 80079bc: 08007aa0 .word 0x08007aa0 080079c0 : 80079c0: b508 push {r3, lr} 80079c2: f3c0 53c7 ubfx r3, r0, #23, #8 80079c6: 3b7f subs r3, #127 @ 0x7f 80079c8: 2b16 cmp r3, #22 80079ca: 4601 mov r1, r0 80079cc: dc0e bgt.n 80079ec 80079ce: 2b00 cmp r3, #0 80079d0: 4602 mov r2, r0 80079d2: db10 blt.n 80079f6 80079d4: 480b ldr r0, [pc, #44] @ (8007a04 ) 80079d6: 4118 asrs r0, r3 80079d8: 4201 tst r1, r0 80079da: d005 beq.n 80079e8 80079dc: f44f 0180 mov.w r1, #4194304 @ 0x400000 80079e0: 4119 asrs r1, r3 80079e2: 4411 add r1, r2 80079e4: ea21 0100 bic.w r1, r1, r0 80079e8: 4608 mov r0, r1 80079ea: bd08 pop {r3, pc} 80079ec: 2b80 cmp r3, #128 @ 0x80 80079ee: d1fb bne.n 80079e8 80079f0: f7f9 f88a bl 8000b08 <__addsf3> 80079f4: bd08 pop {r3, pc} 80079f6: 3301 adds r3, #1 80079f8: f000 4100 and.w r1, r0, #2147483648 @ 0x80000000 80079fc: d1f4 bne.n 80079e8 80079fe: f041 517e orr.w r1, r1, #1065353216 @ 0x3f800000 8007a02: e7f1 b.n 80079e8 8007a04: 007fffff .word 0x007fffff 08007a08 <_init>: 8007a08: b5f8 push {r3, r4, r5, r6, r7, lr} 8007a0a: bf00 nop 8007a0c: bcf8 pop {r3, r4, r5, r6, r7} 8007a0e: bc08 pop {r3} 8007a10: 469e mov lr, r3 8007a12: 4770 bx lr 08007a14 <_fini>: 8007a14: b5f8 push {r3, r4, r5, r6, r7, lr} 8007a16: bf00 nop 8007a18: bcf8 pop {r3, r4, r5, r6, r7} 8007a1a: bc08 pop {r3} 8007a1c: 469e mov lr, r3 8007a1e: 4770 bx lr