metronome.c 10 KB

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  1. #include <furi.h>
  2. #include <furi_hal.h>
  3. #include <input/input.h>
  4. #include <m-string.h>
  5. #include <stdlib.h>
  6. #include <gui/gui.h>
  7. #include <gui/elements.h>
  8. #include <gui/canvas.h>
  9. #include <notification/notification.h>
  10. #include <notification/notification_messages.h>
  11. #include "gui_extensions.h"
  12. #define BPM_STEP_SIZE_FINE 0.5d
  13. #define BPM_STEP_SIZE_COARSE 10.0d
  14. #define BPM_BOUNDARY_LOW 10.0d
  15. #define BPM_BOUNDARY_HIGH 300.0d
  16. #define BEEP_DELAY_MS 50
  17. typedef enum {
  18. EventTypeTick,
  19. EventTypeKey,
  20. } EventType;
  21. typedef struct {
  22. EventType type;
  23. InputEvent input;
  24. } PluginEvent;
  25. enum OutputMode {
  26. Loud,
  27. Vibro,
  28. Silent
  29. };
  30. typedef struct {
  31. double bpm;
  32. bool playing;
  33. int beats_per_bar;
  34. int note_length;
  35. int current_beat;
  36. enum OutputMode output_mode;
  37. FuriTimer* timer;
  38. NotificationApp* notifications;
  39. } MetronomeState;
  40. static void render_callback(Canvas* const canvas, void* ctx) {
  41. const MetronomeState* metronome_state = acquire_mutex((ValueMutex*)ctx, 25);
  42. if(metronome_state == NULL) {
  43. return;
  44. }
  45. string_t tempStr;
  46. string_init(tempStr);
  47. canvas_draw_frame(canvas, 0, 0, 128, 64);
  48. canvas_set_font(canvas, FontPrimary);
  49. // draw bars/beat
  50. string_printf(tempStr, "%d/%d", metronome_state->beats_per_bar, metronome_state->note_length);
  51. canvas_draw_str_aligned(canvas, 64, 8, AlignCenter, AlignCenter, string_get_cstr(tempStr));
  52. string_reset(tempStr);
  53. // draw BPM value
  54. string_printf(tempStr, "%.2f", metronome_state->bpm);
  55. canvas_set_font(canvas, FontBigNumbers);
  56. canvas_draw_str_aligned(canvas, 64, 24, AlignCenter, AlignCenter, string_get_cstr(tempStr));
  57. string_reset(tempStr);
  58. // draw button prompts
  59. canvas_set_font(canvas, FontSecondary);
  60. elements_button_left(canvas, "Slow");
  61. elements_button_right(canvas, "Fast");
  62. if (metronome_state->playing) {
  63. elements_button_center(canvas, "Stop ");
  64. } else {
  65. elements_button_center(canvas, "Start");
  66. }
  67. elements_button_top_left(canvas, "Push");
  68. elements_button_top_right(canvas, "Hold");
  69. // draw progress bar
  70. elements_progress_bar(canvas, 8, 36, 112, (float)metronome_state->current_beat/metronome_state->beats_per_bar);
  71. // cleanup
  72. string_clear(tempStr);
  73. release_mutex((ValueMutex*)ctx, metronome_state);
  74. }
  75. static void input_callback(InputEvent* input_event, FuriMessageQueue* event_queue) {
  76. furi_assert(event_queue);
  77. PluginEvent event = {.type = EventTypeKey, .input = *input_event};
  78. furi_message_queue_put(event_queue, &event, FuriWaitForever);
  79. }
  80. static void timer_callback(void* ctx) {
  81. // this is where we go BEEP!
  82. MetronomeState* metronome_state = acquire_mutex((ValueMutex*)ctx, 25);
  83. metronome_state->current_beat++;
  84. if (metronome_state->current_beat > metronome_state->beats_per_bar) {
  85. metronome_state->current_beat = 1;
  86. }
  87. if (metronome_state->current_beat == 1) {
  88. // pronounced beat
  89. notification_message(metronome_state->notifications, &sequence_set_only_red_255);
  90. switch(metronome_state->output_mode) {
  91. case Loud:
  92. furi_hal_speaker_start(440.0f, 1.0f);
  93. break;
  94. case Vibro:
  95. notification_message(metronome_state->notifications, &sequence_set_vibro_on);
  96. break;
  97. case Silent:
  98. break;
  99. }
  100. } else {
  101. // unpronounced beat
  102. notification_message(metronome_state->notifications, &sequence_set_only_green_255);
  103. switch(metronome_state->output_mode) {
  104. case Loud:
  105. furi_hal_speaker_start(220.0f, 1.0f);
  106. break;
  107. case Vibro:
  108. notification_message(metronome_state->notifications, &sequence_set_vibro_on);
  109. break;
  110. case Silent:
  111. break;
  112. }
  113. };
  114. // this is a bit of a kludge... if we are on vibro and unpronounced, stop vibro after half the usual duration
  115. switch(metronome_state->output_mode) {
  116. case Loud:
  117. furi_delay_ms(BEEP_DELAY_MS);
  118. furi_hal_speaker_stop();
  119. break;
  120. case Vibro:
  121. if (metronome_state->current_beat == 1) {
  122. furi_delay_ms(BEEP_DELAY_MS);
  123. notification_message(metronome_state->notifications, &sequence_reset_vibro);
  124. } else {
  125. furi_delay_ms((int)BEEP_DELAY_MS/2);
  126. notification_message(metronome_state->notifications, &sequence_reset_vibro);
  127. furi_delay_ms((int)BEEP_DELAY_MS/2);
  128. }
  129. break;
  130. case Silent:
  131. break;
  132. }
  133. notification_message(metronome_state->notifications, &sequence_reset_rgb);
  134. release_mutex((ValueMutex*)ctx, metronome_state);
  135. }
  136. static uint32_t state_to_sleep_ticks(MetronomeState* metronome_state) {
  137. // calculate time between beeps
  138. uint32_t tps = furi_kernel_get_tick_frequency();
  139. double multiplier = 4.0d/metronome_state->note_length;
  140. double bps = (double)metronome_state->bpm / 60;
  141. return (uint32_t)(round(tps / bps) - ((BEEP_DELAY_MS/1000)*tps)) * multiplier;
  142. }
  143. static void update_timer(MetronomeState* metronome_state) {
  144. if (furi_timer_is_running(metronome_state->timer)) {
  145. furi_timer_stop(metronome_state->timer);
  146. furi_timer_start(
  147. metronome_state->timer,
  148. state_to_sleep_ticks(metronome_state)
  149. );
  150. }
  151. }
  152. static void increase_bpm(MetronomeState* metronome_state, double amount) {
  153. metronome_state->bpm += amount;
  154. if(metronome_state->bpm > (double)BPM_BOUNDARY_HIGH) {
  155. metronome_state->bpm = BPM_BOUNDARY_HIGH;
  156. }
  157. update_timer(metronome_state);
  158. }
  159. static void decrease_bpm(MetronomeState* metronome_state, double amount) {
  160. metronome_state->bpm -= amount;
  161. if(metronome_state->bpm < (double)BPM_BOUNDARY_LOW) {
  162. metronome_state->bpm = BPM_BOUNDARY_LOW;
  163. }
  164. update_timer(metronome_state);
  165. }
  166. static void cycle_beats_per_bar(MetronomeState* metronome_state) {
  167. metronome_state->beats_per_bar++;
  168. if (metronome_state->beats_per_bar > metronome_state->note_length) {
  169. metronome_state->beats_per_bar = 1;
  170. }
  171. }
  172. static void cycle_note_length(MetronomeState* metronome_state) {
  173. metronome_state->note_length *= 2;
  174. if (metronome_state->note_length > 16) {
  175. metronome_state->note_length = 2;
  176. metronome_state->beats_per_bar = 1;
  177. }
  178. update_timer(metronome_state);
  179. }
  180. static void cycle_output_mode(MetronomeState* metronome_state) {
  181. metronome_state->output_mode++;
  182. if (metronome_state->output_mode > Silent) {
  183. metronome_state->output_mode = Loud;
  184. }
  185. }
  186. static void metronome_state_init(MetronomeState* const metronome_state) {
  187. metronome_state->bpm = 120.0;
  188. metronome_state->playing = false;
  189. metronome_state->beats_per_bar = 4;
  190. metronome_state->note_length = 4;
  191. metronome_state->current_beat = 0;
  192. metronome_state->output_mode = Loud;
  193. metronome_state->notifications = furi_record_open(RECORD_NOTIFICATION);
  194. }
  195. int32_t metronome_app() {
  196. FuriMessageQueue* event_queue = furi_message_queue_alloc(8, sizeof(PluginEvent));
  197. MetronomeState* metronome_state = malloc(sizeof(MetronomeState));
  198. metronome_state_init(metronome_state);
  199. ValueMutex state_mutex;
  200. if(!init_mutex(&state_mutex, metronome_state, sizeof(MetronomeState))) {
  201. FURI_LOG_E("Metronome", "cannot create mutex\r\n");
  202. free(metronome_state);
  203. return 255;
  204. }
  205. // Set system callbacks
  206. ViewPort* view_port = view_port_alloc();
  207. view_port_draw_callback_set(view_port, render_callback, &state_mutex);
  208. view_port_input_callback_set(view_port, input_callback, event_queue);
  209. metronome_state->timer = furi_timer_alloc(timer_callback, FuriTimerTypePeriodic, &state_mutex);
  210. // Open GUI and register view_port
  211. Gui* gui = furi_record_open("gui");
  212. gui_add_view_port(gui, view_port, GuiLayerFullscreen);
  213. PluginEvent event;
  214. for(bool processing = true; processing;) {
  215. FuriStatus event_status = furi_message_queue_get(event_queue, &event, 100);
  216. MetronomeState* metronome_state = (MetronomeState*)acquire_mutex_block(&state_mutex);
  217. if(event_status == FuriStatusOk) {
  218. if(event.type == EventTypeKey) {
  219. if(event.input.type == InputTypeShort) {
  220. // push events
  221. switch(event.input.key) {
  222. case InputKeyUp:
  223. cycle_beats_per_bar(metronome_state);
  224. break;
  225. case InputKeyDown:
  226. cycle_output_mode(metronome_state);
  227. break;
  228. case InputKeyRight:
  229. increase_bpm(metronome_state, BPM_STEP_SIZE_FINE);
  230. break;
  231. case InputKeyLeft:
  232. decrease_bpm(metronome_state, BPM_STEP_SIZE_FINE);
  233. break;
  234. case InputKeyOk:
  235. metronome_state->playing = !metronome_state->playing;
  236. if (metronome_state->playing) {
  237. furi_timer_start(metronome_state->timer, state_to_sleep_ticks(metronome_state));
  238. } else {
  239. furi_timer_stop(metronome_state->timer);
  240. }
  241. break;
  242. case InputKeyBack:
  243. processing = false;
  244. break;
  245. }
  246. } else if (event.input.type == InputTypeLong) {
  247. // hold events
  248. switch(event.input.key) {
  249. case InputKeyUp:
  250. cycle_note_length(metronome_state);
  251. break;
  252. case InputKeyDown:
  253. break;
  254. case InputKeyRight:
  255. increase_bpm(metronome_state, BPM_STEP_SIZE_COARSE);
  256. break;
  257. case InputKeyLeft:
  258. decrease_bpm(metronome_state, BPM_STEP_SIZE_COARSE);
  259. break;
  260. case InputKeyOk:
  261. break;
  262. case InputKeyBack:
  263. processing = false;
  264. break;
  265. }
  266. } else if (event.input.type == InputTypeRepeat) {
  267. // repeat events
  268. switch(event.input.key) {
  269. case InputKeyUp:
  270. break;
  271. case InputKeyDown:
  272. break;
  273. case InputKeyRight:
  274. increase_bpm(metronome_state, BPM_STEP_SIZE_COARSE);
  275. break;
  276. case InputKeyLeft:
  277. decrease_bpm(metronome_state, BPM_STEP_SIZE_COARSE);
  278. break;
  279. case InputKeyOk:
  280. break;
  281. case InputKeyBack:
  282. processing = false;
  283. break;
  284. }
  285. }
  286. }
  287. } else {
  288. FURI_LOG_D("Metronome", "FuriMessageQueue: event timeout");
  289. // event timeout
  290. }
  291. view_port_update(view_port);
  292. release_mutex(&state_mutex, metronome_state);
  293. }
  294. view_port_enabled_set(view_port, false);
  295. gui_remove_view_port(gui, view_port);
  296. furi_record_close("gui");
  297. view_port_free(view_port);
  298. furi_message_queue_free(event_queue);
  299. delete_mutex(&state_mutex);
  300. furi_timer_free(metronome_state->timer);
  301. furi_record_close(RECORD_NOTIFICATION);
  302. free(metronome_state);
  303. return 0;
  304. }