app_subghz.c 7.3 KB

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  1. /* Copyright (C) 2022-2023 Salvatore Sanfilippo -- All Rights Reserved
  2. * See the LICENSE file for information about the license. */
  3. #include "app.h"
  4. #include "custom_presets.h"
  5. #include <flipper_format/flipper_format_i.h>
  6. #include <furi_hal_rtc.h>
  7. #include <furi_hal_spi.h>
  8. #include <furi_hal_interrupt.h>
  9. void raw_sampling_timer_start(ProtoViewApp *app);
  10. void raw_sampling_timer_stop(ProtoViewApp *app);
  11. ProtoViewModulation ProtoViewModulations[] = {
  12. {"OOK 650Khz", "FuriHalSubGhzPresetOok650Async",
  13. FuriHalSubGhzPresetOok650Async, NULL},
  14. {"OOK 270Khz", "FuriHalSubGhzPresetOok270Async",
  15. FuriHalSubGhzPresetOok270Async, NULL},
  16. {"2FSK 2.38Khz", "FuriHalSubGhzPreset2FSKDev238Async",
  17. FuriHalSubGhzPreset2FSKDev238Async, NULL},
  18. {"2FSK 47.6Khz", "FuriHalSubGhzPreset2FSKDev476Async",
  19. FuriHalSubGhzPreset2FSKDev476Async, NULL},
  20. {"TPMS 1 (FSK)", NULL, 0, (uint8_t*)protoview_subghz_tpms1_fsk_async_regs},
  21. {"TPMS 2 (OOK)", NULL, 0, (uint8_t*)protoview_subghz_tpms2_ook_async_regs},
  22. {"TPMS 3 (GFSK)", NULL, 0, (uint8_t*)protoview_subghz_tpms3_gfsk_async_regs},
  23. {"OOK 40kBaud", NULL, 0, (uint8_t*)protoview_subghz_40k_ook_async_regs},
  24. {"FSK 40kBaud", NULL, 0, (uint8_t*)protoview_subghz_40k_fsk_async_regs},
  25. {NULL, NULL, 0, NULL} /* End of list sentinel. */
  26. };
  27. /* Called after the application initialization in order to setup the
  28. * subghz system and put it into idle state. */
  29. void radio_begin(ProtoViewApp* app) {
  30. furi_assert(app);
  31. furi_hal_subghz_reset();
  32. furi_hal_subghz_idle();
  33. /* Power circuits are noisy. Suppressing the charge while we use
  34. * ProtoView will improve the RF performances. */
  35. furi_hal_power_suppress_charge_enter();
  36. /* The CC1101 preset can be either one of the standard presets, if
  37. * the modulation "custom" field is NULL, or a custom preset we
  38. * defined in custom_presets.h. */
  39. if (ProtoViewModulations[app->modulation].custom == NULL) {
  40. furi_hal_subghz_load_preset(
  41. ProtoViewModulations[app->modulation].preset);
  42. } else {
  43. furi_hal_subghz_load_custom_preset(
  44. ProtoViewModulations[app->modulation].custom);
  45. }
  46. furi_hal_gpio_init(&gpio_cc1101_g0, GpioModeInput, GpioPullNo, GpioSpeedLow);
  47. app->txrx->txrx_state = TxRxStateIDLE;
  48. }
  49. /* ================================= Reception ============================== */
  50. /* We avoid the subghz provided abstractions and put the data in our
  51. * simple abstraction: the RawSamples circular buffer. */
  52. void protoview_rx_callback(bool level, uint32_t duration, void *context) {
  53. UNUSED(context);
  54. /* Add data to the circular buffer. */
  55. raw_samples_add(RawSamples, level, duration);
  56. // FURI_LOG_E(TAG, "FEED: %d %d", (int)level, (int)duration);
  57. return;
  58. }
  59. /* Setup the CC1101 to start receiving using a background worker. */
  60. uint32_t radio_rx(ProtoViewApp* app) {
  61. furi_assert(app);
  62. if(!furi_hal_subghz_is_frequency_valid(app->frequency)) {
  63. furi_crash(TAG" Incorrect RX frequency.");
  64. }
  65. if (app->txrx->txrx_state == TxRxStateRx) return app->frequency;
  66. furi_hal_subghz_idle(); /* Put it into idle state in case it is sleeping. */
  67. uint32_t value = furi_hal_subghz_set_frequency_and_path(app->frequency);
  68. FURI_LOG_E(TAG, "Switched to frequency: %lu", value);
  69. furi_hal_gpio_init(&gpio_cc1101_g0, GpioModeInput, GpioPullNo, GpioSpeedLow);
  70. furi_hal_subghz_flush_rx();
  71. furi_hal_subghz_rx();
  72. if (!app->txrx->debug_timer_sampling) {
  73. furi_hal_subghz_start_async_rx(protoview_rx_callback, NULL);
  74. } else {
  75. raw_sampling_worker_start(app);
  76. }
  77. app->txrx->txrx_state = TxRxStateRx;
  78. return value;
  79. }
  80. /* Stop receiving (if active) and put the radio on idle state. */
  81. void radio_rx_end(ProtoViewApp* app) {
  82. furi_assert(app);
  83. if (app->txrx->txrx_state == TxRxStateRx) {
  84. if (!app->txrx->debug_timer_sampling) {
  85. furi_hal_subghz_stop_async_rx();
  86. } else {
  87. raw_sampling_worker_stop(app);
  88. }
  89. }
  90. furi_hal_subghz_idle();
  91. app->txrx->txrx_state = TxRxStateIDLE;
  92. }
  93. /* Put radio on sleep. */
  94. void radio_sleep(ProtoViewApp* app) {
  95. furi_assert(app);
  96. if (app->txrx->txrx_state == TxRxStateRx) {
  97. /* Stop the asynchronous receiving system before putting the
  98. * chip into sleep. */
  99. radio_rx_end(app);
  100. }
  101. furi_hal_subghz_sleep();
  102. app->txrx->txrx_state = TxRxStateSleep;
  103. furi_hal_power_suppress_charge_exit();
  104. }
  105. /* =============================== Transmission ============================= */
  106. /* This function suspends the current RX state, switches to TX mode,
  107. * transmits the signal provided by the callback data_feeder, and later
  108. * restores the RX state if there was one. */
  109. void radio_tx_signal(ProtoViewApp *app, FuriHalSubGhzAsyncTxCallback data_feeder, void *ctx) {
  110. TxRxState oldstate = app->txrx->txrx_state;
  111. if (oldstate == TxRxStateRx) radio_rx_end(app);
  112. radio_begin(app);
  113. furi_hal_subghz_idle();
  114. uint32_t value = furi_hal_subghz_set_frequency_and_path(app->frequency);
  115. FURI_LOG_E(TAG, "Switched to frequency: %lu", value);
  116. furi_hal_gpio_write(&gpio_cc1101_g0, false);
  117. furi_hal_gpio_init(&gpio_cc1101_g0, GpioModeOutputPushPull, GpioPullNo, GpioSpeedLow);
  118. furi_hal_subghz_start_async_tx(data_feeder, ctx);
  119. while(!furi_hal_subghz_is_async_tx_complete()) furi_delay_ms(10);
  120. furi_hal_subghz_stop_async_tx();
  121. furi_hal_subghz_idle();
  122. radio_begin(app);
  123. if (oldstate == TxRxStateRx) radio_rx(app);
  124. }
  125. /* ============================= Raw sampling mode =============================
  126. * This is a special mode that uses a high frequency timer to sample the
  127. * CC1101 pin directly. It's useful for debugging purposes when we want
  128. * to get the raw data from the chip and completely bypass the subghz
  129. * Flipper system.
  130. * ===========================================================================*/
  131. void protoview_timer_isr(void *ctx) {
  132. ProtoViewApp *app = ctx;
  133. bool level = furi_hal_gpio_read(&gpio_cc1101_g0);
  134. if (app->txrx->last_g0_value != level) {
  135. uint32_t now = DWT->CYCCNT;
  136. uint32_t dur = now - app->txrx->last_g0_change_time;
  137. dur /= furi_hal_cortex_instructions_per_microsecond();
  138. if (dur > 15000) dur = 15000;
  139. raw_samples_add(RawSamples, app->txrx->last_g0_value, dur);
  140. app->txrx->last_g0_value = level;
  141. app->txrx->last_g0_change_time = now;
  142. }
  143. LL_TIM_ClearFlag_UPDATE(TIM2);
  144. }
  145. void raw_sampling_worker_start(ProtoViewApp *app) {
  146. UNUSED(app);
  147. LL_TIM_InitTypeDef tim_init = {
  148. .Prescaler = 63, /* CPU frequency is ~64Mhz. */
  149. .CounterMode = LL_TIM_COUNTERMODE_UP,
  150. .Autoreload = 5, /* Sample every 5 us */
  151. };
  152. LL_TIM_Init(TIM2, &tim_init);
  153. LL_TIM_SetClockSource(TIM2, LL_TIM_CLOCKSOURCE_INTERNAL);
  154. LL_TIM_DisableCounter(TIM2);
  155. LL_TIM_SetCounter(TIM2, 0);
  156. furi_hal_interrupt_set_isr(FuriHalInterruptIdTIM2, protoview_timer_isr, app);
  157. LL_TIM_EnableIT_UPDATE(TIM2);
  158. LL_TIM_EnableCounter(TIM2);
  159. FURI_LOG_E(TAG, "Timer enabled");
  160. }
  161. void raw_sampling_worker_stop(ProtoViewApp *app) {
  162. UNUSED(app);
  163. FURI_CRITICAL_ENTER();
  164. LL_TIM_DisableCounter(TIM2);
  165. LL_TIM_DisableIT_UPDATE(TIM2);
  166. furi_hal_interrupt_set_isr(FuriHalInterruptIdTIM2, NULL, NULL);
  167. LL_TIM_DeInit(TIM2);
  168. FURI_CRITICAL_EXIT();
  169. }