irda_common_encoder.c 5.8 KB

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  1. #include "furi/check.h"
  2. #include "irda.h"
  3. #include "irda_common_i.h"
  4. #include <stdbool.h>
  5. #include <furi.h>
  6. #include "irda_i.h"
  7. #include <stdint.h>
  8. static IrdaStatus
  9. irda_common_encode_bits(IrdaCommonEncoder* encoder, uint32_t* duration, bool* level) {
  10. IrdaStatus status = encoder->protocol->encode(encoder, duration, level);
  11. furi_assert(status == IrdaStatusOk);
  12. ++encoder->timings_encoded;
  13. encoder->timings_sum += *duration;
  14. if((encoder->bits_encoded == encoder->bits_to_encode) && *level) {
  15. status = IrdaStatusDone;
  16. }
  17. return status;
  18. }
  19. /*
  20. *
  21. * 3:
  22. * even_timing = 0
  23. * level = 0 ^ 1 = 1
  24. * 4:
  25. * even_timing = 1
  26. * level = 1 ^ 1 = 0
  27. * ++timing;
  28. *
  29. *
  30. * 0 1 2 | 3 4 |
  31. * _____-------_____---___
  32. */
  33. IrdaStatus
  34. irda_common_encode_manchester(IrdaCommonEncoder* encoder, uint32_t* duration, bool* level) {
  35. furi_assert(encoder);
  36. furi_assert(duration);
  37. furi_assert(level);
  38. const IrdaTimings* timings = &encoder->protocol->timings;
  39. uint8_t index = encoder->bits_encoded / 8;
  40. uint8_t shift = encoder->bits_encoded % 8; // LSB first
  41. bool logic_value = !!(encoder->data[index] & (0x01 << shift));
  42. bool even_timing = !(encoder->timings_encoded % 2);
  43. *level = even_timing ^ logic_value;
  44. *duration = timings->bit1_mark;
  45. if(even_timing)
  46. ++encoder->bits_encoded;
  47. else if(*level && (encoder->bits_encoded + 1 == encoder->bits_to_encode))
  48. ++encoder->bits_encoded; /* don't encode last space */
  49. return IrdaStatusOk;
  50. }
  51. IrdaStatus irda_common_encode_pdwm(IrdaCommonEncoder* encoder, uint32_t* duration, bool* level) {
  52. furi_assert(encoder);
  53. furi_assert(duration);
  54. furi_assert(level);
  55. const IrdaTimings* timings = &encoder->protocol->timings;
  56. uint8_t index = encoder->bits_encoded / 8;
  57. uint8_t shift = encoder->bits_encoded % 8; // LSB first
  58. bool logic_value = !!(encoder->data[index] & (0x01 << shift));
  59. bool pwm = timings->bit1_space == timings->bit0_space;
  60. if(encoder->timings_encoded % 2) { /* start encoding from space */
  61. *duration = logic_value ? timings->bit1_mark : timings->bit0_mark;
  62. *level = true;
  63. if(pwm) ++encoder->bits_encoded;
  64. } else {
  65. *duration = logic_value ? timings->bit1_space : timings->bit0_space;
  66. *level = false;
  67. if(!pwm) ++encoder->bits_encoded;
  68. }
  69. return IrdaStatusOk;
  70. }
  71. IrdaStatus irda_common_encode(IrdaCommonEncoder* encoder, uint32_t* duration, bool* level) {
  72. furi_assert(encoder);
  73. furi_assert(duration);
  74. furi_assert(level);
  75. IrdaStatus status = IrdaStatusOk;
  76. const IrdaTimings* timings = &encoder->protocol->timings;
  77. switch(encoder->state) {
  78. case IrdaCommonEncoderStateSilence:
  79. *duration = encoder->protocol->timings.silence_time;
  80. *level = false;
  81. status = IrdaStatusOk;
  82. encoder->state = IrdaCommonEncoderStatePreamble;
  83. ++encoder->timings_encoded;
  84. encoder->timings_sum = 0;
  85. break;
  86. case IrdaCommonEncoderStatePreamble:
  87. if(timings->preamble_mark) {
  88. if(encoder->timings_encoded == 1) {
  89. *duration = timings->preamble_mark;
  90. *level = true;
  91. } else {
  92. *duration = timings->preamble_space;
  93. *level = false;
  94. encoder->state = IrdaCommonEncoderStateEncode;
  95. }
  96. ++encoder->timings_encoded;
  97. encoder->timings_sum += *duration;
  98. break;
  99. } else {
  100. encoder->state = IrdaCommonEncoderStateEncode;
  101. }
  102. /* FALLTHROUGH */
  103. case IrdaCommonEncoderStateEncode:
  104. status = irda_common_encode_bits(encoder, duration, level);
  105. if(status == IrdaStatusDone) {
  106. if(encoder->protocol->encode_repeat) {
  107. encoder->state = IrdaCommonEncoderStateEncodeRepeat;
  108. } else {
  109. encoder->timings_encoded = 0;
  110. encoder->timings_sum = 0;
  111. encoder->bits_encoded = 0;
  112. encoder->switch_detect = 0;
  113. encoder->state = IrdaCommonEncoderStateSilence;
  114. }
  115. }
  116. break;
  117. case IrdaCommonEncoderStateEncodeRepeat:
  118. status = encoder->protocol->encode_repeat(encoder, duration, level);
  119. break;
  120. }
  121. return status;
  122. }
  123. void* irda_common_encoder_alloc(const IrdaCommonProtocolSpec* protocol) {
  124. furi_assert(protocol);
  125. if(protocol->decode == irda_common_decode_pdwm) {
  126. furi_assert(
  127. (protocol->timings.bit1_mark == protocol->timings.bit0_mark) ^
  128. (protocol->timings.bit1_space == protocol->timings.bit0_space));
  129. }
  130. /* protocol->databit_len[0] has to contain biggest value of bits that can be decoded */
  131. for(int i = 1; i < COUNT_OF(protocol->databit_len); ++i) {
  132. furi_assert(protocol->databit_len[i] <= protocol->databit_len[0]);
  133. }
  134. uint32_t alloc_size = sizeof(IrdaCommonDecoder) + protocol->databit_len[0] / 8 +
  135. !!(protocol->databit_len[0] % 8);
  136. IrdaCommonEncoder* encoder = furi_alloc(alloc_size);
  137. memset(encoder, 0, alloc_size);
  138. encoder->protocol = protocol;
  139. return encoder;
  140. }
  141. void irda_common_encoder_free(IrdaCommonEncoder* encoder) {
  142. furi_assert(encoder);
  143. free(encoder);
  144. }
  145. void irda_common_encoder_reset(IrdaCommonEncoder* encoder) {
  146. furi_assert(encoder);
  147. encoder->timings_encoded = 0;
  148. encoder->timings_sum = 0;
  149. encoder->bits_encoded = 0;
  150. encoder->state = IrdaCommonEncoderStateSilence;
  151. encoder->switch_detect = 0;
  152. uint8_t max_databit_len = 0;
  153. for(int i = 0; i < COUNT_OF(encoder->protocol->databit_len); ++i) {
  154. max_databit_len = MAX(max_databit_len, encoder->protocol->databit_len[i]);
  155. }
  156. uint8_t bytes_to_clear = max_databit_len / 8 + !!(max_databit_len % 8);
  157. memset(encoder->data, 0, bytes_to_clear);
  158. }