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  1. #if 1
  2. #include "ztmc4361A.hpp"
  3. #ifdef HAL_SPI_MODULE_ENABLED
  4. #include <stdarg.h>
  5. #include "../basic/basic.hpp"
  6. #include "./TMC4361A/TMC4361A.h"
  7. #include "sdk/os/zos.hpp"
  8. using namespace iflytop;
  9. #define PRV_FIELD_WRITE(address, mask, shift, value) (writeInt(address, FIELD_SET(readInt(address), mask, shift, value)))
  10. #define PRV_FIELD_READ(address, mask, shift) FIELD_GET(readInt(address), mask, shift)
  11. #define SET_PIN(pin, val) \
  12. if (pin) { \
  13. pin->setState(val); \
  14. }
  15. #if 1
  16. void TMC4361A::readWriteArray(uint8_t *data, size_t length) {
  17. m_csgpio->setState(false);
  18. // zchip_clock_early_delayus(10);
  19. zchip_clock_early_delayus(10);
  20. HAL_SPI_TransmitReceive(m_spi, data, data, length, 1000);
  21. m_csgpio->setState(true);
  22. }
  23. void TMC4361A::writeInt(uint8_t address, int32_t value) { writeDatagram(address, BYTE(value, 3), BYTE(value, 2), BYTE(value, 1), BYTE(value, 0)); }
  24. int32_t TMC4361A::readInt(uint8_t address) {
  25. CriticalContext cc;
  26. int value;
  27. uint8_t data[5];
  28. address = TMC_ADDRESS(address);
  29. if (!TMC_IS_READABLE(m_registerAccessTable[address])) return m_defaultRegisterResetState[address];
  30. data[0] = address;
  31. readWriteArray(&data[0], 5);
  32. data[0] = address;
  33. readWriteArray(&data[0], 5);
  34. m_status = data[0];
  35. value = ((uint32_t)data[1] << 24) | ((uint32_t)data[2] << 16) | (data[3] << 8) | data[4];
  36. return value;
  37. }
  38. void TMC4361A::writeDatagram(uint8_t address, uint8_t x1, uint8_t x2, uint8_t x3, uint8_t x4) {
  39. CriticalContext cc;
  40. int value;
  41. uint8_t data[5] = {static_cast<uint8_t>(address | static_cast<uint8_t>(TMC4361A_WRITE_BIT)), x1, x2, x3, x4};
  42. readWriteArray(&data[0], 5);
  43. m_status = data[0];
  44. value = ((uint32_t)x1 << 24) | ((uint32_t)x2 << 16) | (x3 << 8) | x4;
  45. // Write to the shadow register and mark the register dirty
  46. address = TMC_ADDRESS(address);
  47. shadowRegister[address] = value;
  48. }
  49. void TMC4361A::readWriteCover(uint8_t *data, size_t length) {
  50. CriticalContext cc;
  51. // Buffering old values to not interrupt manual covering
  52. int32_t old_high = shadowRegister[TMC4361A_COVER_HIGH_WR];
  53. int32_t old_low = shadowRegister[TMC4361A_COVER_LOW_WR];
  54. // Check if datagram length is valid
  55. if (length == 0 || length > 8) return;
  56. uint8_t bytes[8] = {0};
  57. uint32_t tmp;
  58. size_t i;
  59. // Copy data into buffer of maximum cover datagram length (8 bytes)
  60. for (i = 0; i < length; i++) bytes[i] = data[length - i - 1];
  61. // Send the datagram
  62. if (length > 4) writeDatagram(TMC4361A_COVER_HIGH_WR, bytes[7], bytes[6], bytes[5], bytes[4]);
  63. writeDatagram(TMC4361A_COVER_LOW_WR, bytes[3], bytes[2], bytes[1], bytes[0]);
  64. zos_delay(10);
  65. // Read the reply
  66. if (length > 4) {
  67. tmp = readInt(TMC4361A_COVER_DRV_HIGH_RD);
  68. bytes[4] = BYTE(tmp, 0);
  69. bytes[5] = BYTE(tmp, 1);
  70. bytes[6] = BYTE(tmp, 2);
  71. bytes[7] = BYTE(tmp, 3);
  72. }
  73. tmp = readInt(TMC4361A_COVER_DRV_LOW_RD);
  74. bytes[0] = BYTE(tmp, 0);
  75. bytes[1] = BYTE(tmp, 1);
  76. bytes[2] = BYTE(tmp, 2);
  77. bytes[3] = BYTE(tmp, 3);
  78. // Write the reply to the data array
  79. for (i = 0; i < length; i++) {
  80. data[length - i - 1] = bytes[i];
  81. }
  82. // Rewriting old values to prevent interrupting manual covering. Imitating unchanged values and state.
  83. writeInt(TMC4361A_COVER_HIGH_WR, old_high);
  84. shadowRegister[TMC4361A_COVER_LOW_WR] = old_low;
  85. }
  86. TMC4361A::TMC4361A(/* args */) {
  87. m_driver_ic_type = IC_TMC2130;
  88. m_lastCallPeriodicJobTick = 0;
  89. // m_reachtarget = false;
  90. }
  91. /**
  92. * @brief
  93. * TMC-APIеtmc4361A_reset/restoreʱTMC-APIеķʼоƬļĴ
  94. * Ĵʼ֮󣬻??
  95. * ǿУоƬIJּĴгʼ??
  96. * @param state
  97. */
  98. void TMC4361A::tmc4361AConfigCallback(ConfigState state) {}
  99. void TMC4361A::writeSubRegister(uint8_t address, uint32_t mask, uint32_t shift, uint32_t value) { //
  100. PRV_FIELD_WRITE(address, mask, shift, value);
  101. }
  102. void TMC4361A::setAcceleration(float accelerationpps2) {
  103. /**
  104. * @brief
  105. * TMC4361A_AMAX:ģʽʹõƵģʽ
  106. *
  107. * Frequency mode: [pulses per sec2]
  108. * 22 digits and 2 decimal places: 250 mpps^2 ?? AMAX ?? 4 Mpps^2
  109. * Direct mode: [?v per clk cycle]
  110. * a[?v per clk_cycle]= AMAX / 2^37
  111. * AMAX [pps2] = AMAX / 237 ?? fCLK^2
  112. */
  113. int32_t acc = (int32_t)accelerationpps2;
  114. writeInt(TMC4361A_AMAX, acc << 2);
  115. }
  116. void TMC4361A::setDeceleration(float accelerationpps2) {
  117. /**
  118. * @brief
  119. * TMC4361A_DMAX:ģʽʹõƵģʽ
  120. *
  121. * Frequency mode: [pulses per sec2]
  122. * 22 digits and 2 decimal places: 250 mpps^2 ?? AMAX ?? 4 Mpps^2
  123. * Direct mode: [?v per clk cycle]
  124. * a[?v per clk_cycle]= AMAX / 2^37
  125. * AMAX [pps2] = AMAX / 237 ?? fCLK^2
  126. */
  127. int32_t acc = (int32_t)accelerationpps2;
  128. writeInt(TMC4361A_DMAX, acc << 2);
  129. }
  130. #define INIT_GPIO(m_pin, pin, ...) \
  131. if (pin != PinNull) { \
  132. m_pin = new ZGPIO(); \
  133. ZASSERT(m_pin != nullptr); \
  134. m_pin->initAsOutput(pin, __VA_ARGS__); \
  135. } else { \
  136. m_pin = nullptr; \
  137. }
  138. void TMC4361A::initialize(cfg_t *cfg) {
  139. m_spi = cfg->spi;
  140. INIT_GPIO(m_csgpio, cfg->csgpio, ZGPIO::kMode_nopull, false, true);
  141. INIT_GPIO(m_resetPin, cfg->resetPin, ZGPIO::kMode_nopull, false, true);
  142. INIT_GPIO(m_fREEZEPin, cfg->fREEZEPin, ZGPIO::kMode_nopull, false, true);
  143. INIT_GPIO(m_ennPin, cfg->ennPin, ZGPIO::kMode_nopull, false, true);
  144. INIT_GPIO(m_driverIC_resetPin, cfg->driverIC_resetPin, ZGPIO::kMode_nopull, false, true);
  145. INIT_GPIO(m_driverIC_ennPin, cfg->driverIC_ennPin, ZGPIO::kMode_nopull, false, true);
  146. m_driver_ic_type = IC_TMC2160;
  147. m_registerAccessTable = &tmc4361A_defaultRegisterAccess[0];
  148. m_defaultRegisterResetState = &tmc4361A_defaultRegisterResetState[0];
  149. memset(shadowRegister, 0, sizeof(shadowRegister));
  150. SET_PIN(m_resetPin, true);
  151. SET_PIN(m_fREEZEPin, true);
  152. SET_PIN(m_ennPin, true);
  153. reset();
  154. driverIC_reset();
  155. setAcceleration(500000);
  156. setDeceleration(500000);
  157. enableIC(true);
  158. zchip_clock_early_delayus(300 * 1000);
  159. zchip_clock_early_delayus(300 * 1000);
  160. driverIC_setIHOLD_IRUN(1, 3, 0);
  161. }
  162. uint8_t TMC4361A::reset() {
  163. // Pulse the low-active hardware reset pin
  164. stop();
  165. SET_PIN(m_resetPin, false);
  166. zchip_clock_early_delayus(1000);
  167. SET_PIN(m_resetPin, true);
  168. /**
  169. * @brief оƬĴ??
  170. *
  171. */
  172. for (uint32_t add = 0; add < TMC4361A_REGISTER_COUNT; add++) {
  173. if (!TMC_IS_RESETTABLE(m_registerAccessTable[add])) {
  174. continue;
  175. }
  176. writeInt(add, m_defaultRegisterResetState[add]);
  177. }
  178. uint8_t driver, dataLength;
  179. uint32_t value;
  180. // Setup SPI
  181. switch (m_driver_ic_type) {
  182. case IC_TMC2130:
  183. case IC_TMC2160:
  184. driver = 0x0C;
  185. dataLength = 0;
  186. break;
  187. case IC_TMC2660:
  188. driver = 0x0B;
  189. dataLength = 0;
  190. break;
  191. default:
  192. driver = 0x0F;
  193. dataLength = 40;
  194. break;
  195. }
  196. value = 0x44400040 | (dataLength << 13) | (driver << 0);
  197. writeInt(TMC4361A_SPIOUT_CONF, value);
  198. writeInt(TMC4361A_CURRENT_CONF, 0x00000003);
  199. writeInt(TMC4361A_SCALE_VALUES, 0x00000000);
  200. return 1;
  201. }
  202. uint8_t TMC4361A::restore() { return 1; }
  203. int32_t TMC4361A::getXACTUAL() { return readInt(TMC4361A_XACTUAL); }
  204. void TMC4361A::setXACTUAL(int32_t value) { writeInt(TMC4361A_XACTUAL, value); }
  205. int32_t TMC4361A::getVACTUAL() { return readInt(TMC4361A_VACTUAL); }
  206. int32_t TMC4361A::getXTARGET() { return readInt(TMC4361A_X_TARGET); }
  207. int32_t TMC4361A::getENC_POS() { return readInt(TMC4361A_ENC_POS); }
  208. void TMC4361A::setENC_POS(int32_t value) { writeInt(TMC4361A_ENC_POS, value); }
  209. int32_t TMC4361A::getENC_POS_DEV() { return readInt(TMC4361A_ENC_POS_DEV_RD); }
  210. void TMC4361A::enableIC(bool enable) {
  211. SET_PIN(m_ennPin, !enable);
  212. SET_PIN(m_driverIC_ennPin, !enable);
  213. }
  214. int32_t tmc4361A_discardVelocityDecimals(int32_t value) {
  215. if (abs(value) > 8000000) {
  216. value = (value < 0) ? -8000000 : 8000000;
  217. }
  218. return value << 8;
  219. }
  220. void TMC4361A::rotate(int32_t velocity) {
  221. m_motor_mode = kvelmode;
  222. PRV_FIELD_WRITE(TMC4361A_RAMPMODE, TMC4361A_OPERATION_MODE_MASK, TMC4361A_OPERATION_MODE_SHIFT, 0);
  223. writeInt(TMC4361A_VMAX, tmc4361A_discardVelocityDecimals(velocity));
  224. }
  225. void TMC4361A::stop() { rotate(0); }
  226. void TMC4361A::moveTo(int32_t position, uint32_t velocityMax) {
  227. m_motor_mode = kposmode;
  228. PRV_FIELD_WRITE(TMC4361A_RAMPMODE, TMC4361A_OPERATION_MODE_MASK, TMC4361A_OPERATION_MODE_SHIFT, 1);
  229. writeInt(TMC4361A_VMAX, tmc4361A_discardVelocityDecimals(velocityMax));
  230. writeInt(TMC4361A_X_TARGET, position);
  231. }
  232. void TMC4361A::moveBy(int32_t relativePosition, uint32_t velocityMax) {
  233. relativePosition += readInt(TMC4361A_XACTUAL);
  234. moveTo(relativePosition, velocityMax);
  235. }
  236. int32_t TMC4361A::readICVersion() {
  237. int32_t value = readInt(TMC4361A_VERSION_NO_RD);
  238. return (value & TMC4361A_VERSION_NO_MASK) >> TMC4361A_VERSION_NO_SHIFT;
  239. }
  240. int32_t TMC4361A::readSubICVersion() { return driverIC_readICVersion(); }
  241. /*******************************************************************************
  242. * 2160 function end *
  243. *******************************************************************************/
  244. uint32_t TMC4361A::readEVENTS() {
  245. uint32_t value = readInt(TMC4361A_EVENTS);
  246. return value;
  247. }
  248. uint32_t TMC4361A::haspassedms(uint32_t now, uint32_t last) {
  249. if (now >= last) {
  250. return now - last;
  251. } else {
  252. return 0xFFFFFFFF - last + now;
  253. }
  254. }
  255. bool TMC4361A::isReachTarget() {
  256. uint32_t value = readInt(TMC4361A_STATUS);
  257. if (m_motor_mode == kposmode) {
  258. return (value & TMC4361A_TARGET_REACHED_F_MASK) > 0;
  259. } else {
  260. return (value & TMC4361A_VEL_REACHED_F_MASK) && (readInt(TMC4361A_VMAX) == 0);
  261. }
  262. }
  263. /*******************************************************************************
  264. * DRIVER_IC *
  265. *******************************************************************************/
  266. #define DRIVER_ID_FIELD_READ(address, mask, shift) FIELD_GET(driverIC_readInt(address), mask, shift)
  267. #define DRIVER_ID_FIELD_WRITE(address, mask, shift, value) (driverIC_writeInt(address, FIELD_SET(driverIC_readInt(address), mask, shift, value)))
  268. void TMC4361A::driverIC_reset() {
  269. SET_PIN(m_driverIC_resetPin, false);
  270. zchip_clock_early_delayus(1000);
  271. SET_PIN(m_driverIC_resetPin, true);
  272. // Reset the dirty bits
  273. int index = 0;
  274. while (true) {
  275. while ((index < TMC2160_REGISTER_COUNT) && !TMC_IS_RESTORABLE(tmc2160_defaultRegisterAccess[index])) {
  276. index++;
  277. }
  278. if (index >= TMC2160_REGISTER_COUNT) {
  279. break;
  280. }
  281. // printf("Resetting register %d\n", index);
  282. driverIC_writeInt(index, tmc2160_defaultRegisterResetState[index]);
  283. index++;
  284. }
  285. driverIC_writeInt(TMC2160_PWMCONF, 0xC40C001E);
  286. driverIC_writeInt(TMC2160_DRV_CONF, 0x00080400);
  287. }
  288. void TMC4361A::driverIC_enableIC(bool enable) { SET_PIN(m_driverIC_ennPin, !enable); }
  289. void TMC4361A::driverIC_writeDatagram(uint8_t address, uint8_t x1, uint8_t x2, uint8_t x3, uint8_t x4) {
  290. uint8_t data[5] = {static_cast<uint8_t>(address | static_cast<uint8_t>(TMC2160_WRITE_BIT)), x1, x2, x3, x4};
  291. readWriteCover(&data[0], 5);
  292. }
  293. void TMC4361A::driverIC_writeInt(uint8_t address, int32_t value) {
  294. driverIC_writeDatagram(address, BYTE(value, 3), BYTE(value, 2), BYTE(value, 1), BYTE(value, 0));
  295. }
  296. int32_t TMC4361A::driverIC_readInt(uint8_t address) {
  297. address = TMC_ADDRESS(address);
  298. // register not readable -> shadow register copy
  299. if (!TMC_IS_READABLE(tmc2160_defaultRegisterAccess[address])) return 0;
  300. uint8_t data[5];
  301. data[0] = address;
  302. readWriteCover(&data[0], 5);
  303. data[0] = address;
  304. readWriteCover(&data[0], 5);
  305. return ((uint32_t)data[1] << 24) | ((uint32_t)data[2] << 16) | (data[3] << 8) | data[4];
  306. }
  307. void TMC4361A::driverIC_setMotorShaft(bool reverse) {
  308. //
  309. int32_t val = reverse ? 1 : 0;
  310. DRIVER_ID_FIELD_WRITE(TMC2160_GCONF, TMC2160_SHAFT_MASK, TMC2160_SHAFT_SHIFT, val);
  311. }
  312. uint32_t TMC4361A::driverIC_readICVersion() {
  313. int32_t value = driverIC_readInt(TMC2160_IOIN___OUTPUT);
  314. return (value & TMC2160_VERSION_MASK) >> TMC2160_VERSION_SHIFT;
  315. }
  316. void TMC4361A::driverIC_setIHOLD_IRUN(uint8_t ihold, uint8_t irun, uint16_t iholddelay) {
  317. driverIC_writeInt(TMC2160_IHOLD_IRUN, (iholddelay << TMC2160_IHOLDDELAY_SHIFT) | (irun << TMC2160_IRUN_SHIFT) | (ihold << TMC2160_IHOLD_SHIFT));
  318. }
  319. #endif
  320. #endif
  321. #endif