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  1. #include "zcanreceiver_master.hpp"
  2. #include "project_configs.h"
  3. #include "sdk\components\zprotocols\errorcode\errorcode.hpp"
  4. #ifdef HAL_CAN_MODULE_ENABLED
  5. #include <stdio.h>
  6. #include <stdlib.h>
  7. #include <string.h>
  8. using namespace iflytop;
  9. using namespace zcr;
  10. #define TAG "ZCanCommnaderMaster"
  11. #define OVER_TIME_MS 5
  12. #define MASK_32BIT(off) (0x01 << (off))
  13. ZCanCommnaderMaster::CFG *ZCanCommnaderMaster::createCFG() {
  14. CFG *cfg = new CFG();
  15. ZASSERT(cfg != NULL);
  16. cfg->deviceId = 1;
  17. #ifdef STM32F103xB
  18. cfg->canHandle = &hcan;
  19. #else
  20. cfg->canHandle = &hcan1;
  21. #endif
  22. cfg->canFilterIndex0 = 0;
  23. cfg->maxFilterNum = 7;
  24. cfg->rxfifoNum = CAN_RX_FIFO0;
  25. return cfg;
  26. }
  27. void ZCanCommnaderMaster::init(CFG *cfg) {
  28. HAL_StatusTypeDef hal_status;
  29. m_config = cfg;
  30. m_on_packet_map_lock.init();
  31. txlock.init();
  32. /**
  33. * @brief ʼCAN
  34. */
  35. /**
  36. * @brief ʼϢbuf
  37. */
  38. m_canPacketRxBuffer[0].dataIsReady = false;
  39. m_canPacketRxBuffer[0].id = 1; // ֻ����������������Ϣ
  40. m_canPacketRxBuffer[0].m_canPacketNum = 0;
  41. /**
  42. * @brief ʼ
  43. */
  44. hal_status = initializeFilter();
  45. if (hal_status != HAL_OK) {
  46. ZLOGE(TAG, "start can initializeFilter fail\r\n");
  47. return;
  48. }
  49. /**
  50. * @brief CAN
  51. */
  52. hal_status = HAL_CAN_Start(m_config->canHandle); // ����CAN
  53. if (hal_status != HAL_OK) {
  54. ZLOGE(TAG, "start can fail\r\n");
  55. return;
  56. }
  57. /**
  58. * @brief ص
  59. */
  60. ZCanIRQDispatcher::instance().regListener(this);
  61. HAL_StatusTypeDef status = activateRxIT();
  62. if (status != HAL_OK) {
  63. ZLOGE(TAG, "activateRxIT fail\r\n");
  64. return;
  65. }
  66. m_loopThread.init("ZCanCommnaderMaster", 1024, osPriorityAboveNormal);
  67. m_loopThread.start([this]() {
  68. while (true) {
  69. loop();
  70. osDelay(1);
  71. }
  72. });
  73. }
  74. HAL_StatusTypeDef ZCanCommnaderMaster::initializeFilter() {
  75. /**
  76. * @brief ID֡ʽ
  77. * [ 27:0 ]
  78. * [ STDID ] [ EXTID ]
  79. * [11 :9] [8:6] [5:0] [17:16] [15:8] [7:0]
  80. * ȼ ֡ ĿID ԴID
  81. */
  82. HAL_StatusTypeDef HAL_Status;
  83. CAN_FilterTypeDef sFilterConfig;
  84. uint32_t filterId;
  85. uint32_t mask;
  86. memset(&sFilterConfig, 0, sizeof(sFilterConfig));
  87. sFilterConfig.FilterMode = CAN_FILTERMODE_IDMASK; // ��ΪMASKģʽ
  88. sFilterConfig.FilterScale = CAN_FILTERSCALE_32BIT; // CAN_FILTERSCALE_16BIT
  89. sFilterConfig.FilterFIFOAssignment = m_config->rxfifoNum; // ������������rxfifoNum
  90. sFilterConfig.FilterActivation = ENABLE; // ����������
  91. sFilterConfig.SlaveStartFilterBank = m_config->maxFilterNum; // slave filter start index
  92. /*******************************************************************************
  93. * Ϣ *
  94. *******************************************************************************/
  95. filterId = (0); //
  96. mask = (0); //
  97. sFilterConfig.FilterBank = m_config->canFilterIndex0; //
  98. sFilterConfig.FilterMaskIdLow = mask & 0xffff; //
  99. sFilterConfig.FilterMaskIdHigh = (mask & 0xffff0000) >> 16; //
  100. sFilterConfig.FilterIdLow = filterId & 0xffff; //
  101. sFilterConfig.FilterIdHigh = (filterId & 0xffff0000) >> 16; //
  102. HAL_Status = HAL_CAN_ConfigFilter(m_config->canHandle, &sFilterConfig);
  103. if (HAL_Status != HAL_OK) {
  104. ZLOGE(TAG, "HAL_CAN_ConfigFilter filter0 fail");
  105. return HAL_Status;
  106. }
  107. ZLOGI(TAG, "HAL_CAN_ConfigFilter filterID1 %08x", filterId >> 3);
  108. return HAL_Status;
  109. }
  110. int32_t ZCanCommnaderMaster::sendCmd(int32_t cmdid, int32_t submoduleid, int32_t *param, size_t npara, int32_t *ack, size_t nack, int overtime_ms) {
  111. zcr_cmd_header_t *cmdheader = (zcr_cmd_header_t *)txbuff;
  112. cmdheader->packetType = kptv2_cmd;
  113. cmdheader->packetindex = generateFreeIndex();
  114. cmdheader->cmdmoduleid = MODULE_CMDID(cmdid);
  115. cmdheader->subcmdid = SUBCMDID(cmdid);
  116. cmdheader->submoduleid = submoduleid;
  117. // ZLOGI(TAG, "sendCmd %d %d %d %d", cmdheader->packetindex, cmdheader->cmdmoduleid, cmdheader->subcmdid, cmdheader->submoduleid);
  118. int32_t *sendparam = (int32_t *)cmdheader->data;
  119. for (size_t i = 0; i < npara; i++) {
  120. sendparam[i] = param[i];
  121. }
  122. int32_t txlen = sizeof(zcr_cmd_header_t) + npara * sizeof(int32_t);
  123. /**
  124. * @brief ע
  125. */
  126. bool rxdataIsReady = false;
  127. int32_t errocode = 0;
  128. regListener(cmdheader->packetindex, [this, &rxdataIsReady, &ack, &nack, &errocode](CanPacketRxBuffer *report) {
  129. // ZLOGI(TAG, "....................................");
  130. if (report->get_cmdheader()->packetType == kptv2_error_ack) {
  131. auto *error_ack = report->get_data_as<int32_t>();
  132. errocode = *error_ack;
  133. // ZLOGI(TAG, "error_ack %d %s", *error_ack, err::error2str(*error_ack));
  134. } else {
  135. // ZLOGI(TAG, "%d %d", report->get_datalen(), nack);
  136. int32_t *rxbuf = report->get_data_as<int32_t>();
  137. if (ack != nullptr && nack != 0) {
  138. for (size_t i = 0; i < nack; i++) {
  139. // ZLOGI(TAG, "ack[%d] = %d", i, rxbuf[i]);
  140. ack[i] = rxbuf[i];
  141. }
  142. }
  143. }
  144. rxdataIsReady = true;
  145. });
  146. /**
  147. * @brief Ϣ
  148. */
  149. sendPacket(txbuff, txlen);
  150. /**
  151. * @brief ȴִ
  152. */
  153. uint32_t enterticket = zos_get_tick();
  154. while (!rxdataIsReady) {
  155. if (zos_haspassedms(enterticket) > (uint32_t)overtime_ms) {
  156. ZLOGE(TAG, "sendPacketBlock timeout");
  157. unregListener(cmdheader->packetindex);
  158. return err::kovertime;
  159. }
  160. osDelay(1);
  161. }
  162. unregListener(cmdheader->packetindex);
  163. return errocode;
  164. }
  165. void ZCanCommnaderMaster::regListener(uint16_t index, zcan_commnader_master_onpacket_t onack) {
  166. zlock_guard l(m_on_packet_map_lock);
  167. if (m_on_packet_map.size() > 10000) {
  168. ZLOGW(TAG, "m_on_packet_map.size() = %d>10000", m_on_packet_map.size());
  169. }
  170. ZCanCommnaderMasterListener listener;
  171. listener.on_ack = onack;
  172. m_on_packet_map[index] = listener;
  173. }
  174. void ZCanCommnaderMaster::unregListener(uint16_t index) {
  175. zlock_guard l(m_on_packet_map_lock);
  176. auto it = m_on_packet_map.find(index);
  177. if (it != m_on_packet_map.end()) {
  178. m_on_packet_map.erase(it);
  179. }
  180. }
  181. int ZCanCommnaderMaster::getListenerNum() {
  182. zlock_guard l(m_on_packet_map_lock);
  183. return m_on_packet_map.size();
  184. }
  185. bool ZCanCommnaderMaster::isListenerReg(uint16_t index) {
  186. zlock_guard l(m_on_packet_map_lock);
  187. auto it = m_on_packet_map.find(index);
  188. if (it != m_on_packet_map.end()) {
  189. return true;
  190. }
  191. return false;
  192. }
  193. void ZCanCommnaderMaster::callListener(CanPacketRxBuffer *report) {
  194. uint16_t index = report->get_cmdheader()->packetindex;
  195. {
  196. zlock_guard l(m_on_packet_map_lock);
  197. auto it = m_on_packet_map.find(index);
  198. if (it != m_on_packet_map.end()) {
  199. if (report->get_cmdheader()->packetType == kptv2_ack || report->get_cmdheader()->packetType == kptv2_error_ack) {
  200. if (it->second.on_ack) it->second.on_ack(report);
  201. }
  202. }
  203. }
  204. }
  205. uint16_t ZCanCommnaderMaster::generateFreeIndex() {
  206. m_index_off++;
  207. uint16_t count = 0;
  208. if (m_index_off == 0) m_index_off = 1;
  209. while (isListenerReg(m_index_off)) {
  210. m_index_off++;
  211. if (m_index_off == 0) m_index_off = 1;
  212. count++;
  213. if (count == 0) {
  214. ZLOGE(TAG, "generateFreeIndex fail");
  215. NVIC_SystemReset();
  216. }
  217. }
  218. return m_index_off;
  219. }
  220. void ZCanCommnaderMaster::sendPacket(uint8_t *packet, size_t len) {
  221. zlock_guard txlock_guard(txlock);
  222. /**
  223. * @brief
  224. */
  225. int npacket = len / 8 + (len % 8 == 0 ? 0 : 1);
  226. if (npacket > 255) {
  227. ZLOGE(TAG, "sendPacket fail, len:%d", len);
  228. return;
  229. }
  230. int finalpacketlen = len % 8 == 0 ? 8 : len % 8;
  231. for (uint8_t i = 0; i < npacket; i++) {
  232. bool suc = false;
  233. if (i == npacket - 1) {
  234. suc = sendPacketSub(npacket, i, packet + i * 8, finalpacketlen, OVER_TIME_MS);
  235. } else {
  236. suc = sendPacketSub(npacket, i, packet + i * 8, 8, OVER_TIME_MS);
  237. }
  238. if (!suc) {
  239. ZLOGE(TAG, "sendPacket fail, packet(%d:%d)", npacket, i);
  240. return;
  241. }
  242. }
  243. }
  244. bool ZCanCommnaderMaster::sendPacketSub(int npacket, int packetIndex, uint8_t *packet, size_t len, int overtimems) {
  245. // ZLOGI(TAG, "sendPacketSub(%d:%d)", npacket, packetIndex);
  246. CAN_TxHeaderTypeDef pHeader;
  247. uint8_t aData[8] /*8byte table*/;
  248. uint32_t txMailBox = 0;
  249. uint32_t enterticket = zos_get_tick();
  250. memset(&pHeader, 0, sizeof(pHeader));
  251. memset(aData, 0, sizeof(aData));
  252. pHeader.StdId = 0x00;
  253. pHeader.ExtId = (m_config->deviceId << 16) | (npacket << 8) | packetIndex;
  254. pHeader.IDE = CAN_ID_EXT;
  255. pHeader.RTR = CAN_RTR_DATA;
  256. pHeader.DLC = len;
  257. pHeader.TransmitGlobalTime = DISABLE;
  258. memcpy(aData, packet, len);
  259. m_lastTransmitStatus = HAL_CAN_AddTxMessage(m_config->canHandle, &pHeader, aData, &txMailBox);
  260. if (m_lastTransmitStatus != HAL_OK) {
  261. ZLOGE(TAG, "HAL_CAN_AddTxMessage fail");
  262. return false;
  263. }
  264. while (HAL_CAN_IsTxMessagePending(m_config->canHandle, txMailBox)) {
  265. if (zos_haspassedms(enterticket) > (uint32_t)overtimems) {
  266. m_lastTransmitStatus = HAL_TIMEOUT;
  267. HAL_CAN_AbortTxRequest(m_config->canHandle, txMailBox);
  268. return false;
  269. }
  270. // m_os->sleepMS(1);
  271. }
  272. if (txPacketInterval_ms > 0) {
  273. osDelay(txPacketInterval_ms);
  274. }
  275. return true;
  276. }
  277. bool ZCanCommnaderMaster::getRxMessage(CAN_RxHeaderTypeDef *pHeader, uint8_t aData[] /*8byte table*/) {
  278. /**
  279. * @brief ȡǰFIFOл˶֡
  280. */
  281. uint32_t level = HAL_CAN_GetRxFifoFillLevel(m_config->canHandle, m_config->rxfifoNum);
  282. if (level == 0) {
  283. return false;
  284. }
  285. HAL_StatusTypeDef HAL_RetVal;
  286. HAL_RetVal = HAL_CAN_GetRxMessage(m_config->canHandle, m_config->rxfifoNum, pHeader, aData);
  287. if (HAL_OK == HAL_RetVal) {
  288. // �������յ���can��������
  289. return true;
  290. }
  291. return false;
  292. }
  293. void ZCanCommnaderMaster::initCanPacketRxBuffer(CanPacketRxBuffer *buf, uint16_t id) {
  294. memset(buf, 0, sizeof(CanPacketRxBuffer));
  295. buf->id = id;
  296. }
  297. CanPacketRxBuffer *ZCanCommnaderMaster::allocCanPacketRxBufferInIRQ(uint16_t id) {
  298. for (size_t i = 0; i < CAN_PACKET_RX_BUFFER_NUM; i++) {
  299. if (m_canPacketRxBuffer[i].isUsed && m_canPacketRxBuffer[i].id == id) {
  300. // ˵����ǰid�Ļ����Ѿ����ڣ������ڶ������������ռ���
  301. if (!m_canPacketRxBuffer[i].dataIsReady) {
  302. initCanPacketRxBuffer(&m_canPacketRxBuffer[i], id);
  303. m_canPacketRxBuffer[i].isUsed = true;
  304. return &m_canPacketRxBuffer[i];
  305. }
  306. }
  307. }
  308. for (size_t i = 0; i < CAN_PACKET_RX_BUFFER_NUM; i++) {
  309. if (!m_canPacketRxBuffer[i].isUsed) {
  310. initCanPacketRxBuffer(&m_canPacketRxBuffer[i], id);
  311. m_canPacketRxBuffer[i].isUsed = true;
  312. return &m_canPacketRxBuffer[i];
  313. }
  314. }
  315. return nullptr;
  316. }
  317. CanPacketRxBuffer *ZCanCommnaderMaster::findCanPacketRxBufferInIRQ(uint16_t id) {
  318. for (size_t i = 0; i < CAN_PACKET_RX_BUFFER_NUM; i++) {
  319. if (!m_canPacketRxBuffer[i].dataIsReady && m_canPacketRxBuffer[i].isUsed && m_canPacketRxBuffer[i].id == id) {
  320. return &m_canPacketRxBuffer[i];
  321. }
  322. }
  323. return nullptr;
  324. }
  325. void ZCanCommnaderMaster::freeCanPacketRxBuffer(uint16_t id) {
  326. for (size_t i = 0; i < CAN_PACKET_RX_BUFFER_NUM; i++) {
  327. if (m_canPacketRxBuffer[i].isUsed && m_canPacketRxBuffer[i].id == id) {
  328. m_canPacketRxBuffer[i].isUsed = false;
  329. return;
  330. }
  331. }
  332. }
  333. void ZCanCommnaderMaster::STM32_HAL_onCAN_RxFifo0MsgPending(CAN_HandleTypeDef *canHandle) {
  334. /**
  335. * @brief ж
  336. */
  337. // ZLOG_INFO("%s\n", __FUNCTION__);
  338. // printf("------------------%s\n", __FUNCTION__);
  339. if (canHandle != m_config->canHandle) {
  340. return;
  341. }
  342. /**
  343. * @brief canյϢ
  344. */
  345. CAN_RxHeaderTypeDef pHeader;
  346. uint8_t aData[8] /*8byte table*/;
  347. while (getRxMessage(&pHeader, aData)) {
  348. /**
  349. * @brief Ϣʽ
  350. *
  351. * [2] [3bit] [8bit] [8bit] [8bit]
  352. * , from frameNum frameId
  353. */
  354. uint8_t from = (pHeader.ExtId >> 16 & 0xFF);
  355. uint8_t nframe = (pHeader.ExtId & 0xFF00) >> 8;
  356. uint8_t frameId = (pHeader.ExtId & 0x00FF);
  357. CanPacketRxBuffer *rxbuf = nullptr;
  358. if (frameId == 0) {
  359. rxbuf = allocCanPacketRxBufferInIRQ(from);
  360. rxbuf->m_npacket = nframe;
  361. } else {
  362. rxbuf = findCanPacketRxBufferInIRQ(from);
  363. }
  364. if (!rxbuf) return;
  365. if (rxbuf->m_canPacketNum < ZARRAY_SIZE(rxbuf->m_canPacket)) {
  366. rxbuf->m_canPacket[rxbuf->m_canPacketNum].pHeader = pHeader;
  367. memcpy(rxbuf->m_canPacket[rxbuf->m_canPacketNum].aData, aData, 8);
  368. rxbuf->m_canPacketNum++;
  369. }
  370. /**
  371. * @brief
  372. */
  373. if (nframe == frameId + 1) {
  374. rxbuf->dataIsReady = true;
  375. if ((rxbuf->m_canPacketNum) != rxbuf->m_npacket) rxbuf->lostpacket = true;
  376. }
  377. }
  378. // deactivateRxIT();
  379. }
  380. void ZCanCommnaderMaster::STM32_HAL_onCAN_Error(CAN_HandleTypeDef *canHandle) {
  381. if (canHandle != m_config->canHandle) {
  382. return;
  383. }
  384. ZLOGE(TAG, "onCAN_Error\r\n");
  385. }
  386. void ZCanCommnaderMaster::processReadyPacket(CanPacketRxBuffer *rxbuf) {
  387. int dataoff = 0;
  388. for (size_t i = 0; i < rxbuf->m_canPacketNum; i++) {
  389. memcpy(rxbuf->rxdata + dataoff, rxbuf->m_canPacket[i].aData, rxbuf->m_canPacket[i].pHeader.DLC);
  390. dataoff += rxbuf->m_canPacket[i].pHeader.DLC;
  391. rxbuf->rxdataSize = dataoff;
  392. }
  393. if (rxbuf->lostpacket) {
  394. ZLOGE(TAG, "lostpacket %d %d", rxbuf->m_canPacketNum, rxbuf->m_npacket);
  395. } else {
  396. callListener(rxbuf);
  397. }
  398. rxbuf->dataIsReady = false;
  399. }
  400. void ZCanCommnaderMaster::loop() {
  401. /**
  402. * @brief MainLoop
  403. */
  404. for (size_t i = 0; i < CAN_PACKET_RX_BUFFER_NUM; i++) {
  405. if (m_canPacketRxBuffer[i].isUsed && m_canPacketRxBuffer[i].dataIsReady) {
  406. processReadyPacket(&m_canPacketRxBuffer[i]);
  407. }
  408. }
  409. }
  410. HAL_StatusTypeDef ZCanCommnaderMaster::activateRxIT() {
  411. HAL_StatusTypeDef hal_status = HAL_ERROR;
  412. if (m_config->rxfifoNum == CAN_RX_FIFO0) {
  413. hal_status = HAL_CAN_ActivateNotification(m_config->canHandle, CAN_IT_RX_FIFO0_MSG_PENDING);
  414. } else if (m_config->rxfifoNum == CAN_RX_FIFO1) {
  415. hal_status = HAL_CAN_ActivateNotification(m_config->canHandle, CAN_IT_RX_FIFO1_MSG_PENDING);
  416. } else {
  417. ZLOGE(TAG, "start can HAL_CAN_ActivateNotification CAN_IT_RX_FIFO0_MSG_PENDING fail\r\n");
  418. return hal_status;
  419. }
  420. return hal_status;
  421. }
  422. HAL_StatusTypeDef ZCanCommnaderMaster::deactivateRxIT() {
  423. HAL_StatusTypeDef hal_status = HAL_ERROR;
  424. if (m_config->rxfifoNum == CAN_RX_FIFO0) {
  425. hal_status = HAL_CAN_DeactivateNotification(m_config->canHandle, CAN_IT_RX_FIFO0_MSG_PENDING);
  426. } else if (m_config->rxfifoNum == CAN_RX_FIFO1) {
  427. hal_status = HAL_CAN_DeactivateNotification(m_config->canHandle, CAN_IT_RX_FIFO1_MSG_PENDING);
  428. } else {
  429. ZLOGE(TAG, "start can HAL_CAN_ActivateNotification CAN_IT_RX_FIFO0_MSG_PENDING fail\r\n");
  430. return hal_status;
  431. }
  432. return hal_status;
  433. }
  434. size_t ZCanCommnaderMaster::safe_memcpy(void *dst, size_t dst_max_size, void *src, size_t src_len) { //
  435. size_t cpysize = dst_max_size < src_len ? dst_max_size : src_len;
  436. memcpy(dst, src, cpysize);
  437. return cpysize;
  438. }
  439. #endif