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  1. /* Copyright 2019 Drew Mills
  2. *
  3. * This program is free software: you can redistribute it and/or modify
  4. * it under the terms of the GNU General Public License as published by
  5. * the Free Software Foundation, either version 2 of the License, or
  6. * (at your option) any later version.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. * GNU General Public License for more details.
  12. *
  13. * You should have received a copy of the GNU General Public License
  14. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  15. */
  16. #include "quantum.h"
  17. #include "analog.h"
  18. #include <ch.h>
  19. #include <hal.h>
  20. #if !HAL_USE_ADC
  21. # error "You need to set HAL_USE_ADC to TRUE in your halconf.h to use the ADC."
  22. #endif
  23. #if !STM32_ADC_USE_ADC1 && !STM32_ADC_USE_ADC2 && !STM32_ADC_USE_ADC3 && !STM32_ADC_USE_ADC4
  24. # error "You need to set one of the 'STM32_ADC_USE_ADCx' settings to TRUE in your mcuconf.h to use the ADC."
  25. #endif
  26. #if STM32_ADC_DUAL_MODE
  27. # error "STM32 ADC Dual Mode is not supported at this time."
  28. #endif
  29. #if STM32_ADCV3_OVERSAMPLING
  30. # error "STM32 ADCV3 Oversampling is not supported at this time."
  31. #endif
  32. // Otherwise assume V3
  33. #if defined(STM32F0XX) || defined(STM32L0XX)
  34. # define USE_ADCV1
  35. #elif defined(STM32F1XX) || defined(STM32F2XX) || defined(STM32F4XX)
  36. # define USE_ADCV2
  37. #endif
  38. // BODGE to make v2 look like v1,3 and 4
  39. #ifdef USE_ADCV2
  40. # if !defined(ADC_SMPR_SMP_1P5) && defined(ADC_SAMPLE_3)
  41. # define ADC_SMPR_SMP_1P5 ADC_SAMPLE_3
  42. # define ADC_SMPR_SMP_7P5 ADC_SAMPLE_15
  43. # define ADC_SMPR_SMP_13P5 ADC_SAMPLE_28
  44. # define ADC_SMPR_SMP_28P5 ADC_SAMPLE_56
  45. # define ADC_SMPR_SMP_41P5 ADC_SAMPLE_84
  46. # define ADC_SMPR_SMP_55P5 ADC_SAMPLE_112
  47. # define ADC_SMPR_SMP_71P5 ADC_SAMPLE_144
  48. # define ADC_SMPR_SMP_239P5 ADC_SAMPLE_480
  49. # endif
  50. # if !defined(ADC_SMPR_SMP_1P5) && defined(ADC_SAMPLE_1P5)
  51. # define ADC_SMPR_SMP_1P5 ADC_SAMPLE_1P5
  52. # define ADC_SMPR_SMP_7P5 ADC_SAMPLE_7P5
  53. # define ADC_SMPR_SMP_13P5 ADC_SAMPLE_13P5
  54. # define ADC_SMPR_SMP_28P5 ADC_SAMPLE_28P5
  55. # define ADC_SMPR_SMP_41P5 ADC_SAMPLE_41P5
  56. # define ADC_SMPR_SMP_55P5 ADC_SAMPLE_55P5
  57. # define ADC_SMPR_SMP_71P5 ADC_SAMPLE_71P5
  58. # define ADC_SMPR_SMP_239P5 ADC_SAMPLE_239P5
  59. # endif
  60. // we still sample at 12bit, but scale down to the requested bit range
  61. # define ADC_CFGR1_RES_12BIT 12
  62. # define ADC_CFGR1_RES_10BIT 10
  63. # define ADC_CFGR1_RES_8BIT 8
  64. # define ADC_CFGR1_RES_6BIT 6
  65. #endif
  66. /* User configurable ADC options */
  67. #ifndef ADC_COUNT
  68. # if defined(STM32F0XX) || defined(STM32F1XX) || defined(STM32F4XX)
  69. # define ADC_COUNT 1
  70. # elif defined(STM32F3XX)
  71. # define ADC_COUNT 4
  72. # else
  73. # error "ADC_COUNT has not been set for this ARM microcontroller."
  74. # endif
  75. #endif
  76. #ifndef ADC_NUM_CHANNELS
  77. # define ADC_NUM_CHANNELS 1
  78. #elif ADC_NUM_CHANNELS != 1
  79. # error "The ARM ADC implementation currently only supports reading one channel at a time."
  80. #endif
  81. #ifndef ADC_BUFFER_DEPTH
  82. # define ADC_BUFFER_DEPTH 1
  83. #endif
  84. // For more sampling rate options, look at hal_adc_lld.h in ChibiOS
  85. #ifndef ADC_SAMPLING_RATE
  86. # define ADC_SAMPLING_RATE ADC_SMPR_SMP_1P5
  87. #endif
  88. // Options are 12, 10, 8, and 6 bit.
  89. #ifndef ADC_RESOLUTION
  90. # define ADC_RESOLUTION ADC_CFGR1_RES_10BIT
  91. #endif
  92. static ADCConfig adcCfg = {};
  93. static adcsample_t sampleBuffer[ADC_NUM_CHANNELS * ADC_BUFFER_DEPTH];
  94. // Initialize to max number of ADCs, set to empty object to initialize all to false.
  95. static bool adcInitialized[ADC_COUNT] = {};
  96. // TODO: add back TR handling???
  97. static ADCConversionGroup adcConversionGroup = {
  98. .circular = FALSE,
  99. .num_channels = (uint16_t)(ADC_NUM_CHANNELS),
  100. #if defined(USE_ADCV1)
  101. .cfgr1 = ADC_CFGR1_CONT | ADC_RESOLUTION,
  102. .smpr = ADC_SAMPLING_RATE,
  103. #elif defined(USE_ADCV2)
  104. # if !defined(STM32F1XX)
  105. .cr2 = ADC_CR2_SWSTART, // F103 seem very unhappy with, F401 seems very unhappy without...
  106. # endif
  107. .smpr2 = ADC_SMPR2_SMP_AN0(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN1(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN2(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN3(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN4(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN5(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN6(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN7(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN8(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN9(ADC_SAMPLING_RATE),
  108. .smpr1 = ADC_SMPR1_SMP_AN10(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN11(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN12(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN13(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN14(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN15(ADC_SAMPLING_RATE),
  109. #else
  110. .cfgr = ADC_CFGR_CONT | ADC_RESOLUTION,
  111. .smpr = {ADC_SMPR1_SMP_AN0(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN1(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN2(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN3(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN4(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN5(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN6(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN7(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN8(ADC_SAMPLING_RATE) | ADC_SMPR1_SMP_AN9(ADC_SAMPLING_RATE), ADC_SMPR2_SMP_AN10(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN11(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN12(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN13(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN14(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN15(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN16(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN17(ADC_SAMPLING_RATE) | ADC_SMPR2_SMP_AN18(ADC_SAMPLING_RATE)},
  112. #endif
  113. };
  114. // clang-format off
  115. __attribute__((weak)) adc_mux pinToMux(pin_t pin) {
  116. switch (pin) {
  117. #if defined(STM32F0XX)
  118. case A0: return TO_MUX( ADC_CHSELR_CHSEL0, 0 );
  119. case A1: return TO_MUX( ADC_CHSELR_CHSEL1, 0 );
  120. case A2: return TO_MUX( ADC_CHSELR_CHSEL2, 0 );
  121. case A3: return TO_MUX( ADC_CHSELR_CHSEL3, 0 );
  122. case A4: return TO_MUX( ADC_CHSELR_CHSEL4, 0 );
  123. case A5: return TO_MUX( ADC_CHSELR_CHSEL5, 0 );
  124. case A6: return TO_MUX( ADC_CHSELR_CHSEL6, 0 );
  125. case A7: return TO_MUX( ADC_CHSELR_CHSEL7, 0 );
  126. case B0: return TO_MUX( ADC_CHSELR_CHSEL8, 0 );
  127. case B1: return TO_MUX( ADC_CHSELR_CHSEL9, 0 );
  128. case C0: return TO_MUX( ADC_CHSELR_CHSEL10, 0 );
  129. case C1: return TO_MUX( ADC_CHSELR_CHSEL11, 0 );
  130. case C2: return TO_MUX( ADC_CHSELR_CHSEL12, 0 );
  131. case C3: return TO_MUX( ADC_CHSELR_CHSEL13, 0 );
  132. case C4: return TO_MUX( ADC_CHSELR_CHSEL14, 0 );
  133. case C5: return TO_MUX( ADC_CHSELR_CHSEL15, 0 );
  134. #elif defined(STM32F3XX)
  135. case A0: return TO_MUX( ADC_CHANNEL_IN1, 0 );
  136. case A1: return TO_MUX( ADC_CHANNEL_IN2, 0 );
  137. case A2: return TO_MUX( ADC_CHANNEL_IN3, 0 );
  138. case A3: return TO_MUX( ADC_CHANNEL_IN4, 0 );
  139. case A4: return TO_MUX( ADC_CHANNEL_IN1, 1 );
  140. case A5: return TO_MUX( ADC_CHANNEL_IN2, 1 );
  141. case A6: return TO_MUX( ADC_CHANNEL_IN3, 1 );
  142. case A7: return TO_MUX( ADC_CHANNEL_IN4, 1 );
  143. case B0: return TO_MUX( ADC_CHANNEL_IN12, 2 );
  144. case B1: return TO_MUX( ADC_CHANNEL_IN1, 2 );
  145. case B2: return TO_MUX( ADC_CHANNEL_IN12, 1 );
  146. case B12: return TO_MUX( ADC_CHANNEL_IN2, 3 );
  147. case B13: return TO_MUX( ADC_CHANNEL_IN3, 3 );
  148. case B14: return TO_MUX( ADC_CHANNEL_IN4, 3 );
  149. case B15: return TO_MUX( ADC_CHANNEL_IN5, 3 );
  150. case C0: return TO_MUX( ADC_CHANNEL_IN6, 0 ); // Can also be ADC2
  151. case C1: return TO_MUX( ADC_CHANNEL_IN7, 0 ); // Can also be ADC2
  152. case C2: return TO_MUX( ADC_CHANNEL_IN8, 0 ); // Can also be ADC2
  153. case C3: return TO_MUX( ADC_CHANNEL_IN9, 0 ); // Can also be ADC2
  154. case C4: return TO_MUX( ADC_CHANNEL_IN5, 1 );
  155. case C5: return TO_MUX( ADC_CHANNEL_IN11, 1 );
  156. case D8: return TO_MUX( ADC_CHANNEL_IN12, 3 );
  157. case D9: return TO_MUX( ADC_CHANNEL_IN13, 3 );
  158. case D10: return TO_MUX( ADC_CHANNEL_IN7, 2 ); // Can also be ADC4
  159. case D11: return TO_MUX( ADC_CHANNEL_IN8, 2 ); // Can also be ADC4
  160. case D12: return TO_MUX( ADC_CHANNEL_IN9, 2 ); // Can also be ADC4
  161. case D13: return TO_MUX( ADC_CHANNEL_IN10, 2 ); // Can also be ADC4
  162. case D14: return TO_MUX( ADC_CHANNEL_IN11, 2 ); // Can also be ADC4
  163. case E7: return TO_MUX( ADC_CHANNEL_IN13, 2 );
  164. case E8: return TO_MUX( ADC_CHANNEL_IN6, 2 ); // Can also be ADC4
  165. case E9: return TO_MUX( ADC_CHANNEL_IN2, 2 );
  166. case E10: return TO_MUX( ADC_CHANNEL_IN14, 2 );
  167. case E11: return TO_MUX( ADC_CHANNEL_IN15, 2 );
  168. case E12: return TO_MUX( ADC_CHANNEL_IN16, 2 );
  169. case E13: return TO_MUX( ADC_CHANNEL_IN3, 2 );
  170. case E14: return TO_MUX( ADC_CHANNEL_IN1, 3 );
  171. case E15: return TO_MUX( ADC_CHANNEL_IN2, 3 );
  172. case F2: return TO_MUX( ADC_CHANNEL_IN10, 0 ); // Can also be ADC2
  173. case F4: return TO_MUX( ADC_CHANNEL_IN5, 0 );
  174. #elif defined(STM32F4XX) // TODO: add all pins
  175. case A0: return TO_MUX( ADC_CHANNEL_IN0, 0 );
  176. //case A1: return TO_MUX( ADC_CHANNEL_IN1, 0 );
  177. #elif defined(STM32F1XX) // TODO: add all pins
  178. case A0: return TO_MUX( ADC_CHANNEL_IN0, 0 );
  179. #endif
  180. }
  181. // return an adc that would never be used so intToADCDriver will bail out
  182. return TO_MUX(0, 0xFF);
  183. }
  184. // clang-format on
  185. static inline ADCDriver* intToADCDriver(uint8_t adcInt) {
  186. switch (adcInt) {
  187. #if STM32_ADC_USE_ADC1
  188. case 0:
  189. return &ADCD1;
  190. #endif
  191. #if STM32_ADC_USE_ADC2
  192. case 1:
  193. return &ADCD2;
  194. #endif
  195. #if STM32_ADC_USE_ADC3
  196. case 2:
  197. return &ADCD3;
  198. #endif
  199. #if STM32_ADC_USE_ADC4
  200. case 3:
  201. return &ADCD4;
  202. #endif
  203. }
  204. return NULL;
  205. }
  206. static inline void manageAdcInitializationDriver(uint8_t adc, ADCDriver* adcDriver) {
  207. if (!adcInitialized[adc]) {
  208. adcStart(adcDriver, &adcCfg);
  209. adcInitialized[adc] = true;
  210. }
  211. }
  212. int16_t analogReadPin(pin_t pin) {
  213. palSetLineMode(pin, PAL_MODE_INPUT_ANALOG);
  214. return adc_read(pinToMux(pin));
  215. }
  216. int16_t analogReadPinAdc(pin_t pin, uint8_t adc) {
  217. palSetLineMode(pin, PAL_MODE_INPUT_ANALOG);
  218. adc_mux target = pinToMux(pin);
  219. target.adc = adc;
  220. return adc_read(target);
  221. }
  222. int16_t adc_read(adc_mux mux) {
  223. #if defined(USE_ADCV1)
  224. // TODO: fix previous assumption of only 1 input...
  225. adcConversionGroup.chselr = 1 << mux.input; /*no macro to convert N to ADC_CHSELR_CHSEL1*/
  226. #elif defined(USE_ADCV2)
  227. adcConversionGroup.sqr3 = ADC_SQR3_SQ1_N(mux.input);
  228. #else
  229. adcConversionGroup.sqr[0] = ADC_SQR1_SQ1_N(mux.input);
  230. #endif
  231. ADCDriver* targetDriver = intToADCDriver(mux.adc);
  232. if (!targetDriver) {
  233. return 0;
  234. }
  235. manageAdcInitializationDriver(mux.adc, targetDriver);
  236. if (adcConvert(targetDriver, &adcConversionGroup, &sampleBuffer[0], ADC_BUFFER_DEPTH) != MSG_OK) {
  237. return 0;
  238. }
  239. #ifdef USE_ADCV2
  240. // fake 12-bit -> N-bit scale
  241. return (*sampleBuffer) >> (12 - ADC_RESOLUTION);
  242. #else
  243. // already handled as part of adcConvert
  244. return *sampleBuffer;
  245. #endif
  246. }