cli_commands.c 16 KB

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  1. #include "cli_commands.h"
  2. #include <furi_hal.h>
  3. #include <furi_hal_gpio.h>
  4. #include <furi_hal_info.h>
  5. #include <task_control_block.h>
  6. #include <time.h>
  7. #include <notification/notification_messages.h>
  8. #include <loader/loader.h>
  9. #include <stream_buffer.h>
  10. // Close to ISO, `date +'%Y-%m-%d %H:%M:%S %u'`
  11. #define CLI_DATE_FORMAT "%.4d-%.2d-%.2d %.2d:%.2d:%.2d %d"
  12. void cli_command_device_info_callback(const char* key, const char* value, bool last, void* context) {
  13. UNUSED(context);
  14. UNUSED(last);
  15. printf("%-24s: %s\r\n", key, value);
  16. }
  17. /*
  18. * Device Info Command
  19. * This command is intended to be used by humans
  20. */
  21. void cli_command_device_info(Cli* cli, string_t args, void* context) {
  22. UNUSED(cli);
  23. UNUSED(args);
  24. furi_hal_info_get(cli_command_device_info_callback, context);
  25. }
  26. void cli_command_help(Cli* cli, string_t args, void* context) {
  27. UNUSED(args);
  28. UNUSED(context);
  29. printf("Commands we have:");
  30. // Command count
  31. const size_t commands_count = CliCommandTree_size(cli->commands);
  32. const size_t commands_count_mid = commands_count / 2 + commands_count % 2;
  33. // Use 2 iterators from start and middle to show 2 columns
  34. CliCommandTree_it_t it_left;
  35. CliCommandTree_it(it_left, cli->commands);
  36. CliCommandTree_it_t it_right;
  37. CliCommandTree_it(it_right, cli->commands);
  38. for(size_t i = 0; i < commands_count_mid; i++) CliCommandTree_next(it_right);
  39. // Iterate throw tree
  40. for(size_t i = 0; i < commands_count_mid; i++) {
  41. printf("\r\n");
  42. // Left Column
  43. if(!CliCommandTree_end_p(it_left)) {
  44. printf("%-30s", string_get_cstr(*CliCommandTree_ref(it_left)->key_ptr));
  45. CliCommandTree_next(it_left);
  46. }
  47. // Right Column
  48. if(!CliCommandTree_end_p(it_right)) {
  49. printf("%s", string_get_cstr(*CliCommandTree_ref(it_right)->key_ptr));
  50. CliCommandTree_next(it_right);
  51. }
  52. };
  53. if(string_size(args) > 0) {
  54. cli_nl();
  55. printf("Also I have no clue what '");
  56. printf("%s", string_get_cstr(args));
  57. printf("' is.");
  58. }
  59. }
  60. void cli_command_date(Cli* cli, string_t args, void* context) {
  61. UNUSED(cli);
  62. UNUSED(context);
  63. FuriHalRtcDateTime datetime = {0};
  64. if(string_size(args) > 0) {
  65. uint16_t hours, minutes, seconds, month, day, year, weekday;
  66. int ret = sscanf(
  67. string_get_cstr(args),
  68. "%hu-%hu-%hu %hu:%hu:%hu %hu",
  69. &year,
  70. &month,
  71. &day,
  72. &hours,
  73. &minutes,
  74. &seconds,
  75. &weekday);
  76. // Some variables are going to discard upper byte
  77. // There will be some funky behaviour which is not breaking anything
  78. datetime.hour = hours;
  79. datetime.minute = minutes;
  80. datetime.second = seconds;
  81. datetime.weekday = weekday;
  82. datetime.month = month;
  83. datetime.day = day;
  84. datetime.year = year;
  85. if(ret != 7) {
  86. printf(
  87. "Invalid datetime format, use `%s`. sscanf %d %s",
  88. "%Y-%m-%d %H:%M:%S %u",
  89. ret,
  90. string_get_cstr(args));
  91. return;
  92. }
  93. if(!furi_hal_rtc_validate_datetime(&datetime)) {
  94. printf("Invalid datetime data");
  95. return;
  96. }
  97. furi_hal_rtc_set_datetime(&datetime);
  98. // Verification
  99. furi_hal_rtc_get_datetime(&datetime);
  100. printf(
  101. "New datetime is: " CLI_DATE_FORMAT,
  102. datetime.year,
  103. datetime.month,
  104. datetime.day,
  105. datetime.hour,
  106. datetime.minute,
  107. datetime.second,
  108. datetime.weekday);
  109. } else {
  110. furi_hal_rtc_get_datetime(&datetime);
  111. printf(
  112. CLI_DATE_FORMAT,
  113. datetime.year,
  114. datetime.month,
  115. datetime.day,
  116. datetime.hour,
  117. datetime.minute,
  118. datetime.second,
  119. datetime.weekday);
  120. }
  121. }
  122. #define CLI_COMMAND_LOG_RING_SIZE 2048
  123. #define CLI_COMMAND_LOG_BUFFER_SIZE 64
  124. void cli_command_log_tx_callback(const uint8_t* buffer, size_t size, void* context) {
  125. xStreamBufferSend(context, buffer, size, 0);
  126. }
  127. void cli_command_log(Cli* cli, string_t args, void* context) {
  128. UNUSED(args);
  129. UNUSED(context);
  130. StreamBufferHandle_t ring = xStreamBufferCreate(CLI_COMMAND_LOG_RING_SIZE, 1);
  131. uint8_t buffer[CLI_COMMAND_LOG_BUFFER_SIZE];
  132. furi_hal_console_set_tx_callback(cli_command_log_tx_callback, ring);
  133. printf("Press CTRL+C to stop...\r\n");
  134. while(!cli_cmd_interrupt_received(cli)) {
  135. size_t ret = xStreamBufferReceive(ring, buffer, CLI_COMMAND_LOG_BUFFER_SIZE, 50);
  136. cli_write(cli, buffer, ret);
  137. }
  138. furi_hal_console_set_tx_callback(NULL, NULL);
  139. vStreamBufferDelete(ring);
  140. }
  141. void cli_command_vibro(Cli* cli, string_t args, void* context) {
  142. UNUSED(cli);
  143. UNUSED(context);
  144. if(!string_cmp(args, "0")) {
  145. NotificationApp* notification = furi_record_open("notification");
  146. notification_message_block(notification, &sequence_reset_vibro);
  147. furi_record_close("notification");
  148. } else if(!string_cmp(args, "1")) {
  149. NotificationApp* notification = furi_record_open("notification");
  150. notification_message_block(notification, &sequence_set_vibro_on);
  151. furi_record_close("notification");
  152. } else {
  153. cli_print_usage("vibro", "<1|0>", string_get_cstr(args));
  154. }
  155. }
  156. void cli_command_debug(Cli* cli, string_t args, void* context) {
  157. UNUSED(cli);
  158. UNUSED(context);
  159. if(!string_cmp(args, "0")) {
  160. furi_hal_rtc_reset_flag(FuriHalRtcFlagDebug);
  161. loader_update_menu();
  162. printf("Debug disabled.");
  163. } else if(!string_cmp(args, "1")) {
  164. furi_hal_rtc_set_flag(FuriHalRtcFlagDebug);
  165. loader_update_menu();
  166. printf("Debug enabled.");
  167. } else {
  168. cli_print_usage("debug", "<1|0>", string_get_cstr(args));
  169. }
  170. }
  171. void cli_command_led(Cli* cli, string_t args, void* context) {
  172. UNUSED(cli);
  173. UNUSED(context);
  174. // Get first word as light name
  175. NotificationMessage notification_led_message;
  176. string_t light_name;
  177. string_init(light_name);
  178. size_t ws = string_search_char(args, ' ');
  179. if(ws == STRING_FAILURE) {
  180. cli_print_usage("led", "<r|g|b|bl> <0-255>", string_get_cstr(args));
  181. string_clear(light_name);
  182. return;
  183. } else {
  184. string_set_n(light_name, args, 0, ws);
  185. string_right(args, ws);
  186. string_strim(args);
  187. }
  188. // Check light name
  189. if(!string_cmp(light_name, "r")) {
  190. notification_led_message.type = NotificationMessageTypeLedRed;
  191. } else if(!string_cmp(light_name, "g")) {
  192. notification_led_message.type = NotificationMessageTypeLedGreen;
  193. } else if(!string_cmp(light_name, "b")) {
  194. notification_led_message.type = NotificationMessageTypeLedBlue;
  195. } else if(!string_cmp(light_name, "bl")) {
  196. notification_led_message.type = NotificationMessageTypeLedDisplayBacklight;
  197. } else {
  198. cli_print_usage("led", "<r|g|b|bl> <0-255>", string_get_cstr(args));
  199. string_clear(light_name);
  200. return;
  201. }
  202. string_clear(light_name);
  203. // Read light value from the rest of the string
  204. char* end_ptr;
  205. uint32_t value = strtoul(string_get_cstr(args), &end_ptr, 0);
  206. if(!(value < 256 && *end_ptr == '\0')) {
  207. cli_print_usage("led", "<r|g|b|bl> <0-255>", string_get_cstr(args));
  208. return;
  209. }
  210. // Set led value
  211. notification_led_message.data.led.value = value;
  212. // Form notification sequence
  213. const NotificationSequence notification_sequence = {
  214. &notification_led_message,
  215. NULL,
  216. };
  217. // Send notification
  218. NotificationApp* notification = furi_record_open("notification");
  219. notification_internal_message_block(notification, &notification_sequence);
  220. furi_record_close("notification");
  221. }
  222. char pin_names[][4] = {
  223. "PC0",
  224. "PC1",
  225. "PC3",
  226. "PB2",
  227. "PB3",
  228. "PA4",
  229. "PA6",
  230. "PA7",
  231. #ifdef FURI_DEBUG
  232. "PA0",
  233. "PB7",
  234. "PB8",
  235. "PB9"
  236. #endif
  237. };
  238. GpioPin gpio[] = {
  239. {.port = GPIOC, .pin = LL_GPIO_PIN_0},
  240. {.port = GPIOC, .pin = LL_GPIO_PIN_1},
  241. {.port = GPIOC, .pin = LL_GPIO_PIN_3},
  242. {.port = GPIOB, .pin = LL_GPIO_PIN_2},
  243. {.port = GPIOB, .pin = LL_GPIO_PIN_3},
  244. {.port = GPIOA, .pin = LL_GPIO_PIN_4},
  245. {.port = GPIOA, .pin = LL_GPIO_PIN_6},
  246. {.port = GPIOA, .pin = LL_GPIO_PIN_7},
  247. #ifdef FURI_DEBUG
  248. {.port = GPIOA, .pin = LL_GPIO_PIN_0}, // IR_RX (PA0)
  249. {.port = GPIOB, .pin = LL_GPIO_PIN_7}, // UART RX (PB7)
  250. {.port = GPIOB, .pin = LL_GPIO_PIN_8}, // SPEAKER (PB8)
  251. {.port = GPIOB, .pin = LL_GPIO_PIN_9}, // IR_TX (PB9)
  252. #endif
  253. };
  254. static bool pin_name_to_int(string_t pin_name, uint8_t* result) {
  255. uint8_t num = 0;
  256. bool pin_found = false;
  257. for(num = 0; num < sizeof(pin_names) / sizeof(char*); num++) {
  258. if(!string_cmp(pin_name, pin_names[num])) {
  259. pin_found = true;
  260. break;
  261. }
  262. }
  263. *result = num;
  264. return pin_found;
  265. }
  266. static void gpio_print_pins(void) {
  267. printf("Wrong pin name. Available pins: ");
  268. for(uint8_t i = 0; i < sizeof(pin_names) / sizeof(char*); i++) {
  269. printf("%s ", pin_names[i]);
  270. }
  271. }
  272. typedef enum { OK, ERR_CMD_SYNTAX, ERR_PIN, ERR_VALUE } GpioParseError;
  273. static GpioParseError gpio_command_parse(string_t args, uint8_t* pin_num, uint8_t* value) {
  274. string_t pin_name;
  275. string_init(pin_name);
  276. size_t ws = string_search_char(args, ' ');
  277. if(ws == STRING_FAILURE) {
  278. return ERR_CMD_SYNTAX;
  279. }
  280. string_set_n(pin_name, args, 0, ws);
  281. string_right(args, ws);
  282. string_strim(args);
  283. if(!pin_name_to_int(pin_name, pin_num)) {
  284. string_clear(pin_name);
  285. return ERR_PIN;
  286. }
  287. string_clear(pin_name);
  288. if(!string_cmp(args, "0")) {
  289. *value = 0;
  290. } else if(!string_cmp(args, "1")) {
  291. *value = 1;
  292. } else {
  293. return ERR_VALUE;
  294. }
  295. return OK;
  296. }
  297. void cli_command_gpio_mode(Cli* cli, string_t args, void* context) {
  298. UNUSED(cli);
  299. UNUSED(context);
  300. uint8_t num = 0;
  301. uint8_t value = 255;
  302. GpioParseError err = gpio_command_parse(args, &num, &value);
  303. if(ERR_CMD_SYNTAX == err) {
  304. cli_print_usage("gpio_mode", "<pin_name> <0|1>", string_get_cstr(args));
  305. return;
  306. } else if(ERR_PIN == err) {
  307. gpio_print_pins();
  308. return;
  309. } else if(ERR_VALUE == err) {
  310. printf("Value is invalid. Enter 1 for input or 0 for output");
  311. return;
  312. }
  313. if(value == 0) { // output
  314. furi_hal_gpio_init_simple(gpio + num, GpioModeOutputPushPull);
  315. furi_hal_gpio_write(gpio + num, false);
  316. printf("Pin %s is now an output (low)", pin_names[num]);
  317. } else { // input
  318. furi_hal_gpio_init_simple(gpio + num, GpioModeInput);
  319. printf("Pin %s is now an input", pin_names[num]);
  320. }
  321. }
  322. void cli_command_gpio_read(Cli* cli, string_t args, void* context) {
  323. UNUSED(cli);
  324. UNUSED(context);
  325. uint8_t num = 0;
  326. if(!pin_name_to_int(args, &num)) {
  327. gpio_print_pins();
  328. return;
  329. }
  330. if(LL_GPIO_MODE_INPUT != LL_GPIO_GetPinMode(gpio[num].port, gpio[num].pin)) {
  331. printf("Err: pin %s is not set as an input.", pin_names[num]);
  332. return;
  333. }
  334. uint8_t val = !!furi_hal_gpio_read(&gpio[num]);
  335. printf("Pin %s <= %u", pin_names[num], val);
  336. }
  337. void cli_command_gpio_set(Cli* cli, string_t args, void* context) {
  338. UNUSED(context);
  339. uint8_t num = 0;
  340. uint8_t value = 0;
  341. GpioParseError err = gpio_command_parse(args, &num, &value);
  342. if(ERR_CMD_SYNTAX == err) {
  343. cli_print_usage("gpio_set", "<pin_name> <0|1>", string_get_cstr(args));
  344. return;
  345. } else if(ERR_PIN == err) {
  346. gpio_print_pins();
  347. return;
  348. } else if(ERR_VALUE == err) {
  349. printf("Value is invalid. Enter 1 for high or 0 for low");
  350. return;
  351. }
  352. if(LL_GPIO_MODE_OUTPUT != LL_GPIO_GetPinMode(gpio[num].port, gpio[num].pin)) {
  353. printf("Err: pin %s is not set as an output.", pin_names[num]);
  354. return;
  355. }
  356. #ifdef FURI_DEBUG
  357. if(value && num == 8) { // PA0
  358. printf(
  359. "Setting PA0 pin HIGH with TSOP connected can damage IR receiver. Are you sure you want to continue? (y/n)?\r\n");
  360. char c = cli_getc(cli);
  361. if(c != 'y' && c != 'Y') {
  362. printf("Cancelled.\r\n");
  363. return;
  364. }
  365. }
  366. #else
  367. UNUSED(cli);
  368. #endif
  369. furi_hal_gpio_write(gpio + num, !!value);
  370. printf("Pin %s => %u", pin_names[num], !!value);
  371. }
  372. void cli_command_ps(Cli* cli, string_t args, void* context) {
  373. UNUSED(cli);
  374. UNUSED(args);
  375. UNUSED(context);
  376. const uint8_t threads_num_max = 32;
  377. osThreadId_t threads_id[threads_num_max];
  378. uint8_t thread_num = osThreadEnumerate(threads_id, threads_num_max);
  379. printf(
  380. "%-20s %-14s %-8s %-8s %s\r\n", "Name", "Stack start", "Heap", "Stack", "Stack min free");
  381. for(uint8_t i = 0; i < thread_num; i++) {
  382. TaskControlBlock* tcb = (TaskControlBlock*)threads_id[i];
  383. printf(
  384. "%-20s 0x%-12lx %-8d %-8ld %-8ld\r\n",
  385. osThreadGetName(threads_id[i]),
  386. (uint32_t)tcb->pxStack,
  387. memmgr_heap_get_thread_memory(threads_id[i]),
  388. (uint32_t)(tcb->pxEndOfStack - tcb->pxStack + 1) * sizeof(StackType_t),
  389. osThreadGetStackSpace(threads_id[i]));
  390. }
  391. printf("\r\nTotal: %d", thread_num);
  392. }
  393. void cli_command_free(Cli* cli, string_t args, void* context) {
  394. UNUSED(cli);
  395. UNUSED(args);
  396. UNUSED(context);
  397. printf("Free heap size: %d\r\n", memmgr_get_free_heap());
  398. printf("Total heap size: %d\r\n", memmgr_get_total_heap());
  399. printf("Minimum heap size: %d\r\n", memmgr_get_minimum_free_heap());
  400. printf("Maximum heap block: %d\r\n", memmgr_heap_get_max_free_block());
  401. }
  402. void cli_command_free_blocks(Cli* cli, string_t args, void* context) {
  403. UNUSED(cli);
  404. UNUSED(args);
  405. UNUSED(context);
  406. memmgr_heap_printf_free_blocks();
  407. }
  408. void cli_command_i2c(Cli* cli, string_t args, void* context) {
  409. UNUSED(cli);
  410. UNUSED(args);
  411. UNUSED(context);
  412. furi_hal_i2c_acquire(&furi_hal_i2c_handle_external);
  413. printf("Scanning external i2c on PC0(SCL)/PC1(SDA)\r\n"
  414. "Clock: 100khz, 7bit address\r\n"
  415. "\r\n");
  416. printf(" | 0 1 2 3 4 5 6 7 8 9 A B C D E F\r\n");
  417. printf("--+--------------------------------\r\n");
  418. for(uint8_t row = 0; row < 0x8; row++) {
  419. printf("%x | ", row);
  420. for(uint8_t column = 0; column <= 0xF; column++) {
  421. bool ret = furi_hal_i2c_is_device_ready(
  422. &furi_hal_i2c_handle_external, ((row << 4) + column) << 1, 2);
  423. printf("%c ", ret ? '#' : '-');
  424. }
  425. printf("\r\n");
  426. }
  427. furi_hal_i2c_release(&furi_hal_i2c_handle_external);
  428. }
  429. void cli_commands_init(Cli* cli) {
  430. cli_add_command(cli, "!", CliCommandFlagParallelSafe, cli_command_device_info, NULL);
  431. cli_add_command(cli, "device_info", CliCommandFlagParallelSafe, cli_command_device_info, NULL);
  432. cli_add_command(cli, "?", CliCommandFlagParallelSafe, cli_command_help, NULL);
  433. cli_add_command(cli, "help", CliCommandFlagParallelSafe, cli_command_help, NULL);
  434. cli_add_command(cli, "date", CliCommandFlagParallelSafe, cli_command_date, NULL);
  435. cli_add_command(cli, "log", CliCommandFlagParallelSafe, cli_command_log, NULL);
  436. cli_add_command(cli, "debug", CliCommandFlagDefault, cli_command_debug, NULL);
  437. cli_add_command(cli, "ps", CliCommandFlagParallelSafe, cli_command_ps, NULL);
  438. cli_add_command(cli, "free", CliCommandFlagParallelSafe, cli_command_free, NULL);
  439. cli_add_command(cli, "free_blocks", CliCommandFlagParallelSafe, cli_command_free_blocks, NULL);
  440. cli_add_command(cli, "vibro", CliCommandFlagDefault, cli_command_vibro, NULL);
  441. cli_add_command(cli, "led", CliCommandFlagDefault, cli_command_led, NULL);
  442. cli_add_command(cli, "gpio_mode", CliCommandFlagDefault, cli_command_gpio_mode, NULL);
  443. cli_add_command(cli, "gpio_read", CliCommandFlagDefault, cli_command_gpio_read, NULL);
  444. cli_add_command(cli, "gpio_set", CliCommandFlagDefault, cli_command_gpio_set, NULL);
  445. cli_add_command(cli, "i2c", CliCommandFlagDefault, cli_command_i2c, NULL);
  446. }