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  1. #include "plc_device.h"
  2. #include "plsr_core.h"
  3. #include "plsr_hal_f407.h"
  4. #include "plsr_job.h"
  5. #include "plsr_persistence.h"
  6. #include <stdio.h>
  7. #include <string.h>
  8. #define TEST_WORD_CAPACITY (3000U)
  9. #define TEST_S0_BASE (100U)
  10. #define TEST_S1_BASE (200U)
  11. typedef struct
  12. {
  13. uint16_t words[3][TEST_WORD_CAPACITY];
  14. } TEST_MEMORY;
  15. static int TestFailures;
  16. static int TestChecks;
  17. #define CHECK(condition) \
  18. do \
  19. { \
  20. TestChecks++; \
  21. if (!(condition)) \
  22. { \
  23. TestFailures++; \
  24. (void)printf("FAIL line %d: %s\n", __LINE__, #condition); \
  25. } \
  26. } while (0)
  27. static uint8_t TestValidateWords(void *context,
  28. PLSR_DEVICE_TYPE device,
  29. uint32_t firstAddress,
  30. uint32_t wordCount)
  31. {
  32. (void)context;
  33. (void)device;
  34. return (((uint64_t)firstAddress + wordCount) <= TEST_WORD_CAPACITY)
  35. ? 1U
  36. : 0U;
  37. }
  38. static uint8_t TestReadWord(void *context,
  39. PLSR_DEVICE_TYPE device,
  40. uint32_t address,
  41. uint16_t *value)
  42. {
  43. TEST_MEMORY *memory = (TEST_MEMORY *)context;
  44. if ((memory == NULL) || (value == NULL) || (device > PLSR_DEVICE_FD)
  45. || (address >= TEST_WORD_CAPACITY))
  46. {
  47. return 0U;
  48. }
  49. *value = memory->words[device][address];
  50. return 1U;
  51. }
  52. static uint8_t TestReadBit(void *context,
  53. PLSR_DEVICE_TYPE device,
  54. uint32_t address,
  55. uint8_t *value)
  56. {
  57. (void)context;
  58. (void)device;
  59. (void)address;
  60. *value = 0U;
  61. return 1U;
  62. }
  63. static void TestWriteDword(TEST_MEMORY *memory,
  64. PLSR_DEVICE_TYPE device,
  65. uint32_t address,
  66. int32_t value)
  67. {
  68. uint32_t raw = (uint32_t)value;
  69. memory->words[device][address] = (uint16_t)(raw & 0xFFFFUL);
  70. memory->words[device][address + 1UL] = (uint16_t)(raw >> 16U);
  71. }
  72. static void TestSetSegment(TEST_MEMORY *memory,
  73. uint16_t number,
  74. uint32_t frequency,
  75. int32_t pulses)
  76. {
  77. uint32_t base = TEST_S0_BASE + (uint32_t)number * 10UL;
  78. TestWriteDword(memory, PLSR_DEVICE_D, base, (int32_t)frequency);
  79. TestWriteDword(memory, PLSR_DEVICE_D, base + 2UL, pulses);
  80. memory->words[PLSR_DEVICE_D][base + 4UL] = 0U;
  81. TestWriteDword(memory, PLSR_DEVICE_D, base + 5UL, 0);
  82. memory->words[PLSR_DEVICE_D][base + 7UL] = 0U;
  83. TestWriteDword(memory, PLSR_DEVICE_D, base + 8UL, 0);
  84. }
  85. static void TestResetEnvironment(void)
  86. {
  87. PlsrPersistenceTestResetStorage();
  88. CHECK(PlcDeviceInit() == PLC_DEVICE_OK);
  89. CHECK(PlcDeviceWriteSfd(906U, 4) == PLC_DEVICE_OK);
  90. CHECK(PlsrInit() == PLSR_RESULT_OK);
  91. }
  92. static PLSR_CALL TestMakeCall(TEST_MEMORY *memory)
  93. {
  94. PLSR_CALL call;
  95. (void)memset(&call, 0, sizeof(call));
  96. call.sequence = 10UL;
  97. call.source.context = memory;
  98. call.source.validateWords = TestValidateWords;
  99. call.source.readWord = TestReadWord;
  100. call.source.readBit = TestReadBit;
  101. call.s0.device = PLSR_DEVICE_D;
  102. call.s0.address = TEST_S0_BASE;
  103. call.s1.device = PLSR_DEVICE_D;
  104. call.s1.address = TEST_S1_BASE;
  105. call.s2.type = PLSR_OPERAND_CONSTANT;
  106. call.s2.constant = 1;
  107. call.dAxis = 0U;
  108. call.outputModeOverride = PLSR_OUTPUT_MODE_FROM_SFD;
  109. return call;
  110. }
  111. static PLSR_STATUS TestGetStatus(void)
  112. {
  113. PLSR_STATUS status;
  114. (void)memset(&status, 0, sizeof(status));
  115. CHECK(PlsrGetStatus(0U, &status) == PLSR_RESULT_OK);
  116. return status;
  117. }
  118. /* ---- HAL 单测 ---- */
  119. static void TestMapping(void)
  120. {
  121. (void)PlsrHwInit();
  122. CHECK(PlsrHwGetTimerClockHz(0U) == 168000000UL);
  123. CHECK(PlsrHwGetTimerClockHz(1U) == 168000000UL);
  124. CHECK(PlsrHwGetTimerClockHz(2U) == 168000000UL);
  125. CHECK(PlsrHwGetTimerClockHz(3U) == 168000000UL);
  126. CHECK(PlsrHwGetTimerClockHz(4U) == 0UL);
  127. CHECK(PlsrHwResolveDirectionPoint(4U) != 0U);
  128. CHECK(PlsrHwResolveDirectionPoint(8U) == 0U);
  129. CHECK(PlsrHwResolveDirectionPoint(20U) != 0U);
  130. CHECK(PlsrHwResolveDirectionPoint(21U) == 0U);
  131. }
  132. static void TestDirDelaySequence(void)
  133. {
  134. (void)PlsrHwInit();
  135. PLSR_HW_START_PARAMS params;
  136. uint16_t psc;
  137. uint16_t arr;
  138. int ticks;
  139. (void)memset(&params, 0, sizeof(params));
  140. params.frequencyHz = 1000UL;
  141. params.targetPulses = 100;
  142. params.directionPoint = 4U;
  143. params.directionPositive = 1U;
  144. params.directionDelayMs = 10U;
  145. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_OK);
  146. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DIR_SETTLING);
  147. CHECK(PlsrHwTestGetDirLevel(0U) == 1U);
  148. CHECK(PlsrHwTestGetPwmEnabled(0U) == 0U);
  149. CHECK(PlsrHwIsPulseActive(0U) == 0U);
  150. for (ticks = 0; ticks < 9; ticks++)
  151. {
  152. PlsrHwTick(0U);
  153. }
  154. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DIR_SETTLING);
  155. PlsrHwTick(0U);
  156. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_PWM_PENDING);
  157. /* 首个非零频率启动 PWM,ARR/CCR 与分频计算一致。 */
  158. CHECK(PlsrHwSetFrequency(0U, 1000UL) == PLSR_RESULT_OK);
  159. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_RUNNING);
  160. CHECK(PlsrHwTestGetPwmEnabled(0U) == 1U);
  161. CHECK(PlsrHwIsPulseActive(0U) == 1U);
  162. CHECK(PlsrCalculateTimerDivider(168000000UL, 1000UL, &psc, &arr)
  163. == PLSR_RESULT_OK);
  164. CHECK(PlsrHwTestGetArr(0U) == arr);
  165. CHECK(PlsrHwTestGetPsc(0U) == psc);
  166. CHECK(PlsrHwTestGetCcr(0U) == arr / 2UL);
  167. /* PWM 模式 1(OC1M=110):复位后 CCMR1=0 冻结,无此配置输出恒定电平。 */
  168. CHECK((PlsrHwTestGetCcmr1(0U) & 0x70UL) == 0x60UL);
  169. /* ARR/CCR 预装载(ARPE=CR1 bit7,OC1PE=CCMR1 bit3):
  170. * 运行中调频不产生提前回绕,否则加速段多出 ~ln(f1/f0) 个假脉冲。 */
  171. CHECK((PlsrHwTestGetCr1(0U) & 0x80UL) == 0x80UL);
  172. CHECK((PlsrHwTestGetCcmr1(0U) & 0x08UL) == 0x08UL);
  173. /* 段间同向衔接:方向不变时跳过方向延时,直接进入 PWM 待启动。 */
  174. CHECK(PlsrHwStopPulse(0U) == PLSR_RESULT_OK);
  175. params.targetPulses = 50;
  176. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_OK);
  177. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_PWM_PENDING);
  178. CHECK(PlsrHwTestGetDirLevel(0U) == 1U);
  179. /* 反向时方向延时仍生效。 */
  180. params.directionPositive = 0U;
  181. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_OK);
  182. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DIR_SETTLING);
  183. CHECK(PlsrHwTestGetDirLevel(0U) == 0U);
  184. }
  185. static void TestZeroFrequencyWaits(void)
  186. {
  187. (void)PlsrHwInit();
  188. PLSR_HW_START_PARAMS params;
  189. (void)memset(&params, 0, sizeof(params));
  190. params.frequencyHz = 0UL;
  191. params.targetPulses = 50;
  192. params.directionPoint = PLSR_HW_DIR_POINT_NONE;
  193. params.directionPositive = 1U;
  194. params.directionDelayMs = 0U;
  195. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_OK);
  196. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_PWM_PENDING);
  197. PlsrHwTick(0U);
  198. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_PWM_PENDING);
  199. CHECK(PlsrHwTestGetPwmEnabled(0U) == 0U);
  200. /* 起始速度为 0:profile 升频后首个非零频率才启动 PWM。 */
  201. CHECK(PlsrHwSetFrequency(0U, 10UL) == PLSR_RESULT_OK);
  202. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_RUNNING);
  203. CHECK(PlsrHwTestGetPwmEnabled(0U) == 1U);
  204. }
  205. static void TestPulseCounting(void)
  206. {
  207. (void)PlsrHwInit();
  208. PLSR_HW_START_PARAMS params;
  209. int pulse;
  210. (void)memset(&params, 0, sizeof(params));
  211. params.frequencyHz = 1000UL;
  212. params.targetPulses = 5;
  213. params.directionPoint = PLSR_HW_DIR_POINT_NONE;
  214. params.directionPositive = 1U;
  215. params.directionDelayMs = 0U;
  216. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_OK);
  217. CHECK(PlsrHwSetFrequency(0U, 1000UL) == PLSR_RESULT_OK);
  218. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_RUNNING);
  219. for (pulse = 0; pulse < 4; pulse++)
  220. {
  221. PlsrHwTestTriggerUpdate(0U);
  222. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_RUNNING);
  223. }
  224. /* 第 5 个脉冲:到目标,停止 + 段完成事件。 */
  225. PlsrHwTestTriggerUpdate(0U);
  226. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DONE);
  227. CHECK(PlsrHwTestGetPwmEnabled(0U) == 0U);
  228. CHECK(PlsrHwIsPulseActive(0U) == 0U);
  229. /* 停止后再触发更新中断无动作。 */
  230. PlsrHwTestTriggerUpdate(0U);
  231. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DONE);
  232. }
  233. static void TestStopAndInvalidArgs(void)
  234. {
  235. (void)PlsrHwInit();
  236. PLSR_HW_START_PARAMS params;
  237. (void)memset(&params, 0, sizeof(params));
  238. params.frequencyHz = 1000UL;
  239. params.targetPulses = 100;
  240. params.directionPoint = PLSR_HW_DIR_POINT_NONE;
  241. params.directionPositive = 1U;
  242. params.directionDelayMs = 0U;
  243. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_OK);
  244. CHECK(PlsrHwSetFrequency(0U, 1000UL) == PLSR_RESULT_OK);
  245. CHECK(PlsrHwIsPulseActive(0U) == 1U);
  246. CHECK(PlsrHwStopPulse(0U) == PLSR_RESULT_OK);
  247. CHECK(PlsrHwIsPulseActive(0U) == 0U);
  248. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_IDLE);
  249. CHECK(PlsrHwTestGetPwmEnabled(0U) == 0U);
  250. CHECK(PlsrHwStartPulse(4U, &params) == PLSR_RESULT_INVALID_ARGUMENT);
  251. CHECK(PlsrHwStartPulse(0U, NULL) == PLSR_RESULT_INVALID_ARGUMENT);
  252. params.targetPulses = 0;
  253. CHECK(PlsrHwStartPulse(0U, &params) == PLSR_RESULT_INVALID_ARGUMENT);
  254. CHECK(PlsrHwSetFrequency(4U, 1000UL) == PLSR_RESULT_INVALID_ARGUMENT);
  255. CHECK(PlsrHwStopPulse(4U) == PLSR_RESULT_INVALID_ARGUMENT);
  256. }
  257. /* ---- 端到端集成:START → 硬件 → 计数 → 事件 → 段间 → 完成 ---- */
  258. static void TestEndToEndTwoSegments(void)
  259. {
  260. TEST_MEMORY memory;
  261. PLSR_CALL call;
  262. PLSR_STATUS status;
  263. int ticks;
  264. int pulse;
  265. TestResetEnvironment();
  266. (void)memset(&memory, 0, sizeof(memory));
  267. TestWriteDword(&memory, PLSR_DEVICE_D, TEST_S0_BASE, 2);
  268. TestSetSegment(&memory, 1U, 1000U, 100);
  269. TestSetSegment(&memory, 2U, 2000U, 200);
  270. call = TestMakeCall(&memory);
  271. CHECK(PlsrPostCall(&call) == PLSR_RESULT_QUEUED);
  272. PlsrProcess();
  273. status = TestGetStatus();
  274. CHECK(status.state == PLSR_STATE_ACCEL);
  275. CHECK(status.currentSegment == 1U);
  276. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DIR_SETTLING);
  277. /* DIR 延时 10ms → PWM 启动(段1 起始速度 0,profile 升频后启动)。 */
  278. for (ticks = 0; ticks < 10; ticks++)
  279. {
  280. PlsrProcess();
  281. }
  282. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_RUNNING);
  283. CHECK(PlsrHwTestGetPwmEnabled(0U) == 1U);
  284. /* 加速完成 → 状态机进入 RUN。 */
  285. for (ticks = 0; ticks < 500; ticks++)
  286. {
  287. PlsrProcess();
  288. if (TestGetStatus().state == PLSR_STATE_RUN)
  289. {
  290. break;
  291. }
  292. }
  293. status = TestGetStatus();
  294. CHECK(status.state == PLSR_STATE_RUN);
  295. CHECK(status.currentSegment == 1U);
  296. /* 段1 脉冲完成:100 次更新中断 → SEGMENT_COMPLETE → 段2 启动。 */
  297. for (pulse = 0; pulse < 100; pulse++)
  298. {
  299. PlsrHwTestTriggerUpdate(0U);
  300. }
  301. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_DONE);
  302. PlsrProcess();
  303. status = TestGetStatus();
  304. CHECK(status.state == PLSR_STATE_ACCEL);
  305. CHECK(status.currentSegment == 2U);
  306. /* 段2:DIR 延时 → PWM → 加速 → RUN。 */
  307. for (ticks = 0; ticks < 600; ticks++)
  308. {
  309. PlsrProcess();
  310. if (TestGetStatus().state == PLSR_STATE_RUN)
  311. {
  312. break;
  313. }
  314. }
  315. status = TestGetStatus();
  316. CHECK(status.state == PLSR_STATE_RUN);
  317. CHECK(status.currentSegment == 2U);
  318. /* 段2 脉冲完成 → 任务结束。 */
  319. for (pulse = 0; pulse < 200; pulse++)
  320. {
  321. PlsrHwTestTriggerUpdate(0U);
  322. }
  323. PlsrProcess();
  324. status = TestGetStatus();
  325. CHECK(status.state == PLSR_STATE_COMPLETED);
  326. CHECK(status.done != 0U);
  327. /* 终态转换后 HAL 回 IDLE(允许重新启动),脉冲已停止。 */
  328. CHECK(PlsrHwIsPulseActive(0U) == 0U);
  329. CHECK(PlsrHwTestGetPwmEnabled(0U) == 0U);
  330. }
  331. static void TestStopStopsHardware(void)
  332. {
  333. TEST_MEMORY memory;
  334. PLSR_CALL call;
  335. PLSR_COMMAND command;
  336. PLSR_STATUS status;
  337. int ticks;
  338. TestResetEnvironment();
  339. (void)memset(&memory, 0, sizeof(memory));
  340. TestWriteDword(&memory, PLSR_DEVICE_D, TEST_S0_BASE, 1);
  341. TestSetSegment(&memory, 1U, 1000U, 10000);
  342. call = TestMakeCall(&memory);
  343. call.sequence = 20UL;
  344. CHECK(PlsrPostCall(&call) == PLSR_RESULT_QUEUED);
  345. PlsrProcess();
  346. for (ticks = 0; ticks < 10; ticks++)
  347. {
  348. PlsrProcess();
  349. }
  350. CHECK(PlsrHwIsPulseActive(0U) == 1U);
  351. /* STOP_IMMEDIATE:硬件立即停止。 */
  352. command.sequence = 21UL;
  353. command.axis = 0U;
  354. command.opcode = PLSR_CMD_STOP_IMMEDIATE;
  355. command.argument = 0;
  356. CHECK(PlsrPostCommand(&command) == PLSR_RESULT_QUEUED);
  357. PlsrProcess();
  358. CHECK(PlsrHwIsPulseActive(0U) == 0U);
  359. CHECK(PlsrHwGetState(0U) == PLSR_HW_STATE_IDLE);
  360. CHECK(PlsrPostEvent(0U, PLSR_EVENT_STOP_IMMEDIATE_DONE)
  361. == PLSR_RESULT_OK);
  362. PlsrProcess();
  363. status = TestGetStatus();
  364. CHECK(status.state == PLSR_STATE_STOPPED);
  365. }
  366. int main(void)
  367. {
  368. TestMapping();
  369. TestDirDelaySequence();
  370. TestZeroFrequencyWaits();
  371. TestPulseCounting();
  372. TestStopAndInvalidArgs();
  373. TestEndToEndTwoSegments();
  374. TestStopStopsHardware();
  375. if (TestFailures != 0)
  376. {
  377. (void)printf("FAIL: %d of %d PLSR HAL checks failed\n",
  378. TestFailures,
  379. TestChecks);
  380. return 1;
  381. }
  382. (void)printf("PASS: %d PLSR HAL checks\n", TestChecks);
  383. return 0;
  384. }