infrared_encoder_nec.c 3.2 KB

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  1. #include "furi/check.h"
  2. #include "infrared.h"
  3. #include "common/infrared_common_i.h"
  4. #include <stdint.h>
  5. #include "../infrared_i.h"
  6. #include "infrared_protocol_defs_i.h"
  7. #include <furi.h>
  8. static const uint32_t repeat_timings[] = {
  9. INFRARED_NEC_REPEAT_PERIOD - INFRARED_NEC_REPEAT_MARK - INFRARED_NEC_REPEAT_SPACE -
  10. INFRARED_NEC_BIT1_MARK,
  11. INFRARED_NEC_REPEAT_MARK,
  12. INFRARED_NEC_REPEAT_SPACE,
  13. INFRARED_NEC_BIT1_MARK,
  14. };
  15. void infrared_encoder_nec_reset(void* encoder_ptr, const InfraredMessage* message) {
  16. furi_assert(encoder_ptr);
  17. furi_assert(message);
  18. InfraredCommonEncoder* encoder = encoder_ptr;
  19. infrared_common_encoder_reset(encoder);
  20. uint32_t* data1 = (void*)encoder->data;
  21. uint32_t* data2 = data1 + 1;
  22. if(message->protocol == InfraredProtocolNEC) {
  23. uint8_t address = message->address;
  24. uint8_t address_inverse = ~address;
  25. uint8_t command = message->command;
  26. uint8_t command_inverse = ~command;
  27. *data1 = address;
  28. *data1 |= address_inverse << 8;
  29. *data1 |= command << 16;
  30. *data1 |= command_inverse << 24;
  31. encoder->bits_to_encode = 32;
  32. } else if(message->protocol == InfraredProtocolNECext) {
  33. *data1 = (uint16_t)message->address;
  34. *data1 |= (message->command & 0xFFFF) << 16;
  35. encoder->bits_to_encode = 32;
  36. } else if(message->protocol == InfraredProtocolNEC42) {
  37. /* 13 address + 13 inverse address + 8 command + 8 inv command */
  38. *data1 = message->address & 0x1FFFUL;
  39. *data1 |= (~message->address & 0x1FFFUL) << 13;
  40. *data1 |= ((message->command & 0x3FUL) << 26);
  41. *data2 = (message->command & 0xC0UL) >> 6;
  42. *data2 |= (~message->command & 0xFFUL) << 2;
  43. encoder->bits_to_encode = 42;
  44. } else if(message->protocol == InfraredProtocolNEC42ext) {
  45. *data1 = message->address & 0x3FFFFFF;
  46. *data1 |= ((message->command & 0x3F) << 26);
  47. *data2 = (message->command & 0xFFC0) >> 6;
  48. encoder->bits_to_encode = 42;
  49. } else {
  50. furi_assert(0);
  51. }
  52. }
  53. InfraredStatus infrared_encoder_nec_encode_repeat(
  54. InfraredCommonEncoder* encoder,
  55. uint32_t* duration,
  56. bool* level) {
  57. furi_assert(encoder);
  58. /* space + 2 timings preambule + payload + stop bit */
  59. uint32_t timings_encoded_up_to_repeat = 1 + 2 + encoder->bits_to_encode * 2 + 1;
  60. uint32_t repeat_cnt = encoder->timings_encoded - timings_encoded_up_to_repeat;
  61. furi_assert(encoder->timings_encoded >= timings_encoded_up_to_repeat);
  62. if(repeat_cnt > 0) {
  63. *duration = repeat_timings[repeat_cnt % COUNT_OF(repeat_timings)];
  64. } else {
  65. *duration = INFRARED_NEC_REPEAT_PERIOD - encoder->timings_sum;
  66. }
  67. *level = repeat_cnt % 2;
  68. ++encoder->timings_encoded;
  69. bool done = (!((repeat_cnt + 1) % COUNT_OF(repeat_timings)));
  70. return done ? InfraredStatusDone : InfraredStatusOk;
  71. }
  72. void* infrared_encoder_nec_alloc(void) {
  73. return infrared_common_encoder_alloc(&protocol_nec);
  74. }
  75. void infrared_encoder_nec_free(void* encoder_ptr) {
  76. infrared_common_encoder_free(encoder_ptr);
  77. }
  78. InfraredStatus infrared_encoder_nec_encode(void* encoder_ptr, uint32_t* duration, bool* level) {
  79. return infrared_common_encode(encoder_ptr, duration, level);
  80. }