input.c 4.9 KB

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  1. #include "input_i.h"
  2. #define GPIO_Read(input_pin) \
  3. (HAL_GPIO_ReadPin((GPIO_TypeDef*)input_pin.pin->port, input_pin.pin->pin) ^ \
  4. input_pin.pin->inverted)
  5. static Input* input = NULL;
  6. inline static void input_timer_start(osTimerId_t timer_id, uint32_t ticks) {
  7. TimerHandle_t hTimer = (TimerHandle_t)timer_id;
  8. furi_check(xTimerChangePeriod(hTimer, ticks, portMAX_DELAY) == pdPASS);
  9. }
  10. inline static void input_timer_stop(osTimerId_t timer_id) {
  11. TimerHandle_t hTimer = (TimerHandle_t)timer_id;
  12. furi_check(xTimerStop(hTimer, portMAX_DELAY) == pdPASS);
  13. // xTimerStop is not actually stopping timer,
  14. // Instead it places stop event into timer queue
  15. // This code ensures that timer is stopped
  16. while(xTimerIsTimerActive(hTimer) == pdTRUE) osDelay(1);
  17. }
  18. void input_press_timer_callback(void* arg) {
  19. InputPinState* input_pin = arg;
  20. InputEvent event;
  21. event.sequence = input_pin->counter;
  22. event.key = input_pin->pin->key;
  23. input_pin->press_counter++;
  24. if(input_pin->press_counter == INPUT_LONG_PRESS_COUNTS) {
  25. event.type = InputTypeLong;
  26. furi_pubsub_publish(input->event_pubsub, &event);
  27. } else if(input_pin->press_counter > INPUT_LONG_PRESS_COUNTS) {
  28. input_pin->press_counter--;
  29. event.type = InputTypeRepeat;
  30. furi_pubsub_publish(input->event_pubsub, &event);
  31. }
  32. }
  33. void input_isr(void* _ctx) {
  34. osThreadFlagsSet(input->thread, INPUT_THREAD_FLAG_ISR);
  35. }
  36. const char* input_get_key_name(InputKey key) {
  37. for(size_t i = 0; i < input_pins_count; i++) {
  38. if(input_pins[i].key == key) {
  39. return input_pins[i].name;
  40. }
  41. }
  42. return "Unknown";
  43. }
  44. const char* input_get_type_name(InputType type) {
  45. switch(type) {
  46. case InputTypePress:
  47. return "Press";
  48. case InputTypeRelease:
  49. return "Release";
  50. case InputTypeShort:
  51. return "Short";
  52. case InputTypeLong:
  53. return "Long";
  54. case InputTypeRepeat:
  55. return "Repeat";
  56. }
  57. return "Unknown";
  58. }
  59. int32_t input_srv() {
  60. input = malloc(sizeof(Input));
  61. input->thread = osThreadGetId();
  62. input->event_pubsub = furi_pubsub_alloc();
  63. furi_record_create("input_events", input->event_pubsub);
  64. #ifdef SRV_CLI
  65. input->cli = furi_record_open("cli");
  66. if(input->cli) {
  67. cli_add_command(input->cli, "input", CliCommandFlagParallelSafe, input_cli, input);
  68. }
  69. #endif
  70. input->pin_states = malloc(input_pins_count * sizeof(InputPinState));
  71. for(size_t i = 0; i < input_pins_count; i++) {
  72. GpioPin gpio = {(GPIO_TypeDef*)input_pins[i].port, (uint16_t)input_pins[i].pin};
  73. hal_gpio_add_int_callback(&gpio, input_isr, NULL);
  74. input->pin_states[i].pin = &input_pins[i];
  75. input->pin_states[i].state = GPIO_Read(input->pin_states[i]);
  76. input->pin_states[i].debounce = INPUT_DEBOUNCE_TICKS_HALF;
  77. input->pin_states[i].press_timer =
  78. osTimerNew(input_press_timer_callback, osTimerPeriodic, &input->pin_states[i], NULL);
  79. input->pin_states[i].press_counter = 0;
  80. }
  81. while(1) {
  82. bool is_changing = false;
  83. for(size_t i = 0; i < input_pins_count; i++) {
  84. bool state = GPIO_Read(input->pin_states[i]);
  85. if(input->pin_states[i].debounce > 0 &&
  86. input->pin_states[i].debounce < INPUT_DEBOUNCE_TICKS) {
  87. is_changing = true;
  88. input->pin_states[i].debounce += (state ? 1 : -1);
  89. } else if(input->pin_states[i].state != state) {
  90. input->pin_states[i].state = state;
  91. // Common state info
  92. InputEvent event;
  93. event.key = input->pin_states[i].pin->key;
  94. // Short / Long / Repeat timer routine
  95. if(state) {
  96. input->counter++;
  97. input->pin_states[i].counter = input->counter;
  98. event.sequence = input->pin_states[i].counter;
  99. input_timer_start(input->pin_states[i].press_timer, INPUT_PRESS_TICKS);
  100. } else {
  101. event.sequence = input->pin_states[i].counter;
  102. input_timer_stop(input->pin_states[i].press_timer);
  103. if(input->pin_states[i].press_counter < INPUT_LONG_PRESS_COUNTS) {
  104. event.type = InputTypeShort;
  105. furi_pubsub_publish(input->event_pubsub, &event);
  106. }
  107. input->pin_states[i].press_counter = 0;
  108. }
  109. // Send Press/Release event
  110. event.type = input->pin_states[i].state ? InputTypePress : InputTypeRelease;
  111. furi_pubsub_publish(input->event_pubsub, &event);
  112. }
  113. }
  114. if(is_changing) {
  115. osDelay(1);
  116. } else {
  117. osThreadFlagsWait(INPUT_THREAD_FLAG_ISR, osFlagsWaitAny, osWaitForever);
  118. }
  119. }
  120. return 0;
  121. }