Fixed error from 0.5 to 0.1 Celsius Degree
This commit is contained in:
@@ -12,13 +12,13 @@
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#include "ad5934_driver.h"
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volatile AD5934_State_t ad5934_state = AD5934_IDLE;
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volatile uint32_t state_timer = 0;
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volatile uint32_t g_ms_counter = 0; /* Incrementado a cada 1ms no Timer */
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float reference_resistor = 0, temperature_RTD = 0, thermal_compensaded_EC = 0;
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uint8_t current_mux_channel = AD5934_ID_RTD;
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uint8_t current_hw_mux_connection = ADG715_Channel_Map[AD5934_CH_RTD_LOW_GAIN]; // PT100 Connection
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uint8_t current_mux_channel = 0;
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uint8_t current_hw_mux_connection = AD5934_CH_REF100R_LOW_GAIN; // Connection
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uint8_t current_ec_mux = AD5934_CH_EC_MID_GAIN;
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uint8_t current_rtd_mux = AD5934_CH_RTD_LOW_GAIN;
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uint8_t current_ref_mux = AD5934_CH_REF100R_LOW_GAIN;
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@@ -29,6 +29,9 @@ AD5934_filter_t g_rtd_filter = {0};
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AD5934_filter_t g_ec_filter = {0};
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AD5934_filter_t g_ref_filter = {0};
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int16_t rtd_now, ref_now, ec_now;
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int16_t rtd_now_i, ref_now_i, ec_now_i;
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uint8_t is_new_channel = 1;
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/******************************************************************************
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@@ -98,6 +101,43 @@ uint32_t AD5934_GetRegisterValue(uint8_t registerAddress, uint8_t numberOfBytes)
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}
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/************************************************************************************
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* @brief Lê um registrador do AD5934 usando a abstração Mem_Read (mais segura).
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*
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* @param regAddr Endereço do registrador no AD5934.
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* @return uint32_t Valor lido do registrador.
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***********************************************************************************/
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uint32_t AD5934_ReadRegister(uint8_t regAddr, uint8_t numberOfBytes)
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{
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uint32_t registerValue = 0;
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uint8_t readData[4] = {0,0,0,0}; // Buffer para receber 16 bits (AD5934 usa regs de 16-bit)
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uint8_t writeData[2] = {AD5934_ADDR_POINTER,regAddr};
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//HAL_StatusTypeDef status;
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//Limit buffer size to prevent stack overflow (AD5934 regs are max 4 bytes) */
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if (numberOfBytes > 4)
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{
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return 0xFFFFFFFF;
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}
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HAL_I2C_Master_Transmit(&hi2c2, AD5934_I2C_ADDRESS, writeData, 2, 5);
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//HAL_Delay(1);
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// Usamos Mem_Read que faz: START -> ADDR+W -> REG_ADDR -> REPEATED_START -> ADDR+R -> DATA -> STOP
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HAL_I2C_Mem_Read(&hi2c2, AD5934_I2C_ADDRESS, AD5934_BLOCK_READ, I2C_MEMADD_SIZE_8BIT, readData, numberOfBytes, 5);
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/* 5. Reconstruct value from Big-Endian buffer */
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for (uint8_t i = 0; i < numberOfBytes; i++)
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{
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registerValue = (registerValue << 8) | readData[i];
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}
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return registerValue;
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}
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/******************************************************************************
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* @brief Configure and Start the AD5934 frequency sweep parameters.
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*
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@@ -116,7 +156,7 @@ void AD5934_Init(void)
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AD5934_SetRegisterValue(AD5934_CONTROL_REG_LB, (AD5934_CONTROL_FUNCTION(AD5934_RESET)), 1);
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// Configure starting frequency
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AD5934_SetRegisterValue(AD5934_START_FREQ_REG_LB, AD5934_FREQ_2K5HZ, 3);
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AD5934_SetRegisterValue(AD5934_START_FREQ_REG_LB, AD5934_FREQ_2K293HZ, 3);
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// Configure frequency increment step
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AD5934_SetRegisterValue(AD5934_FREQ_INCR_REG_LB, AD5934_FREQ_0HZ, 3);
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@@ -195,7 +235,7 @@ void AD5934_StopSweep(void)
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float AD5934_Calculate_Temperature(float mag_ref, float mag_dut)
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{
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uint8_t ch_ref;
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float gain_factor, impedance_dut, ratio, discriminant;
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float gain_factor, impedance_dut, temperature;
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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
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{
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@@ -217,12 +257,23 @@ float AD5934_Calculate_Temperature(float mag_ref, float mag_dut)
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impedance_dut = gain_factor * ratio_mag;
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// Calculate impedance ratio with the Reference Resistor
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ratio = impedance_dut / gain_factor;
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float ratio = impedance_dut / gain_factor;
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// Calculate impedance discriminant with the ratio
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discriminant = (AD5934_RTD_A*AD5934_RTD_A)-(4.0f * AD5934_RTD_B * (1.0f - ratio));
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float discriminant = (AD5934_RTD_A*AD5934_RTD_A)-(4.0f * AD5934_RTD_B * (1.0f - ratio));
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return ((-AD5934_RTD_A + sqrtf(discriminant))/(2.0f * AD5934_RTD_B));
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if (discriminant >= 0.0f && impedance_dut >= gain_factor)
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{
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// Ramo T >= 0°C: solução quadrática exata
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temperature = (-AD5934_RTD_A + sqrtf(discriminant))/(2.0f * AD5934_RTD_B);
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}
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else
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{
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// Ramo T < 0°C (ou discriminante inválido por ruído): aproximação linear
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temperature = (ratio - 1.0f) / AD5934_RTD_ALPHA;
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}
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return AD5934_Round_Float_Precision(temperature,1);
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}
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@@ -299,10 +350,10 @@ float AD5934_GetMagnitude(void)
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{
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// Get Real Data register
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int16_t real_value = ((AD5934_GetRegisterValue(AD5934_REAL_REG_LB,2)));
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int16_t real_value = ((AD5934_GetRegisterValue(AD5934_REAL_REG_HB,2)));
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// Get Imaginary Data register
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int16_t imag_value = ((AD5934_GetRegisterValue(AD5934_IMG_REG_LB,2)));
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int16_t imag_value = ((AD5934_GetRegisterValue(AD5934_IMG_REG_HB,2)));
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// Calculate Magnitude using float function sqrtf
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float magnitude = sqrtf(((float)real_value * (float)real_value) + ((float)imag_value * (float)imag_value));
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@@ -312,6 +363,55 @@ float AD5934_GetMagnitude(void)
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}
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/******************************************************************************
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* @brief Get Real and Imaginary values and calculate Magnitude.
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*
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* @param: none
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*
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* @return Magnitude (float).
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******************************************************************************/
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float AD5934_GetImpedance(float mag_ref, float mag_dut)
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{
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uint8_t ch_ref;
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float gain_factor;
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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
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{
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ch_ref = AD5934_CH_RTD_LOW_GAIN; //PT100
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gain_factor = AD5934_GAIN_FACTOR_100R;
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}
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else
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{
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ch_ref = AD5934_CH_RTD_MID_GAIN; //PT1000
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gain_factor = AD5934_GAIN_FACTOR_1K;
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}
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float impedance_ref = (1/(mag_ref * gain_factor));
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float impedance_dut = (1/(mag_dut * impedance_ref));
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return impedance_dut;
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}
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/******************************************************************************
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* @brief Get Real and Imag values from Magnitude.
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*
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* @param: none
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*
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* @return Magnitude (int16).
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******************************************************************************/
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uint32_t AD5934_Get_Real_Imag_Numbers(void)
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{
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uint32_t real_imag_reg = AD5934_GetRegisterValue(AD5934_IMG_REG_LB, 4); //AD5934_ReadRegister(AD5934_REAL_REG_LB, 4); //
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return (real_imag_reg);
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}
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/**
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* @brief Converte um valor float em uma escala de FLOAT_MIN a FLOAT_MAX para uint16_t em escala de UINT16_MIN a UINT16_MAX
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*
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@@ -333,7 +433,10 @@ uint16_t AD5934_Compress_To_IntScale(float value, uint8_t scale)
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return AD5934_Scale_Out_Max[scale];
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// Converte o valor usando a fórmula: ((value - FLOAT_MIN) / (FLOAT_MAX - FLOAT_MIN)) * (UINT16_MAX - UINT16_MIN) + UINT16_MIN
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uint16_t result = (uint16_t)(((value - AD5934_Scale_Float_Min[scale]) / (AD5934_Scale_Float_Max[scale] - AD5934_Scale_Float_Min[scale])) * ((float)AD5934_Scale_Out_Max[scale] - (float)AD5934_Scale_Out_Min[scale]) + (float)AD5934_Scale_Out_Min[scale]);
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//uint16_t result = (uint16_t)(((value - AD5934_Scale_Float_Min[scale]) / (AD5934_Scale_Float_Max[scale] - AD5934_Scale_Float_Min[scale])) * ((float)AD5934_Scale_Out_Max[scale] - (float)AD5934_Scale_Out_Min[scale]) + (float)AD5934_Scale_Out_Min[scale]);
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float factor = ((float)AD5934_Scale_Out_Max[scale] - (float)AD5934_Scale_Out_Min[scale]) / (AD5934_Scale_Float_Max[scale] - AD5934_Scale_Float_Min[scale]);
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uint16_t result = (uint16_t)((float)AD5934_Scale_Out_Min[scale] + (value - AD5934_Scale_Float_Min[scale]) * factor);
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// Garante que o resultado não exceda o limite superior
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if (result > AD5934_Scale_Out_Max[scale])
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@@ -418,92 +521,87 @@ float AD5934_Calibrate(float dry_probe_real, float dry_probe_imag, float standar
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*/
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void AD5934_Process_System(void)
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{
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static uint32_t state_timer = 0;
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uint8_t status = 0;
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switch (ad5934_state)
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switch (ad5934_state)
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{
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case AD5934_IDLE:
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ADG715_SetChannels(current_mux_channel); // Starts changing the mux channel
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ADG715_SetChannels(current_hw_mux_connection); // Starts changing the mux channel
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is_new_channel = 1; // Forces first channel
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state_timer = g_ms_counter;
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ad5934_state = AD5934_WAIT_MUX;
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break;
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case AD5934_WAIT_MUX:
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if ((g_ms_counter - state_timer) >= AD5934_SYNC_MUX_SETTLING) // Wait until AD715 Mux switch stability
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{
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sweep_count = 0;
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ad5934_state = AD5934_START_CONVERSION;
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}
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//if ((g_ms_counter - state_timer) >= AD5934_SYNC_MUX_SETTLING) // Wait until AD715 Mux switch stability
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//{
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HAL_Delay(15);
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ad5934_state = AD5934_START_CONVERSION;
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//}
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break;
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case AD5934_START_CONVERSION:
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state_timer = g_ms_counter; // Starts to count the Burst period for the sweeps
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/* DECISÃO DE COMANDO: Novo canal vs Leituras sucessivas */
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if (is_new_channel) // Decision: Channel Switched or Next Sample in the Burst ?
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{
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AD5934_RestartSweep(); // Clean some AD5934 internal registers to Re-Start Sweep
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is_new_channel = 0; // Resets the flag to read the next Sample Burst
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}
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else
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{
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AD5934_Repeat_Sweep(); // Get Sample and just repeat reading
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}
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//state_timer = g_ms_counter; // Starts to count the Burst period for the sweeps
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/* DECISÃO DE COMANDO: Novo canal vs Leituras sucessivas */
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if (is_new_channel) // Decision: Channel Switched or Next Sample in the Burst ?
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{
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AD5934_RestartSweep(); // Clean some AD5934 internal registers to Re-Start Sweep
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is_new_channel = 0; // Resets the flag to read the next Sample Burst
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}
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else
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{
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AD5934_Repeat_Sweep(); // Get Sample and just repeat reading
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}
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ad5934_state = AD5934_WAIT_CONVERSION; // Next State
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ad5934_state = AD5934_WAIT_CONVERSION; // Next State
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break;
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case AD5934_WAIT_CONVERSION:
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status = (uint8_t)AD5934_GetRegisterValue(AD5934_STATUS_REG, 1); // Check if the current converion is ready in the AD5934
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uint8_t status = (uint8_t)AD5934_GetRegisterValue(AD5934_STATUS_REG, 1); // Check if the current converion is ready in the AD5934
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if ((status & AD5934_STATUS_DATA_VALID) != 0)
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{
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ad5934_state = AD5934_READ_DATA;
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uint32_t magnitude_int = AD5934_Get_Real_Imag_Numbers();
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int16_t mag_real = (int16_t)(magnitude_int>>16);
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int16_t mag_imag = (int16_t)(magnitude_int & 0x0000FFFF);
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float mag_float = sqrtf(((float)mag_real * (float)mag_real) + ((float)mag_imag * (float)mag_imag));
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switch (current_mux_channel)
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{
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case AD5934_ID_RTD:
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AD5934_RTD_NewSample(mag_float);
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rtd_now = mag_float;
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rtd_now_i = mag_imag;
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break;
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case AD5934_ID_EC:
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AD5934_EC_NewSample(mag_float);
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ec_now = mag_real;
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ec_now_i = mag_imag;
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break;
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case AD5934_ID_REF:
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AD5934_Reference_NewSample(mag_float);
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ref_now = mag_float;
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ref_now_i = mag_imag;
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break;
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}
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if(sweep_count<(AD5934_BURST_SIZE-1))
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{
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sweep_count++;
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ad5934_state = AD5934_START_CONVERSION;
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}
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else
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{
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sweep_count = 0;
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ad5934_state = AD5934_SWITCH_MUX;
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}
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}
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break;
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case AD5934_READ_DATA:
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{
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float magnitude = AD5934_GetMagnitude();
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switch (current_mux_channel)
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{
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case AD5934_ID_RTD:
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AD5934_RTD_NewSample(magnitude);
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break;
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case AD5934_ID_EC:
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AD5934_EC_NewSample(magnitude);
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break;
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case AD5934_ID_REF:
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AD5934_Reference_NewSample(magnitude);
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break;
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}
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sweep_count++;
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if (sweep_count >= AD5934_BURST_SIZE) // Check if number of samples for the burst is complete
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{
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ad5934_state = AD5934_SWITCH_MUX; // Next Re-Start Sweep
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}
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else
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{
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ad5934_state = AD5934_WAIT_NEXT_SWEEP; // Next Repeat Sweep
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}
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}
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break;
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case AD5934_WAIT_NEXT_SWEEP:
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if ((g_ms_counter - state_timer) >= AD5934_TIME_PER_SWEEP)
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{
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ad5934_state = AD5934_START_CONVERSION;
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}
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break;
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case AD5934_SWITCH_MUX:
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AD5934_StopSweep(); // Put AD5934 in Standby
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AD5934_StopSweep(); // Put AD5934 in Standby
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current_mux_channel = (uint8_t)((current_mux_channel + 1) % 3); // Pointer to the next channel (Circular Buffer 0 to 2)
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switch (current_mux_channel)
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{
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@@ -529,9 +627,11 @@ void AD5934_Process_System(void)
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break;
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}
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ADG715_SetChannels(current_hw_mux_connection); // Change the analog mux
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HAL_Delay(12);
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is_new_channel = 1; // Channel Switched
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state_timer = g_ms_counter; // Reload timer to wait for stability
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ad5934_state = AD5934_WAIT_MUX; // Next State
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//state_timer = g_ms_counter; // Reload timer to wait for stability
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//ad5934_state = AD5934_WAIT_MUX; // Next State
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ad5934_state = AD5934_START_CONVERSION;
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break;
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}
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}
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@@ -638,10 +738,35 @@ void AD5934_Process_Sample(AD5934_filter_t *ch, float raw)
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/* Final output: combines the IIR state (fast response to real drift)
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* with the window average (more stable, slower response). Adjust
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* the weighting per channel if needed. */
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ch->filtered_value = 0.5f * ch->iir_state + 0.5f * window_average;
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ch->filtered_value = 0.65f * ch->iir_state + 0.35f * window_average;
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//ch->filtered_value = window_average;
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ch->value_valid = 1;
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}
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void AD5934_MovingAvg_Init(AD5934_AvgFilter_t *filt)
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{
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for (uint8_t i = 0; i < AD5934_HISTORY_SIZE; i++) {
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filt->buffer[i] = 0.0f;
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}
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filt->sum = 0.0f;
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filt->index = 0;
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filt->count = 0;
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filt->average = 0.0f;
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}
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void AD5934_MovingAvg_Process(AD5934_AvgFilter_t *filt, float new_sample)
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{
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for (uint8_t i = (AD5934_HISTORY_SIZE-1); i > 0; i--)
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filt->buffer[i] = filt->buffer[i-1];
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filt->buffer[0] = new_sample;
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for (uint8_t i = 0; i < AD5934_HISTORY_SIZE; i++)
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filt->sum += new_sample;
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filt->average = (filt->sum / (float)AD5934_HISTORY_SIZE);
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}
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/* ---------------------------------------------------------------------- */
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/* PUBLIC FUNCTIONS - ONE PER CHANNEL */
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@@ -654,6 +779,7 @@ void AD5934_RTD_NewSample(float raw)
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AD5934_Process_Sample(&g_rtd_filter, raw);
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}
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/* Call this every time a sweep completes with the mux on the EC
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* (conductivity probe) channel */
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void AD5934_EC_NewSample(float raw)
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@@ -661,6 +787,7 @@ void AD5934_EC_NewSample(float raw)
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AD5934_Process_Sample(&g_ec_filter, raw);
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}
|
||||
|
||||
|
||||
/* Call this every time a sweep completes with the mux on the on-board
|
||||
* precision reference resistor channel */
|
||||
void AD5934_Reference_NewSample(float raw)
|
||||
@@ -669,6 +796,7 @@ void AD5934_Reference_NewSample(float raw)
|
||||
}
|
||||
|
||||
|
||||
|
||||
/*****************************************************************************
|
||||
* ADG715
|
||||
*****************************************************************************
|
||||
|
||||
+101
-32
@@ -62,6 +62,7 @@ void SystemClock_Config(void);
|
||||
/* USER CODE BEGIN PFP */
|
||||
void intToStr(int16_t N, uint8_t *str);
|
||||
void FloatToString(uint8_t * buf, double val);
|
||||
void Convert2Hex(uint32_t value, char *str);
|
||||
|
||||
/* USER CODE END PFP */
|
||||
|
||||
@@ -89,7 +90,9 @@ int main(void)
|
||||
uint32_t previous_millis_red = 0;
|
||||
uint32_t current_millis;
|
||||
|
||||
float ref_final;
|
||||
|
||||
float mag_reference, mag_rtd, mag_ec;
|
||||
|
||||
/* USER CODE END 1 */
|
||||
|
||||
@@ -122,6 +125,9 @@ int main(void)
|
||||
|
||||
HAL_TIM_Base_Start_IT(&htim3);
|
||||
|
||||
//AD5934_MovingAvg_Init (&g_rtd_filter);
|
||||
//AD5934_MovingAvg_Init (&g_ref_filter);
|
||||
//AD5934_MovingAvg_Init (&g_ec_filter);
|
||||
|
||||
HAL_GPIO_WritePin(GPIOB, GPIO_PIN_4, GPIO_PIN_SET); // LED Green Off
|
||||
HAL_GPIO_WritePin(GPIOB, GPIO_PIN_5, GPIO_PIN_SET); // LED Red Off
|
||||
@@ -129,6 +135,7 @@ int main(void)
|
||||
digital_outputs_init();
|
||||
rs485_init();
|
||||
|
||||
ADG715_ResetChannels();
|
||||
ADS1015_Init(); // Initializes pH Measurement
|
||||
AD5934_Init(); // Initializes CE and RTD Measurement
|
||||
|
||||
@@ -136,8 +143,8 @@ int main(void)
|
||||
|
||||
/* Infinite loop */
|
||||
/* USER CODE BEGIN WHILE */
|
||||
|
||||
while(averages<15)
|
||||
/*
|
||||
while(averages<20)
|
||||
{
|
||||
AD5934_Process_System();
|
||||
ADS1015_Process_System();
|
||||
@@ -146,16 +153,18 @@ int main(void)
|
||||
|
||||
if((current_millis % 20) == 0) // Send data each 20ms
|
||||
{
|
||||
if (g_ref_filter.value_valid) // Reference Resistor on Board: 100 Ohms or 1000 Ohms
|
||||
if (g_ref_imag_filter.value_valid) // Reference Resistor on Board: 100 Ohms or 1000 Ohms
|
||||
{
|
||||
reference_resistor = g_ref_filter.filtered_value;
|
||||
uint16_t reference_final = AD5934_REF_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(g_ref_filter.filtered_value, current_ref_mux);
|
||||
//reference_resistor = g_ref_filter.filtered_value;
|
||||
reference_resistor = sqrtf((g_ref_real_filter.filtered_value * g_ref_real_filter.filtered_value)+(g_ref_imag_filter.filtered_value * g_ref_imag_filter.filtered_value));
|
||||
//reference_resistor = ref_now;
|
||||
//uint16_t reference_final = AD5934_REF_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(g_ref_filter.filtered_value, current_ref_mux);
|
||||
|
||||
averages++;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
*/
|
||||
digital_outputs_toggle(0);
|
||||
digital_outputs_toggle(1);
|
||||
digital_outputs_toggle(2);
|
||||
@@ -177,41 +186,78 @@ int main(void)
|
||||
if((current_millis % 500) == 0) // Send data each 100ms
|
||||
{
|
||||
|
||||
/* if (g_ref_filter.value_valid) // Reference Resistor on Board: 100 Ohms or 1000 Ohms
|
||||
{
|
||||
//if (g_ref_filter.value_valid) // Reference Resistor on Board: 100 Ohms or 1000 Ohms
|
||||
//{
|
||||
mag_reference = g_ref_filter.filtered_value;
|
||||
//mag_reference = sqrtf(((float)ref_now * (float)ref_now) + ((float)ref_now_i * (float)ref_now_i));
|
||||
//mag_reference = sqrtf((g_ref_real_filter.average * g_ref_real_filter.average)+(g_ref_imag_filter.average * g_ref_imag_filter.average));
|
||||
//mag_reference = (float)ref_now;
|
||||
//reference_resistor = g_ref_filter.filtered_value;
|
||||
uint16_t reference_final = AD5934_REF_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(g_ref_filter.filtered_value, current_ref_mux);
|
||||
//uint16_t reference_final = AD5934_REF_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(g_ref_filter.filtered_value, current_ref_mux);
|
||||
|
||||
intToStr(reference_final, tempString);
|
||||
// float ref_final = g_ref_filter.filtered_value;
|
||||
//FloatToString(tempString, ref_final);
|
||||
//intToStr(reference_final, tempString);
|
||||
//ref_final = g_ref_filter.filtered_value;
|
||||
FloatToString(tempString, mag_reference);
|
||||
//Convert2Hex(ref_now, tempString);
|
||||
//intToStr(ref_now, tempString);
|
||||
rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
//intToStr(ref_now_i, tempString);
|
||||
//rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
//}
|
||||
|
||||
//if (g_rtd_filter.value_valid) // PT100 or PT1000 in °C
|
||||
//{
|
||||
//mag_rtd = (float)rtd_now;
|
||||
mag_rtd = g_rtd_filter.filtered_value;
|
||||
//mag_rtd = sqrtf((g_rtd_real_filter.average * g_rtd_real_filter.average)+(g_rtd_imag_filter.average * g_rtd_imag_filter.average));
|
||||
//mag_rtd = sqrtf(((float)rtd_now * (float)rtd_now) + ((float)rtd_now_i * (float)rtd_now_i));
|
||||
//temperature_RTD = AD5934_Calculate_Temperature(mag_reference, mag_rtd);
|
||||
temperature_RTD = AD5934_Calculate_Temperature(mag_reference,mag_rtd);// AD5934_GetImpedance(mag_reference,mag_rtd);//
|
||||
//uint16_t rtd_final = AD5934_RTD_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(g_rtd_filter.filtered_value, current_rtd_mux);
|
||||
//uint16_t rtd_final = AD5934_Compress_To_IntScale(temperature_RTD, current_rtd_mux);
|
||||
//intToStr(rtd_final, tempString);
|
||||
//float rtd_final = g_rtd_filter.filtered_value; //g_rtd_filter.filtered_value;
|
||||
FloatToString(tempString, temperature_RTD);
|
||||
//Convert2Hex(rtd_now, tempString);
|
||||
//intToStr(rtd_now, tempString);
|
||||
rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
//Convert2Hex(rtd_now_i, tempString);
|
||||
//intToStr(rtd_now_i, tempString);
|
||||
//rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
|
||||
//}
|
||||
/*if (g_rtd_imag_filter.value_valid) // PT100 or PT1000 in °C
|
||||
{
|
||||
|
||||
//float mag_rtd = sqrtf((g_rtd_real_filter.filtered_value * g_rtd_real_filter.filtered_value)+(g_rtd_imag_filter.filtered_value * g_rtd_imag_filter.filtered_value));
|
||||
temperature_RTD = AD5934_Calculate_Temperature(reference_resistor, mag_rtd);
|
||||
//uint16_t rtd_final = AD5934_RTD_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(g_rtd_filter.filtered_value, current_rtd_mux);
|
||||
//uint16_t rtd_final = AD5934_Compress_To_IntScale(temperature_RTD, current_rtd_mux);
|
||||
//intToStr(rtd_final, tempString);
|
||||
float rtd_final = temperature_RTD; //g_rtd_filter.filtered_value;
|
||||
FloatToString(tempString, rtd_final);
|
||||
rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
}*/
|
||||
|
||||
if (g_rtd_filter.value_valid) // PT100 or PT1000 in °C
|
||||
{
|
||||
temperature_RTD = AD5934_Calculate_Temperature(reference_resistor, g_rtd_filter.filtered_value);
|
||||
uint16_t rtd_final = AD5934_RTD_OUT_SCALE_MAX - AD5934_Compress_To_IntScale(temperature_RTD, current_rtd_mux);
|
||||
//if (g_ec_filter.value_valid) // EC
|
||||
//{
|
||||
//mag_ec = sqrtf((g_ec_real_filter.filtered_value * g_ec_real_filter.filtered_value)+(g_ec_imag_filter.filtered_value * g_ec_imag_filter.filtered_value));
|
||||
mag_ec = sqrtf(((float)ec_now * (float)ec_now) + ((float)ec_now_i * (float)ec_now_i));
|
||||
thermal_compensaded_EC = AD5934_EC_Compensate_Magnitude_To_25C(mag_ec, temperature_RTD);
|
||||
//uint16_t ec_final = AD5934_Compress_To_IntScale(thermal_compensaded_EC, current_ec_mux);
|
||||
|
||||
intToStr(rtd_final, tempString);
|
||||
//float rtd_final = g_rtd_filter.filtered_value;
|
||||
//FloatToString(tempString, rtd_final);
|
||||
rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
}
|
||||
|
||||
if (g_ec_filter.value_valid) // EC
|
||||
{
|
||||
thermal_compensaded_EC = AD5934_EC_Compensate_Magnitude_To_25C(g_ec_filter.filtered_value, temperature_RTD);
|
||||
uint16_t ec_final = AD5934_Compress_To_IntScale(thermal_compensaded_EC, current_ec_mux);
|
||||
|
||||
intToStr(ec_final, tempString);
|
||||
//intToStr(ec_now, tempString);
|
||||
// float ec_final = g_ec_filter.filtered_value;
|
||||
// FloatToString(tempString, ec_final);
|
||||
FloatToString(tempString, mag_ec);
|
||||
//Convert2Hex((ec_now+0x80008000), tempString);
|
||||
rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
//intToStr(ec_now_i, tempString);
|
||||
//rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
}
|
||||
//}
|
||||
|
||||
if (g_ph_filter.value_valid) // pH
|
||||
{
|
||||
@@ -222,6 +268,7 @@ int main(void)
|
||||
//FloatToString(tempString, ph_final);
|
||||
rs485_send_broadcast(tempString, (strlen((uint8_t*)tempString)));
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
}
|
||||
|
||||
rs485_send_broadcast(&newline, 1);
|
||||
@@ -359,7 +406,7 @@ void FloatToString(uint8_t *buf, double val)
|
||||
fracBuffer[1] = (fracPart / 10) % 10; // Dezena
|
||||
fracBuffer[0] = (fracPart / 100) % 10; // Centena
|
||||
|
||||
for (int k = 2; k >= 0; k--) {
|
||||
for (int k = 0; k <= 2; k++) {
|
||||
temp[i++] = fracBuffer[k] + '0';
|
||||
}
|
||||
|
||||
@@ -434,6 +481,28 @@ void intToStr(int16_t N, uint8_t *str)
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
/**
|
||||
* Converte um valor uint32_t para string hexadecimal,
|
||||
* escrevendo o resultado no buffer apontado por 'str'.
|
||||
*
|
||||
* @param value Valor a ser convertido (ex: 4276803469)
|
||||
* @param str Ponteiro para buffer de destino (mínimo 9 bytes:
|
||||
* 8 dígitos hex + terminador nulo)
|
||||
*/
|
||||
void Convert2Hex(uint32_t value, char *str)
|
||||
{
|
||||
const char hexTable[] = "0123456789ABCDEF";
|
||||
|
||||
for (int8_t i = 7; i >= 0; i--)
|
||||
{
|
||||
str[i] = hexTable[value & 0xF];
|
||||
value >>= 4;
|
||||
}
|
||||
//str[8] = '\0';
|
||||
}
|
||||
|
||||
|
||||
/* TIM3 Timer Interrupt */
|
||||
void HAL_TIM_PeriodElapsedCallback(TIM_HandleTypeDef *htim)
|
||||
{
|
||||
|
||||
Reference in New Issue
Block a user