irda_decoder_encoder_test.c 12 KB

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  1. #include <furi.h>
  2. #include "../minunit.h"
  3. #include "irda.h"
  4. #include "common/irda_common_i.h"
  5. #include "test_data/irda_nec_test_data.srcdata"
  6. #include "test_data/irda_necext_test_data.srcdata"
  7. #include "test_data/irda_samsung_test_data.srcdata"
  8. #include "test_data/irda_rc6_test_data.srcdata"
  9. #include "test_data/irda_rc5_test_data.srcdata"
  10. #include "test_data/irda_sirc_test_data.srcdata"
  11. #define RUN_ENCODER(data, expected) \
  12. run_encoder((data), COUNT_OF(data), (expected), COUNT_OF(expected))
  13. #define RUN_DECODER(data, expected) \
  14. run_decoder((data), COUNT_OF(data), (expected), COUNT_OF(expected))
  15. #define RUN_ENCODER_DECODER(data) run_encoder_decoder((data), COUNT_OF(data))
  16. static IrdaDecoderHandler* decoder_handler;
  17. static IrdaEncoderHandler* encoder_handler;
  18. static void test_setup(void) {
  19. decoder_handler = irda_alloc_decoder();
  20. encoder_handler = irda_alloc_encoder();
  21. }
  22. static void test_teardown(void) {
  23. irda_free_decoder(decoder_handler);
  24. irda_free_encoder(encoder_handler);
  25. }
  26. static void compare_message_results(
  27. const IrdaMessage* message_decoded,
  28. const IrdaMessage* message_expected) {
  29. mu_check(message_decoded->protocol == message_expected->protocol);
  30. mu_check(message_decoded->command == message_expected->command);
  31. mu_check(message_decoded->address == message_expected->address);
  32. if((message_expected->protocol == IrdaProtocolSIRC) ||
  33. (message_expected->protocol == IrdaProtocolSIRC15) ||
  34. (message_expected->protocol == IrdaProtocolSIRC20)) {
  35. mu_check(message_decoded->repeat == false);
  36. } else {
  37. mu_check(message_decoded->repeat == message_expected->repeat);
  38. }
  39. }
  40. /* Encodes signal and merges same levels (high+high, low+low) */
  41. static void run_encoder_fill_array(
  42. IrdaEncoderHandler* handler,
  43. uint32_t* timings,
  44. uint32_t* timings_len,
  45. bool* start_level) {
  46. uint32_t duration = 0;
  47. bool level = false;
  48. bool level_read;
  49. IrdaStatus status = IrdaStatusError;
  50. int i = 0;
  51. bool first = true;
  52. while(1) {
  53. status = irda_encode(handler, &duration, &level_read);
  54. if(first) {
  55. if(start_level) *start_level = level_read;
  56. first = false;
  57. timings[0] = 0;
  58. } else if(level_read != level) {
  59. ++i;
  60. furi_check(i < *timings_len);
  61. timings[i] = 0;
  62. }
  63. level = level_read;
  64. timings[i] += duration;
  65. furi_check((status == IrdaStatusOk) || (status == IrdaStatusDone));
  66. if(status == IrdaStatusDone) break;
  67. }
  68. *timings_len = i + 1;
  69. }
  70. // messages in input array for encoder should have one protocol
  71. static void run_encoder(
  72. const IrdaMessage input_messages[],
  73. uint32_t input_messages_len,
  74. const uint32_t expected_timings[],
  75. uint32_t expected_timings_len) {
  76. uint32_t* timings = 0;
  77. uint32_t timings_len = 200;
  78. uint32_t j = 0;
  79. timings = malloc(sizeof(uint32_t) * timings_len);
  80. for(uint32_t message_counter = 0; message_counter < input_messages_len; ++message_counter) {
  81. const IrdaMessage* message = &input_messages[message_counter];
  82. if(!message->repeat) {
  83. irda_reset_encoder(encoder_handler, message);
  84. }
  85. timings_len = 200;
  86. run_encoder_fill_array(encoder_handler, timings, &timings_len, NULL);
  87. furi_check(timings_len <= 200);
  88. for(int i = 0; i < timings_len; ++i, ++j) {
  89. mu_check(MATCH_TIMING(timings[i], expected_timings[j], 120));
  90. mu_assert(j < expected_timings_len, "encoded more timings than expected");
  91. }
  92. }
  93. free(timings);
  94. mu_assert(j == expected_timings_len, "encoded less timings than expected");
  95. }
  96. static void run_encoder_decoder(const IrdaMessage input_messages[], uint32_t input_messages_len) {
  97. uint32_t* timings = 0;
  98. uint32_t timings_len = 200;
  99. bool level = false;
  100. timings = malloc(sizeof(uint32_t) * timings_len);
  101. for(uint32_t message_counter = 0; message_counter < input_messages_len; ++message_counter) {
  102. const IrdaMessage* message_encoded = &input_messages[message_counter];
  103. if(!message_encoded->repeat) {
  104. irda_reset_encoder(encoder_handler, message_encoded);
  105. }
  106. timings_len = 200;
  107. run_encoder_fill_array(encoder_handler, timings, &timings_len, &level);
  108. furi_check(timings_len <= 200);
  109. const IrdaMessage* message_decoded = 0;
  110. for(int i = 0; i < timings_len; ++i) {
  111. message_decoded = irda_decode(decoder_handler, level, timings[i]);
  112. if((i == timings_len - 2) && level && message_decoded) {
  113. /* In case we end with space timing - message can be decoded at last mark */
  114. break;
  115. } else if(i < timings_len - 1) {
  116. mu_check(!message_decoded);
  117. } else {
  118. if(!message_decoded) {
  119. message_decoded = irda_check_decoder_ready(decoder_handler);
  120. }
  121. mu_check(message_decoded);
  122. }
  123. level = !level;
  124. }
  125. if(message_decoded) {
  126. compare_message_results(message_decoded, message_encoded);
  127. } else {
  128. mu_check(0);
  129. }
  130. }
  131. free(timings);
  132. }
  133. static void run_decoder(
  134. const uint32_t* input_delays,
  135. uint32_t input_delays_len,
  136. const IrdaMessage* message_expected,
  137. uint32_t message_expected_len) {
  138. IrdaMessage message_decoded_check_local;
  139. bool level = 0;
  140. uint32_t message_counter = 0;
  141. const IrdaMessage* message_decoded = 0;
  142. for(uint32_t i = 0; i < input_delays_len; ++i) {
  143. const IrdaMessage* message_decoded_check = 0;
  144. if(input_delays[i] > IRDA_RAW_RX_TIMING_DELAY_US) {
  145. message_decoded_check = irda_check_decoder_ready(decoder_handler);
  146. if(message_decoded_check) {
  147. /* irda_decode() can reset message, but we have to call irda_decode() to perform real
  148. * simulation: irda_check() by timeout, then irda_decode() when meet edge */
  149. message_decoded_check_local = *message_decoded_check;
  150. message_decoded_check = &message_decoded_check_local;
  151. }
  152. }
  153. message_decoded = irda_decode(decoder_handler, level, input_delays[i]);
  154. if(message_decoded_check || message_decoded) {
  155. mu_assert(
  156. !(message_decoded_check && message_decoded),
  157. "both messages decoded: check_ready() and irda_decode()");
  158. if(message_decoded_check) {
  159. message_decoded = message_decoded_check;
  160. }
  161. mu_assert(message_counter < message_expected_len, "decoded more than expected");
  162. compare_message_results(message_decoded, &message_expected[message_counter]);
  163. ++message_counter;
  164. }
  165. level = !level;
  166. }
  167. message_decoded = irda_check_decoder_ready(decoder_handler);
  168. if(message_decoded) {
  169. compare_message_results(message_decoded, &message_expected[message_counter]);
  170. ++message_counter;
  171. }
  172. mu_assert(message_counter == message_expected_len, "decoded less than expected");
  173. }
  174. MU_TEST(test_decoder_samsung32) {
  175. RUN_DECODER(test_decoder_samsung32_input1, test_decoder_samsung32_expected1);
  176. }
  177. MU_TEST(test_mix) {
  178. RUN_DECODER(test_decoder_rc5_input2, test_decoder_rc5_expected2);
  179. RUN_DECODER(test_decoder_sirc_input1, test_decoder_sirc_expected1);
  180. RUN_DECODER(test_decoder_necext_input1, test_decoder_necext_expected1);
  181. // can use encoder data for decoding, but can't do opposite
  182. RUN_DECODER(test_encoder_rc6_expected1, test_encoder_rc6_input1);
  183. RUN_DECODER(test_decoder_samsung32_input1, test_decoder_samsung32_expected1);
  184. RUN_DECODER(test_decoder_rc6_input1, test_decoder_rc6_expected1);
  185. RUN_DECODER(test_decoder_samsung32_input1, test_decoder_samsung32_expected1);
  186. RUN_DECODER(test_decoder_rc5_input1, test_decoder_rc5_expected1);
  187. RUN_DECODER(test_decoder_sirc_input2, test_decoder_sirc_expected2);
  188. RUN_DECODER(test_decoder_necext_input1, test_decoder_necext_expected1);
  189. RUN_DECODER(test_decoder_sirc_input4, test_decoder_sirc_expected4);
  190. RUN_DECODER(test_decoder_nec_input2, test_decoder_nec_expected2);
  191. RUN_DECODER(test_decoder_rc6_input1, test_decoder_rc6_expected1);
  192. RUN_DECODER(test_decoder_necext_input1, test_decoder_necext_expected1);
  193. RUN_DECODER(test_decoder_sirc_input5, test_decoder_sirc_expected5);
  194. RUN_DECODER(test_decoder_nec_input3, test_decoder_nec_expected3);
  195. RUN_DECODER(test_decoder_rc5_input5, test_decoder_rc5_expected5);
  196. RUN_DECODER(test_decoder_samsung32_input1, test_decoder_samsung32_expected1);
  197. RUN_DECODER(test_decoder_sirc_input3, test_decoder_sirc_expected3);
  198. }
  199. MU_TEST(test_decoder_nec) {
  200. RUN_DECODER(test_decoder_nec_input1, test_decoder_nec_expected1);
  201. RUN_DECODER(test_decoder_nec_input2, test_decoder_nec_expected2);
  202. RUN_DECODER(test_decoder_nec_input3, test_decoder_nec_expected3);
  203. }
  204. MU_TEST(test_decoder_unexpected_end_in_sequence) {
  205. // test_decoder_nec_input1 and test_decoder_nec_input2 shuts unexpected
  206. RUN_DECODER(test_decoder_nec_input1, test_decoder_nec_expected1);
  207. RUN_DECODER(test_decoder_nec_input1, test_decoder_nec_expected1);
  208. RUN_DECODER(test_decoder_nec_input2, test_decoder_nec_expected2);
  209. RUN_DECODER(test_decoder_nec_input2, test_decoder_nec_expected2);
  210. }
  211. MU_TEST(test_decoder_necext1) {
  212. RUN_DECODER(test_decoder_necext_input1, test_decoder_necext_expected1);
  213. RUN_DECODER(test_decoder_necext_input1, test_decoder_necext_expected1);
  214. }
  215. MU_TEST(test_decoder_long_packets_with_nec_start) {
  216. RUN_DECODER(test_decoder_nec42ext_input1, test_decoder_nec42ext_expected1);
  217. RUN_DECODER(test_decoder_nec42ext_input2, test_decoder_nec42ext_expected2);
  218. }
  219. MU_TEST(test_encoder_sirc) {
  220. RUN_ENCODER(test_encoder_sirc_input1, test_encoder_sirc_expected1);
  221. RUN_ENCODER(test_encoder_sirc_input2, test_encoder_sirc_expected2);
  222. }
  223. MU_TEST(test_decoder_sirc) {
  224. RUN_DECODER(test_decoder_sirc_input3, test_decoder_sirc_expected3);
  225. RUN_DECODER(test_decoder_sirc_input1, test_decoder_sirc_expected1);
  226. RUN_DECODER(test_decoder_sirc_input2, test_decoder_sirc_expected2);
  227. RUN_DECODER(test_decoder_sirc_input4, test_decoder_sirc_expected4);
  228. RUN_DECODER(test_decoder_sirc_input5, test_decoder_sirc_expected5);
  229. RUN_ENCODER_DECODER(test_sirc);
  230. }
  231. MU_TEST(test_decoder_rc5) {
  232. RUN_DECODER(test_decoder_rc5x_input1, test_decoder_rc5x_expected1);
  233. RUN_DECODER(test_decoder_rc5_input1, test_decoder_rc5_expected1);
  234. RUN_DECODER(test_decoder_rc5_input2, test_decoder_rc5_expected2);
  235. RUN_DECODER(test_decoder_rc5_input3, test_decoder_rc5_expected3);
  236. RUN_DECODER(test_decoder_rc5_input4, test_decoder_rc5_expected4);
  237. RUN_DECODER(test_decoder_rc5_input5, test_decoder_rc5_expected5);
  238. RUN_DECODER(test_decoder_rc5_input6, test_decoder_rc5_expected6);
  239. RUN_DECODER(test_decoder_rc5_input_all_repeats, test_decoder_rc5_expected_all_repeats);
  240. }
  241. MU_TEST(test_encoder_rc5x) {
  242. RUN_ENCODER(test_decoder_rc5x_expected1, test_decoder_rc5x_input1);
  243. }
  244. MU_TEST(test_encoder_rc5) {
  245. RUN_ENCODER(test_decoder_rc5_expected_all_repeats, test_decoder_rc5_input_all_repeats);
  246. }
  247. MU_TEST(test_decoder_rc6) {
  248. RUN_DECODER(test_decoder_rc6_input1, test_decoder_rc6_expected1);
  249. }
  250. MU_TEST(test_encoder_rc6) {
  251. RUN_ENCODER(test_encoder_rc6_input1, test_encoder_rc6_expected1);
  252. }
  253. MU_TEST(test_encoder_decoder_all) {
  254. RUN_ENCODER_DECODER(test_nec);
  255. RUN_ENCODER_DECODER(test_necext);
  256. RUN_ENCODER_DECODER(test_nec42);
  257. RUN_ENCODER_DECODER(test_nec42ext);
  258. RUN_ENCODER_DECODER(test_samsung32);
  259. RUN_ENCODER_DECODER(test_rc6);
  260. RUN_ENCODER_DECODER(test_rc5);
  261. RUN_ENCODER_DECODER(test_sirc);
  262. }
  263. MU_TEST_SUITE(test_irda_decoder_encoder) {
  264. MU_SUITE_CONFIGURE(&test_setup, &test_teardown);
  265. MU_RUN_TEST(test_encoder_sirc);
  266. MU_RUN_TEST(test_decoder_sirc);
  267. MU_RUN_TEST(test_encoder_rc5x);
  268. MU_RUN_TEST(test_encoder_rc5);
  269. MU_RUN_TEST(test_decoder_rc5);
  270. MU_RUN_TEST(test_decoder_rc6);
  271. MU_RUN_TEST(test_encoder_rc6);
  272. MU_RUN_TEST(test_decoder_unexpected_end_in_sequence);
  273. MU_RUN_TEST(test_decoder_long_packets_with_nec_start);
  274. MU_RUN_TEST(test_decoder_nec);
  275. MU_RUN_TEST(test_decoder_samsung32);
  276. MU_RUN_TEST(test_decoder_necext1);
  277. MU_RUN_TEST(test_mix);
  278. MU_RUN_TEST(test_encoder_decoder_all);
  279. }
  280. int run_minunit_test_irda_decoder_encoder() {
  281. MU_RUN_SUITE(test_irda_decoder_encoder);
  282. return MU_EXIT_CODE;
  283. }