infrared_worker.c 22 KB

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  1. #include <core/check.h>
  2. #include <core/common_defines.h>
  3. #include "sys/_stdint.h"
  4. #include "infrared_worker.h"
  5. #include <infrared.h>
  6. #include <furi_hal_infrared.h>
  7. #include <limits.h>
  8. #include <stdint.h>
  9. #include <furi.h>
  10. #include <notification/notification_messages.h>
  11. #define INFRARED_WORKER_RX_TIMEOUT INFRARED_RAW_RX_TIMING_DELAY_US
  12. #define INFRARED_WORKER_RX_RECEIVED 0x01
  13. #define INFRARED_WORKER_RX_TIMEOUT_RECEIVED 0x02
  14. #define INFRARED_WORKER_OVERRUN 0x04
  15. #define INFRARED_WORKER_EXIT 0x08
  16. #define INFRARED_WORKER_TX_FILL_BUFFER 0x10
  17. #define INFRARED_WORKER_TX_MESSAGE_SENT 0x20
  18. #define INFRARED_WORKER_ALL_RX_EVENTS \
  19. (INFRARED_WORKER_RX_RECEIVED | INFRARED_WORKER_RX_TIMEOUT_RECEIVED | \
  20. INFRARED_WORKER_OVERRUN | INFRARED_WORKER_EXIT)
  21. #define INFRARED_WORKER_ALL_TX_EVENTS \
  22. (INFRARED_WORKER_TX_FILL_BUFFER | INFRARED_WORKER_TX_MESSAGE_SENT | INFRARED_WORKER_EXIT)
  23. #define INFRARED_WORKER_ALL_EVENTS (INFRARED_WORKER_ALL_RX_EVENTS | INFRARED_WORKER_ALL_TX_EVENTS)
  24. typedef enum {
  25. InfraredWorkerStateIdle,
  26. InfraredWorkerStateRunRx,
  27. InfraredWorkerStateRunTx,
  28. InfraredWorkerStateWaitTxEnd,
  29. InfraredWorkerStateStopTx,
  30. InfraredWorkerStateStartTx,
  31. } InfraredWorkerState;
  32. struct InfraredWorkerSignal {
  33. bool decoded;
  34. size_t timings_cnt;
  35. union {
  36. InfraredMessage message;
  37. /* +1 is for pause we add at the beginning */
  38. uint32_t timings[MAX_TIMINGS_AMOUNT + 1];
  39. };
  40. };
  41. struct InfraredWorker {
  42. FuriThread* thread;
  43. FuriStreamBuffer* stream;
  44. InfraredWorkerSignal signal;
  45. InfraredWorkerState state;
  46. InfraredEncoderHandler* infrared_encoder;
  47. InfraredDecoderHandler* infrared_decoder;
  48. NotificationApp* notification;
  49. bool blink_enable;
  50. bool decode_enable;
  51. union {
  52. struct {
  53. InfraredWorkerGetSignalCallback get_signal_callback;
  54. InfraredWorkerMessageSentCallback message_sent_callback;
  55. void* get_signal_context;
  56. void* message_sent_context;
  57. uint32_t frequency;
  58. float duty_cycle;
  59. uint32_t tx_raw_cnt;
  60. bool need_reinitialization;
  61. bool steady_signal_sent;
  62. } tx;
  63. struct {
  64. InfraredWorkerReceivedSignalCallback received_signal_callback;
  65. void* received_signal_context;
  66. bool overrun;
  67. } rx;
  68. };
  69. };
  70. typedef struct {
  71. uint32_t duration;
  72. bool level;
  73. FuriHalInfraredTxGetDataState state;
  74. } InfraredWorkerTiming;
  75. static int32_t infrared_worker_tx_thread(void* context);
  76. static FuriHalInfraredTxGetDataState
  77. infrared_worker_furi_hal_data_isr_callback(void* context, uint32_t* duration, bool* level);
  78. static void infrared_worker_furi_hal_message_sent_isr_callback(void* context);
  79. static void infrared_worker_rx_timeout_callback(void* context) {
  80. InfraredWorker* instance = context;
  81. uint32_t flags_set = furi_thread_flags_set(
  82. furi_thread_get_id(instance->thread), INFRARED_WORKER_RX_TIMEOUT_RECEIVED);
  83. furi_check(flags_set & INFRARED_WORKER_RX_TIMEOUT_RECEIVED);
  84. }
  85. static void infrared_worker_rx_callback(void* context, bool level, uint32_t duration) {
  86. InfraredWorker* instance = context;
  87. furi_assert(duration != 0);
  88. LevelDuration level_duration = level_duration_make(level, duration);
  89. size_t ret =
  90. furi_stream_buffer_send(instance->stream, &level_duration, sizeof(LevelDuration), 0);
  91. uint32_t events = (ret == sizeof(LevelDuration)) ? INFRARED_WORKER_RX_RECEIVED :
  92. INFRARED_WORKER_OVERRUN;
  93. uint32_t flags_set = furi_thread_flags_set(furi_thread_get_id(instance->thread), events);
  94. furi_check(flags_set & events);
  95. }
  96. static void infrared_worker_process_timeout(InfraredWorker* instance) {
  97. if(instance->signal.timings_cnt < 2) return;
  98. const InfraredMessage* message_decoded =
  99. infrared_check_decoder_ready(instance->infrared_decoder);
  100. if(message_decoded) {
  101. instance->signal.message = *message_decoded;
  102. instance->signal.timings_cnt = 0;
  103. instance->signal.decoded = true;
  104. } else {
  105. instance->signal.decoded = false;
  106. }
  107. if(instance->rx.received_signal_callback)
  108. instance->rx.received_signal_callback(
  109. instance->rx.received_signal_context, &instance->signal);
  110. }
  111. static void
  112. infrared_worker_process_timings(InfraredWorker* instance, uint32_t duration, bool level) {
  113. const InfraredMessage* message_decoded =
  114. instance->decode_enable ? infrared_decode(instance->infrared_decoder, level, duration) :
  115. NULL;
  116. if(message_decoded) {
  117. instance->signal.message = *message_decoded;
  118. instance->signal.timings_cnt = 0;
  119. instance->signal.decoded = true;
  120. if(instance->rx.received_signal_callback)
  121. instance->rx.received_signal_callback(
  122. instance->rx.received_signal_context, &instance->signal);
  123. } else {
  124. /* Skip first timing if it starts from Space */
  125. if((instance->signal.timings_cnt == 0) && !level) {
  126. return;
  127. }
  128. if(instance->signal.timings_cnt < MAX_TIMINGS_AMOUNT) {
  129. instance->signal.timings[instance->signal.timings_cnt] = duration;
  130. ++instance->signal.timings_cnt;
  131. } else {
  132. uint32_t flags_set = furi_thread_flags_set(
  133. furi_thread_get_id(instance->thread), INFRARED_WORKER_OVERRUN);
  134. furi_check(flags_set & INFRARED_WORKER_OVERRUN);
  135. instance->rx.overrun = true;
  136. }
  137. }
  138. }
  139. static int32_t infrared_worker_rx_thread(void* thread_context) {
  140. InfraredWorker* instance = thread_context;
  141. uint32_t events = 0;
  142. LevelDuration level_duration;
  143. TickType_t last_blink_time = 0;
  144. while(1) {
  145. events = furi_thread_flags_wait(INFRARED_WORKER_ALL_RX_EVENTS, 0, FuriWaitForever);
  146. furi_check(events & INFRARED_WORKER_ALL_RX_EVENTS); /* at least one caught */
  147. if(events & INFRARED_WORKER_RX_RECEIVED) {
  148. if(!instance->rx.overrun && instance->blink_enable &&
  149. ((xTaskGetTickCount() - last_blink_time) > 80)) {
  150. last_blink_time = xTaskGetTickCount();
  151. notification_message(instance->notification, &sequence_blink_blue_10);
  152. }
  153. if(instance->signal.timings_cnt == 0)
  154. notification_message(instance->notification, &sequence_display_backlight_on);
  155. while(sizeof(LevelDuration) ==
  156. furi_stream_buffer_receive(
  157. instance->stream, &level_duration, sizeof(LevelDuration), 0)) {
  158. if(!instance->rx.overrun) {
  159. bool level = level_duration_get_level(level_duration);
  160. uint32_t duration = level_duration_get_duration(level_duration);
  161. infrared_worker_process_timings(instance, duration, level);
  162. }
  163. }
  164. }
  165. if(events & INFRARED_WORKER_OVERRUN) {
  166. printf("#");
  167. infrared_reset_decoder(instance->infrared_decoder);
  168. instance->signal.timings_cnt = 0;
  169. if(instance->blink_enable)
  170. notification_message(instance->notification, &sequence_set_red_255);
  171. }
  172. if(events & INFRARED_WORKER_RX_TIMEOUT_RECEIVED) {
  173. if(instance->rx.overrun) {
  174. printf("\nOVERRUN, max samples: %d\n", MAX_TIMINGS_AMOUNT);
  175. instance->rx.overrun = false;
  176. if(instance->blink_enable)
  177. notification_message(instance->notification, &sequence_reset_red);
  178. } else {
  179. infrared_worker_process_timeout(instance);
  180. }
  181. instance->signal.timings_cnt = 0;
  182. }
  183. if(events & INFRARED_WORKER_EXIT) break;
  184. }
  185. return 0;
  186. }
  187. void infrared_worker_rx_set_received_signal_callback(
  188. InfraredWorker* instance,
  189. InfraredWorkerReceivedSignalCallback callback,
  190. void* context) {
  191. furi_assert(instance);
  192. instance->rx.received_signal_callback = callback;
  193. instance->rx.received_signal_context = context;
  194. }
  195. InfraredWorker* infrared_worker_alloc() {
  196. InfraredWorker* instance = malloc(sizeof(InfraredWorker));
  197. instance->thread = furi_thread_alloc();
  198. furi_thread_set_name(instance->thread, "InfraredWorker");
  199. furi_thread_set_stack_size(instance->thread, 2048);
  200. furi_thread_set_context(instance->thread, instance);
  201. size_t buffer_size =
  202. MAX(sizeof(InfraredWorkerTiming) * (MAX_TIMINGS_AMOUNT + 1),
  203. sizeof(LevelDuration) * MAX_TIMINGS_AMOUNT);
  204. instance->stream = furi_stream_buffer_alloc(buffer_size, sizeof(InfraredWorkerTiming));
  205. instance->infrared_decoder = infrared_alloc_decoder();
  206. instance->infrared_encoder = infrared_alloc_encoder();
  207. instance->blink_enable = false;
  208. instance->decode_enable = true;
  209. instance->notification = furi_record_open(RECORD_NOTIFICATION);
  210. instance->state = InfraredWorkerStateIdle;
  211. return instance;
  212. }
  213. void infrared_worker_free(InfraredWorker* instance) {
  214. furi_assert(instance);
  215. furi_assert(instance->state == InfraredWorkerStateIdle);
  216. furi_record_close(RECORD_NOTIFICATION);
  217. infrared_free_decoder(instance->infrared_decoder);
  218. infrared_free_encoder(instance->infrared_encoder);
  219. furi_stream_buffer_free(instance->stream);
  220. furi_thread_free(instance->thread);
  221. free(instance);
  222. }
  223. void infrared_worker_rx_start(InfraredWorker* instance) {
  224. furi_assert(instance);
  225. furi_assert(instance->state == InfraredWorkerStateIdle);
  226. furi_stream_set_trigger_level(instance->stream, sizeof(LevelDuration));
  227. furi_thread_set_callback(instance->thread, infrared_worker_rx_thread);
  228. furi_thread_start(instance->thread);
  229. furi_hal_infrared_async_rx_set_capture_isr_callback(infrared_worker_rx_callback, instance);
  230. furi_hal_infrared_async_rx_set_timeout_isr_callback(
  231. infrared_worker_rx_timeout_callback, instance);
  232. furi_hal_infrared_async_rx_start();
  233. furi_hal_infrared_async_rx_set_timeout(INFRARED_WORKER_RX_TIMEOUT);
  234. instance->rx.overrun = false;
  235. instance->state = InfraredWorkerStateRunRx;
  236. }
  237. void infrared_worker_rx_stop(InfraredWorker* instance) {
  238. furi_assert(instance);
  239. furi_assert(instance->state == InfraredWorkerStateRunRx);
  240. furi_hal_infrared_async_rx_set_timeout_isr_callback(NULL, NULL);
  241. furi_hal_infrared_async_rx_set_capture_isr_callback(NULL, NULL);
  242. furi_hal_infrared_async_rx_stop();
  243. furi_thread_flags_set(furi_thread_get_id(instance->thread), INFRARED_WORKER_EXIT);
  244. furi_thread_join(instance->thread);
  245. FuriStatus status = furi_stream_buffer_reset(instance->stream);
  246. furi_assert(status == FuriStatusOk);
  247. (void)status;
  248. instance->state = InfraredWorkerStateIdle;
  249. }
  250. bool infrared_worker_signal_is_decoded(const InfraredWorkerSignal* signal) {
  251. furi_assert(signal);
  252. return signal->decoded;
  253. }
  254. void infrared_worker_get_raw_signal(
  255. const InfraredWorkerSignal* signal,
  256. const uint32_t** timings,
  257. size_t* timings_cnt) {
  258. furi_assert(signal);
  259. furi_assert(timings);
  260. furi_assert(timings_cnt);
  261. *timings = signal->timings;
  262. *timings_cnt = signal->timings_cnt;
  263. }
  264. const InfraredMessage* infrared_worker_get_decoded_signal(const InfraredWorkerSignal* signal) {
  265. furi_assert(signal);
  266. return &signal->message;
  267. }
  268. void infrared_worker_rx_enable_blink_on_receiving(InfraredWorker* instance, bool enable) {
  269. furi_assert(instance);
  270. instance->blink_enable = enable;
  271. }
  272. void infrared_worker_rx_enable_signal_decoding(InfraredWorker* instance, bool enable) {
  273. furi_assert(instance);
  274. instance->decode_enable = enable;
  275. }
  276. void infrared_worker_tx_start(InfraredWorker* instance) {
  277. furi_assert(instance);
  278. furi_assert(instance->state == InfraredWorkerStateIdle);
  279. furi_assert(instance->tx.get_signal_callback);
  280. // size have to be greater than api hal infrared async tx buffer size
  281. furi_stream_set_trigger_level(instance->stream, sizeof(InfraredWorkerTiming));
  282. furi_thread_set_callback(instance->thread, infrared_worker_tx_thread);
  283. instance->tx.steady_signal_sent = false;
  284. instance->tx.need_reinitialization = false;
  285. furi_hal_infrared_async_tx_set_data_isr_callback(
  286. infrared_worker_furi_hal_data_isr_callback, instance);
  287. furi_hal_infrared_async_tx_set_signal_sent_isr_callback(
  288. infrared_worker_furi_hal_message_sent_isr_callback, instance);
  289. instance->state = InfraredWorkerStateStartTx;
  290. furi_thread_start(instance->thread);
  291. }
  292. static void infrared_worker_furi_hal_message_sent_isr_callback(void* context) {
  293. InfraredWorker* instance = context;
  294. uint32_t flags_set = furi_thread_flags_set(
  295. furi_thread_get_id(instance->thread), INFRARED_WORKER_TX_MESSAGE_SENT);
  296. furi_check(flags_set & INFRARED_WORKER_TX_MESSAGE_SENT);
  297. }
  298. static FuriHalInfraredTxGetDataState
  299. infrared_worker_furi_hal_data_isr_callback(void* context, uint32_t* duration, bool* level) {
  300. furi_assert(context);
  301. furi_assert(duration);
  302. furi_assert(level);
  303. InfraredWorker* instance = context;
  304. InfraredWorkerTiming timing;
  305. FuriHalInfraredTxGetDataState state;
  306. if(sizeof(InfraredWorkerTiming) ==
  307. furi_stream_buffer_receive(instance->stream, &timing, sizeof(InfraredWorkerTiming), 0)) {
  308. *level = timing.level;
  309. *duration = timing.duration;
  310. state = timing.state;
  311. } else {
  312. furi_assert(0);
  313. *level = 0;
  314. *duration = 100;
  315. state = FuriHalInfraredTxGetDataStateDone;
  316. }
  317. uint32_t flags_set = furi_thread_flags_set(
  318. furi_thread_get_id(instance->thread), INFRARED_WORKER_TX_FILL_BUFFER);
  319. furi_check(flags_set & INFRARED_WORKER_TX_FILL_BUFFER);
  320. return state;
  321. }
  322. static bool infrared_get_new_signal(InfraredWorker* instance) {
  323. bool new_signal_obtained = false;
  324. InfraredWorkerGetSignalResponse response =
  325. instance->tx.get_signal_callback(instance->tx.get_signal_context, instance);
  326. if(response == InfraredWorkerGetSignalResponseNew) {
  327. uint32_t new_tx_frequency = 0;
  328. float new_tx_duty_cycle = 0;
  329. if(instance->signal.decoded) {
  330. new_tx_frequency = infrared_get_protocol_frequency(instance->signal.message.protocol);
  331. new_tx_duty_cycle =
  332. infrared_get_protocol_duty_cycle(instance->signal.message.protocol);
  333. } else {
  334. furi_assert(instance->signal.timings_cnt > 1);
  335. new_tx_frequency = INFRARED_COMMON_CARRIER_FREQUENCY;
  336. new_tx_duty_cycle = INFRARED_COMMON_DUTY_CYCLE;
  337. }
  338. instance->tx.tx_raw_cnt = 0;
  339. instance->tx.need_reinitialization = (new_tx_frequency != instance->tx.frequency) ||
  340. (new_tx_duty_cycle != instance->tx.duty_cycle);
  341. instance->tx.frequency = new_tx_frequency;
  342. instance->tx.duty_cycle = new_tx_duty_cycle;
  343. if(instance->signal.decoded) {
  344. infrared_reset_encoder(instance->infrared_encoder, &instance->signal.message);
  345. }
  346. new_signal_obtained = true;
  347. } else if(response == InfraredWorkerGetSignalResponseSame) {
  348. new_signal_obtained = true;
  349. /* no need to reinit */
  350. } else if(response == InfraredWorkerGetSignalResponseStop) {
  351. new_signal_obtained = false;
  352. } else {
  353. furi_assert(0);
  354. }
  355. return new_signal_obtained;
  356. }
  357. static bool infrared_worker_tx_fill_buffer(InfraredWorker* instance) {
  358. bool new_data_available = true;
  359. InfraredWorkerTiming timing;
  360. InfraredStatus status = InfraredStatusError;
  361. while(!furi_stream_buffer_is_full(instance->stream) && !instance->tx.need_reinitialization &&
  362. new_data_available) {
  363. if(instance->signal.decoded) {
  364. status = infrared_encode(instance->infrared_encoder, &timing.duration, &timing.level);
  365. } else {
  366. timing.duration = instance->signal.timings[instance->tx.tx_raw_cnt];
  367. /* raw always starts from Mark, but we fill it with space delay at start */
  368. timing.level = (instance->tx.tx_raw_cnt % 2);
  369. ++instance->tx.tx_raw_cnt;
  370. if(instance->tx.tx_raw_cnt >= instance->signal.timings_cnt) {
  371. instance->tx.tx_raw_cnt = 0;
  372. status = InfraredStatusDone;
  373. } else {
  374. status = InfraredStatusOk;
  375. }
  376. }
  377. if(status == InfraredStatusError) {
  378. furi_assert(0);
  379. new_data_available = false;
  380. break;
  381. } else if(status == InfraredStatusOk) {
  382. timing.state = FuriHalInfraredTxGetDataStateOk;
  383. } else if(status == InfraredStatusDone) {
  384. timing.state = FuriHalInfraredTxGetDataStateDone;
  385. new_data_available = infrared_get_new_signal(instance);
  386. if(instance->tx.need_reinitialization || !new_data_available) {
  387. timing.state = FuriHalInfraredTxGetDataStateLastDone;
  388. }
  389. } else {
  390. furi_assert(0);
  391. }
  392. uint32_t written_size =
  393. furi_stream_buffer_send(instance->stream, &timing, sizeof(InfraredWorkerTiming), 0);
  394. furi_assert(sizeof(InfraredWorkerTiming) == written_size);
  395. (void)written_size;
  396. }
  397. return new_data_available;
  398. }
  399. static int32_t infrared_worker_tx_thread(void* thread_context) {
  400. InfraredWorker* instance = thread_context;
  401. furi_assert(instance->state == InfraredWorkerStateStartTx);
  402. furi_assert(thread_context);
  403. uint32_t events = 0;
  404. bool new_data_available = true;
  405. bool exit = false;
  406. exit = !infrared_get_new_signal(instance);
  407. furi_assert(!exit);
  408. while(!exit) {
  409. switch(instance->state) {
  410. case InfraredWorkerStateStartTx:
  411. instance->tx.need_reinitialization = false;
  412. new_data_available = infrared_worker_tx_fill_buffer(instance);
  413. furi_hal_infrared_async_tx_start(instance->tx.frequency, instance->tx.duty_cycle);
  414. if(!new_data_available) {
  415. instance->state = InfraredWorkerStateStopTx;
  416. } else if(instance->tx.need_reinitialization) {
  417. instance->state = InfraredWorkerStateWaitTxEnd;
  418. } else {
  419. instance->state = InfraredWorkerStateRunTx;
  420. }
  421. break;
  422. case InfraredWorkerStateStopTx:
  423. furi_hal_infrared_async_tx_stop();
  424. exit = true;
  425. break;
  426. case InfraredWorkerStateWaitTxEnd:
  427. furi_hal_infrared_async_tx_wait_termination();
  428. instance->state = InfraredWorkerStateStartTx;
  429. events = furi_thread_flags_get();
  430. if(events & INFRARED_WORKER_EXIT) {
  431. exit = true;
  432. break;
  433. }
  434. break;
  435. case InfraredWorkerStateRunTx:
  436. events = furi_thread_flags_wait(INFRARED_WORKER_ALL_TX_EVENTS, 0, FuriWaitForever);
  437. furi_check(events & INFRARED_WORKER_ALL_TX_EVENTS); /* at least one caught */
  438. if(events & INFRARED_WORKER_EXIT) {
  439. instance->state = InfraredWorkerStateStopTx;
  440. break;
  441. }
  442. if(events & INFRARED_WORKER_TX_FILL_BUFFER) {
  443. infrared_worker_tx_fill_buffer(instance);
  444. if(instance->tx.need_reinitialization) {
  445. instance->state = InfraredWorkerStateWaitTxEnd;
  446. }
  447. }
  448. if(events & INFRARED_WORKER_TX_MESSAGE_SENT) {
  449. if(instance->tx.message_sent_callback)
  450. instance->tx.message_sent_callback(instance->tx.message_sent_context);
  451. }
  452. break;
  453. default:
  454. furi_assert(0);
  455. break;
  456. }
  457. }
  458. return 0;
  459. }
  460. void infrared_worker_tx_set_get_signal_callback(
  461. InfraredWorker* instance,
  462. InfraredWorkerGetSignalCallback callback,
  463. void* context) {
  464. furi_assert(instance);
  465. instance->tx.get_signal_callback = callback;
  466. instance->tx.get_signal_context = context;
  467. }
  468. void infrared_worker_tx_set_signal_sent_callback(
  469. InfraredWorker* instance,
  470. InfraredWorkerMessageSentCallback callback,
  471. void* context) {
  472. furi_assert(instance);
  473. instance->tx.message_sent_callback = callback;
  474. instance->tx.message_sent_context = context;
  475. }
  476. void infrared_worker_tx_stop(InfraredWorker* instance) {
  477. furi_assert(instance);
  478. furi_assert(instance->state != InfraredWorkerStateRunRx);
  479. furi_thread_flags_set(furi_thread_get_id(instance->thread), INFRARED_WORKER_EXIT);
  480. furi_thread_join(instance->thread);
  481. furi_hal_infrared_async_tx_set_data_isr_callback(NULL, NULL);
  482. furi_hal_infrared_async_tx_set_signal_sent_isr_callback(NULL, NULL);
  483. instance->signal.timings_cnt = 0;
  484. FuriStatus status = furi_stream_buffer_reset(instance->stream);
  485. furi_assert(status == FuriStatusOk);
  486. (void)status;
  487. instance->state = InfraredWorkerStateIdle;
  488. }
  489. void infrared_worker_set_decoded_signal(InfraredWorker* instance, const InfraredMessage* message) {
  490. furi_assert(instance);
  491. furi_assert(message);
  492. instance->signal.decoded = true;
  493. instance->signal.message = *message;
  494. }
  495. void infrared_worker_set_raw_signal(
  496. InfraredWorker* instance,
  497. const uint32_t* timings,
  498. size_t timings_cnt) {
  499. furi_assert(instance);
  500. furi_assert(timings);
  501. furi_assert(timings_cnt > 0);
  502. size_t max_copy_num = COUNT_OF(instance->signal.timings) - 1;
  503. furi_check(timings_cnt <= max_copy_num);
  504. instance->signal.timings[0] = INFRARED_RAW_TX_TIMING_DELAY_US;
  505. memcpy(&instance->signal.timings[1], timings, timings_cnt * sizeof(uint32_t));
  506. instance->signal.decoded = false;
  507. instance->signal.timings_cnt = timings_cnt + 1;
  508. }
  509. InfraredWorkerGetSignalResponse
  510. infrared_worker_tx_get_signal_steady_callback(void* context, InfraredWorker* instance) {
  511. UNUSED(context);
  512. InfraredWorkerGetSignalResponse response = instance->tx.steady_signal_sent ?
  513. InfraredWorkerGetSignalResponseSame :
  514. InfraredWorkerGetSignalResponseNew;
  515. instance->tx.steady_signal_sent = true;
  516. return response;
  517. }