Fork of the espurna firmware for `mhsw` switches
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  1. // -----------------------------------------------------------------------------
  2. // ADS1X15-based Energy Monitor Sensor over I2C
  3. // Copyright (C) 2017 by Xose Pérez <xose dot perez at gmail dot com>
  4. // -----------------------------------------------------------------------------
  5. #pragma once
  6. #include "Arduino.h"
  7. #include "BaseSensor.h"
  8. #include "EmonSensor.h"
  9. #if I2C_USE_BRZO
  10. #include <brzo_i2c.h>
  11. #else
  12. #include <Wire.h>
  13. #endif
  14. #define ADS1X15_CHANNELS (4)
  15. #define ADS1X15_CHIP_ADS1015 (0)
  16. #define ADS1X15_CHIP_ADS1115 (1)
  17. #define ADS1X15_RESOLUTION (16)
  18. #define ADS1015_CONVERSIONDELAY (1)
  19. #define ADS1115_CONVERSIONDELAY (8)
  20. #define ADS1015_BIT_SHIFT (4)
  21. #define ADS1115_BIT_SHIFT (0)
  22. #define ADS1X15_REG_POINTER_MASK (0x03)
  23. #define ADS1X15_REG_POINTER_CONVERT (0x00)
  24. #define ADS1X15_REG_POINTER_CONFIG (0x01)
  25. #define ADS1X15_REG_POINTER_LOWTHRESH (0x02)
  26. #define ADS1X15_REG_POINTER_HITHRESH (0x03)
  27. #define ADS1X15_REG_CONFIG_OS_MASK (0x8000)
  28. #define ADS1X15_REG_CONFIG_OS_SINGLE (0x8000) // Write: Set to start a single-conversion
  29. #define ADS1X15_REG_CONFIG_OS_BUSY (0x0000) // Read: Bit = 0 when conversion is in progress
  30. #define ADS1X15_REG_CONFIG_OS_NOTBUSY (0x8000) // Read: Bit = 1 when device is not performing a conversion
  31. #define ADS1X15_REG_CONFIG_MUX_MASK (0x7000)
  32. #define ADS1X15_REG_CONFIG_MUX_DIFF_0_1 (0x0000) // Differential P = AIN0, N = AIN1 (default)
  33. #define ADS1X15_REG_CONFIG_MUX_DIFF_0_3 (0x1000) // Differential P = AIN0, N = AIN3
  34. #define ADS1X15_REG_CONFIG_MUX_DIFF_1_3 (0x2000) // Differential P = AIN1, N = AIN3
  35. #define ADS1X15_REG_CONFIG_MUX_DIFF_2_3 (0x3000) // Differential P = AIN2, N = AIN3
  36. #define ADS1X15_REG_CONFIG_MUX_SINGLE_0 (0x4000) // Single-ended AIN0
  37. #define ADS1X15_REG_CONFIG_MUX_SINGLE_1 (0x5000) // Single-ended AIN1
  38. #define ADS1X15_REG_CONFIG_MUX_SINGLE_2 (0x6000) // Single-ended AIN2
  39. #define ADS1X15_REG_CONFIG_MUX_SINGLE_3 (0x7000) // Single-ended AIN3
  40. #define ADS1X15_REG_CONFIG_PGA_MASK (0x0E00)
  41. #define ADS1X15_REG_CONFIG_PGA_6_144V (0x0000) // +/-6.144V range = Gain 2/3
  42. #define ADS1X15_REG_CONFIG_PGA_4_096V (0x0200) // +/-4.096V range = Gain 1
  43. #define ADS1X15_REG_CONFIG_PGA_2_048V (0x0400) // +/-2.048V range = Gain 2 (default)
  44. #define ADS1X15_REG_CONFIG_PGA_1_024V (0x0600) // +/-1.024V range = Gain 4
  45. #define ADS1X15_REG_CONFIG_PGA_0_512V (0x0800) // +/-0.512V range = Gain 8
  46. #define ADS1X15_REG_CONFIG_PGA_0_256V (0x0A00) // +/-0.256V range = Gain 16
  47. #define ADS1X15_REG_CONFIG_MODE_MASK (0x0100)
  48. #define ADS1X15_REG_CONFIG_MODE_CONTIN (0x0000) // Continuous conversion mode
  49. #define ADS1X15_REG_CONFIG_MODE_SINGLE (0x0100) // Power-down single-shot mode (default)
  50. #define ADS1X15_REG_CONFIG_DR_MASK (0x00E0)
  51. #define ADS1015_REG_CONFIG_DR_128SPS (0x0000) // 128 samples per second
  52. #define ADS1015_REG_CONFIG_DR_250SPS (0x0020) // 250 samples per second
  53. #define ADS1015_REG_CONFIG_DR_490SPS (0x0040) // 490 samples per second
  54. #define ADS1015_REG_CONFIG_DR_920SPS (0x0060) // 920 samples per second
  55. #define ADS1015_REG_CONFIG_DR_1600SPS (0x0080) // 1600 samples per second (default)
  56. #define ADS1015_REG_CONFIG_DR_2400SPS (0x00A0) // 2400 samples per second
  57. #define ADS1015_REG_CONFIG_DR_3300SPS (0x00C0) // 3300 samples per second
  58. #define ADS1115_REG_CONFIG_DR_8SPS (0x0000) // 8 samples per second
  59. #define ADS1115_REG_CONFIG_DR_16SPS (0x0020) // 16 samples per second
  60. #define ADS1115_REG_CONFIG_DR_32SPS (0x0040) // 32 samples per second
  61. #define ADS1115_REG_CONFIG_DR_64SPS (0x0060) // 64 samples per second
  62. #define ADS1115_REG_CONFIG_DR_128SPS (0x0080) // 128 samples per second (default)
  63. #define ADS1115_REG_CONFIG_DR_250SPS (0x00A0) // 250 samples per second
  64. #define ADS1115_REG_CONFIG_DR_475SPS (0x00C0) // 475 samples per second
  65. #define ADS1115_REG_CONFIG_DR_860SPS (0x00E0) // 860 samples per second
  66. #define ADS1X15_REG_CONFIG_CMODE_MASK (0x0010)
  67. #define ADS1X15_REG_CONFIG_CMODE_TRAD (0x0000) // Traditional comparator with hysteresis (default)
  68. #define ADS1X15_REG_CONFIG_CMODE_WINDOW (0x0010) // Window comparator
  69. #define ADS1X15_REG_CONFIG_CPOL_MASK (0x0008)
  70. #define ADS1X15_REG_CONFIG_CPOL_ACTVLOW (0x0000) // ALERT/RDY pin is low when active (default)
  71. #define ADS1X15_REG_CONFIG_CPOL_ACTVHI (0x0008) // ALERT/RDY pin is high when active
  72. #define ADS1X15_REG_CONFIG_CLAT_MASK (0x0004) // Determines if ALERT/RDY pin latches once asserted
  73. #define ADS1X15_REG_CONFIG_CLAT_NONLAT (0x0000) // Non-latching comparator (default)
  74. #define ADS1X15_REG_CONFIG_CLAT_LATCH (0x0004) // Latching comparator
  75. #define ADS1X15_REG_CONFIG_CQUE_MASK (0x0003)
  76. #define ADS1X15_REG_CONFIG_CQUE_1CONV (0x0000) // Assert ALERT/RDY after one conversions
  77. #define ADS1X15_REG_CONFIG_CQUE_2CONV (0x0001) // Assert ALERT/RDY after two conversions
  78. #define ADS1X15_REG_CONFIG_CQUE_4CONV (0x0002) // Assert ALERT/RDY after four conversions
  79. #define ADS1X15_REG_CONFIG_CQUE_NONE (0x0003) // Disable the comparator and put ALERT/RDY in high state (default)
  80. class EmonADS1X15Sensor : public EmonSensor {
  81. public:
  82. // ---------------------------------------------------------------------
  83. // Public
  84. // ---------------------------------------------------------------------
  85. void setAddress(unsigned char address) {
  86. if (_address != address) _dirty = true;
  87. _address = address;
  88. }
  89. void setType(unsigned char type) {
  90. if (_type != type) _dirty = true;
  91. _type = type;
  92. }
  93. void setMask(unsigned char mask) {
  94. if (_mask != mask) _dirty = true;
  95. _mask = mask;
  96. }
  97. void setGain(unsigned int gain) {
  98. if (_gain != gain) _dirty = true;
  99. _gain = gain;
  100. }
  101. // ---------------------------------------------------------------------
  102. // Sensor API
  103. // ---------------------------------------------------------------------
  104. // Initialization method, must be idempotent
  105. void begin() {
  106. if (!_dirty) return;
  107. _dirty = false;
  108. // Discover
  109. if (_address == 0) {
  110. unsigned char addresses[] = {0x48, 0x49, 0x4A, 0x4B};
  111. _address = i2cFindFirst(4, addresses);
  112. }
  113. if (_address == 0) {
  114. _error = SENSOR_ERROR_UNKNOWN_ID;
  115. return;
  116. }
  117. // Calculate ports
  118. _ports = 0;
  119. unsigned char mask = _mask;
  120. while (mask) {
  121. if (mask & 0x01) ++_ports;
  122. mask = mask >> 1;
  123. }
  124. _count = _ports * _magnitudes;
  125. // Bit depth
  126. _resolution = ADS1X15_RESOLUTION;
  127. // Reference based on gain
  128. if (_gain == ADS1X15_REG_CONFIG_PGA_6_144V) _reference = 12.288;
  129. if (_gain == ADS1X15_REG_CONFIG_PGA_4_096V) _reference = 8.192;
  130. if (_gain == ADS1X15_REG_CONFIG_PGA_2_048V) _reference = 4.096;
  131. if (_gain == ADS1X15_REG_CONFIG_PGA_1_024V) _reference = 2.048;
  132. if (_gain == ADS1X15_REG_CONFIG_PGA_0_512V) _reference = 1.024;
  133. if (_gain == ADS1X15_REG_CONFIG_PGA_0_256V) _reference = 0.512;
  134. // Call the parent class method
  135. EmonSensor::begin();
  136. // warmup all channels
  137. warmup();
  138. }
  139. // Descriptive name of the sensor
  140. String name() {
  141. char buffer[30];
  142. snprintf(buffer, sizeof(buffer), "EMON @ ADS1%d15 @ I2C (0x%02X)", _type == ADS1X15_CHIP_ADS1015 ? 0 : 1, _address);
  143. return String(buffer);
  144. }
  145. // Descriptive name of the slot # index
  146. String slot(unsigned char index) {
  147. char buffer[35];
  148. unsigned char channel = getChannel(index % _ports);
  149. snprintf(buffer, sizeof(buffer), "EMON @ ADS1%d15 (A%d) @ I2C (0x%02X)", _type == ADS1X15_CHIP_ADS1015 ? 0 : 1, channel, _address);
  150. return String(buffer);
  151. }
  152. // Type for slot # index
  153. magnitude_t type(unsigned char index) {
  154. if (index < _count) {
  155. _error = SENSOR_ERROR_OK;
  156. unsigned char magnitude = index / _ports;
  157. unsigned char i=0;
  158. #if EMON_REPORT_CURRENT
  159. if (magnitude == i++) return MAGNITUDE_CURRENT;
  160. #endif
  161. #if EMON_REPORT_POWER
  162. if (magnitude == i++) return MAGNITUDE_POWER_APPARENT;
  163. #endif
  164. #if EMON_REPORT_ENERGY
  165. if (magnitude == i) return MAGNITUDE_ENERGY;
  166. #endif
  167. }
  168. _error = SENSOR_ERROR_OUT_OF_RANGE;
  169. return MAGNITUDE_NONE;
  170. }
  171. void pre() {
  172. static unsigned long last = 0;
  173. for (unsigned char port=0; port<_ports; port++) {
  174. unsigned char channel = getChannel(port);
  175. _current[port] = getCurrent(channel);
  176. #if EMON_REPORT_ENERGY
  177. _energy[port] += (_current[port] * _voltage * (millis() - last) / 1000);
  178. #endif
  179. }
  180. last = millis();
  181. }
  182. // Current value for slot # index
  183. double value(unsigned char index) {
  184. if (index < _count) {
  185. _error = SENSOR_ERROR_OK;
  186. unsigned char port = index % _ports;
  187. unsigned char magnitude = index / _ports;
  188. unsigned char i=0;
  189. #if EMON_REPORT_CURRENT
  190. if (magnitude == i++) return _current[port];
  191. #endif
  192. #if EMON_REPORT_POWER
  193. if (magnitude == i++) return _current[port] * _voltage;
  194. #endif
  195. #if EMON_REPORT_ENERGY
  196. if (magnitude == i) return _energy[port];
  197. #endif
  198. }
  199. _error = SENSOR_ERROR_OUT_OF_RANGE;
  200. return 0;
  201. }
  202. protected:
  203. //----------------------------------------------------------------------
  204. // Protected
  205. //----------------------------------------------------------------------
  206. unsigned char getChannel(unsigned char port) {
  207. unsigned char count = 0;
  208. unsigned char bit = 1;
  209. for (unsigned char channel=0; channel<ADS1X15_CHANNELS; channel++) {
  210. if ((_mask & bit) == bit) {
  211. if (count == port) return channel;
  212. ++count;
  213. }
  214. bit <<= 1;
  215. }
  216. return 0;
  217. }
  218. void warmup() {
  219. for (unsigned char port=0; port<_ports; port++) {
  220. unsigned char channel = getChannel(port);
  221. _pivot[channel] = _adc_counts >> 1;
  222. getCurrent(channel);
  223. }
  224. }
  225. //----------------------------------------------------------------------
  226. // I2C
  227. //----------------------------------------------------------------------
  228. void setConfigRegistry(unsigned char channel, bool continuous, bool start) {
  229. // Start with default values
  230. uint16_t config = 0;
  231. config |= _gain; // Set PGA/voltage range (0x0200)
  232. config |= ADS1X15_REG_CONFIG_DR_MASK; // Always at max speed (0x00E0)
  233. //config |= ADS1X15_REG_CONFIG_CMODE_TRAD; // Traditional comparator (default val) (0x0000)
  234. //config |= ADS1X15_REG_CONFIG_CPOL_ACTVLOW; // Alert/Rdy active low (default val) (0x0000)
  235. //config |= ADS1X15_REG_CONFIG_CLAT_NONLAT; // Non-latching (default val) (0x0000)
  236. config |= ADS1X15_REG_CONFIG_CQUE_NONE; // Disable the comparator (default val) (0x0003)
  237. if (start) {
  238. config |= ADS1X15_REG_CONFIG_OS_SINGLE; // Start a single-conversion (0x8000)
  239. }
  240. if (continuous) {
  241. //config |= ADS1X15_REG_CONFIG_MODE_CONTIN; // Continuous mode (default) (0x0000)
  242. } else {
  243. config |= ADS1X15_REG_CONFIG_MODE_SINGLE; // Single-shot mode (0x0100)
  244. }
  245. config |= ((channel + 4) << 12); // Set single-ended input channel (0x4000 - 0x7000)
  246. #if SENSOR_DEBUG
  247. Serial.printf("[EMON] ADS1X115 Config Registry: %04X\n", config);
  248. #endif
  249. // Write config register to the ADC
  250. #if I2C_USE_BRZO
  251. uint8_t buffer[3];
  252. buffer[0] = ADS1X15_REG_POINTER_CONFIG;
  253. buffer[1] = config >> 8;
  254. buffer[2] = config & 0xFF;
  255. brzo_i2c_start_transaction(_address, I2C_SCL_FREQUENCY);
  256. brzo_i2c_write(buffer, 3, false);
  257. brzo_i2c_end_transaction();
  258. #else
  259. Wire.beginTransmission(_address);
  260. Wire.write((uint8_t) ADS1X15_REG_POINTER_CONFIG);
  261. Wire.write((uint8_t) (config >> 8));
  262. Wire.write((uint8_t) (config & 0xFF));
  263. Wire.endTransmission();
  264. #endif
  265. }
  266. double getCurrent(unsigned char channel) {
  267. // Force stop by setting single mode and back to continuous
  268. static unsigned char previous = 9;
  269. if (previous != channel) {
  270. setConfigRegistry(channel, true, false);
  271. setConfigRegistry(channel, false, false);
  272. setConfigRegistry(channel, false, true);
  273. delay(10);
  274. readADC(channel);
  275. previous = channel;
  276. }
  277. setConfigRegistry(channel, true, true);
  278. return read(channel, _pivot[channel]);
  279. }
  280. unsigned int readADC(unsigned char channel) {
  281. unsigned int value = 0;
  282. #if I2C_USE_BRZO
  283. uint8_t buffer[3];
  284. buffer[0] = ADS1X15_REG_POINTER_CONVERT;
  285. brzo_i2c_start_transaction(_address, I2C_SCL_FREQUENCY);
  286. brzo_i2c_write(buffer, 1, false);
  287. brzo_i2c_read(buffer, 2, false);
  288. brzo_i2c_end_transaction();
  289. value |= buffer[0] << 8;
  290. value |= buffer[1];
  291. #else
  292. Wire.beginTransmission(_address);
  293. Wire.write(ADS1X15_REG_POINTER_CONVERT);
  294. Wire.endTransmission();
  295. Wire.requestFrom(_address, (unsigned char) 2);
  296. value |= Wire.read() << 8;
  297. value |= Wire.read();
  298. #endif
  299. if (_type = ADS1X15_CHIP_ADS1015) value >>= ADS1015_BIT_SHIFT;
  300. delayMicroseconds(500);
  301. return value;
  302. }
  303. unsigned char _address;
  304. unsigned char _type = ADS1X15_CHIP_ADS1115;
  305. unsigned char _mask = 0x0F;
  306. unsigned int _gain = ADS1X15_REG_CONFIG_PGA_4_096V;
  307. unsigned char _ports;
  308. double _pivot[ADS1X15_CHANNELS] = {0};
  309. double _current[ADS1X15_CHANNELS] = {0};
  310. #if EMON_REPORT_ENERGY
  311. unsigned long _energy[ADS1X15_CHANNELS] = {0};
  312. #endif
  313. };