esp_efuse_rtc_calib.c 3.1 KB

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  1. /*
  2. * SPDX-FileCopyrightText: 2020-2022 Espressif Systems (Shanghai) CO LTD
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. */
  6. #include <esp_bit_defs.h>
  7. #include "esp_efuse.h"
  8. #include "esp_efuse_table.h"
  9. int esp_efuse_rtc_calib_get_ver(void)
  10. {
  11. uint32_t result = 0;
  12. esp_efuse_read_field_blob(ESP_EFUSE_BLK_VERSION_MAJOR, &result, ESP_EFUSE_BLK_VERSION_MAJOR[0]->bit_count); // IDF-5366
  13. return result;
  14. }
  15. uint32_t esp_efuse_rtc_calib_get_init_code(int version, uint32_t adc_unit, int atten)
  16. {
  17. assert(version == 1);
  18. (void) adc_unit;
  19. const esp_efuse_desc_t** init_code_efuse;
  20. assert(atten < 4);
  21. if (atten == 0) {
  22. init_code_efuse = ESP_EFUSE_ADC1_INIT_CODE_ATTEN0;
  23. } else if (atten == 1) {
  24. init_code_efuse = ESP_EFUSE_ADC1_INIT_CODE_ATTEN1;
  25. } else if (atten == 2) {
  26. init_code_efuse = ESP_EFUSE_ADC1_INIT_CODE_ATTEN2;
  27. } else {
  28. init_code_efuse = ESP_EFUSE_ADC1_INIT_CODE_ATTEN3;
  29. }
  30. int init_code_size = esp_efuse_get_field_size(init_code_efuse);
  31. assert(init_code_size == 10);
  32. uint32_t init_code = 0;
  33. ESP_ERROR_CHECK(esp_efuse_read_field_blob(init_code_efuse, &init_code, init_code_size));
  34. return init_code + 1000; // version 1 logic
  35. }
  36. esp_err_t esp_efuse_rtc_calib_get_cal_voltage(int version, uint32_t adc_unit, int atten, uint32_t* out_digi, uint32_t* out_vol_mv)
  37. {
  38. (void)adc_unit; //On esp32c3, V1 we don't have calibration data for ADC2, using the efuse data of ADC1
  39. const esp_efuse_desc_t** cal_vol_efuse;
  40. uint32_t calib_vol_expected_mv;
  41. if (version != 1) {
  42. return ESP_ERR_INVALID_ARG;
  43. }
  44. if (atten >= 4) {
  45. return ESP_ERR_INVALID_ARG;
  46. }
  47. if (atten == 0) {
  48. cal_vol_efuse = ESP_EFUSE_ADC1_CAL_VOL_ATTEN0;
  49. calib_vol_expected_mv = 400;
  50. } else if (atten == 1) {
  51. cal_vol_efuse = ESP_EFUSE_ADC1_CAL_VOL_ATTEN1;
  52. calib_vol_expected_mv = 550;
  53. } else if (atten == 2) {
  54. cal_vol_efuse = ESP_EFUSE_ADC1_CAL_VOL_ATTEN2;
  55. calib_vol_expected_mv = 750;
  56. } else {
  57. cal_vol_efuse = ESP_EFUSE_ADC1_CAL_VOL_ATTEN3;
  58. calib_vol_expected_mv = 1370;
  59. }
  60. assert(cal_vol_efuse[0]->bit_count == 10);
  61. uint32_t cal_vol = 0;
  62. ESP_ERROR_CHECK(esp_efuse_read_field_blob(cal_vol_efuse, &cal_vol, cal_vol_efuse[0]->bit_count));
  63. *out_digi = 2000 + ((cal_vol & BIT(9))? -(cal_vol & ~BIT9): cal_vol);
  64. *out_vol_mv = calib_vol_expected_mv;
  65. return ESP_OK;
  66. }
  67. esp_err_t esp_efuse_rtc_calib_get_tsens_val(float* tsens_cal)
  68. {
  69. uint32_t version = esp_efuse_rtc_calib_get_ver();
  70. if (version != 1) {
  71. *tsens_cal = 0.0;
  72. return ESP_ERR_NOT_SUPPORTED;
  73. }
  74. const esp_efuse_desc_t** cal_temp_efuse;
  75. cal_temp_efuse = ESP_EFUSE_TEMP_CALIB;
  76. int cal_temp_size = esp_efuse_get_field_size(cal_temp_efuse);
  77. assert(cal_temp_size == 9);
  78. uint32_t cal_temp = 0;
  79. esp_err_t err = esp_efuse_read_field_blob(cal_temp_efuse, &cal_temp, cal_temp_size);
  80. assert(err == ESP_OK);
  81. (void)err;
  82. // BIT(8) stands for sign: 1: negtive, 0: positive
  83. *tsens_cal = ((cal_temp & BIT(8)) != 0)? -(uint8_t)cal_temp: (uint8_t)cal_temp;
  84. return ESP_OK;
  85. }