k10_audio_codec.cc 7.5 KB

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  1. #include "k10_audio_codec.h"
  2. #include <esp_log.h>
  3. #include <driver/i2c_master.h>
  4. #include <driver/i2s_tdm.h>
  5. #include <cmath>
  6. static const char TAG[] = "K10AudioCodec";
  7. K10AudioCodec::K10AudioCodec(void* i2c_master_handle, int input_sample_rate, int output_sample_rate,
  8. gpio_num_t mclk, gpio_num_t bclk, gpio_num_t ws, gpio_num_t dout, gpio_num_t din,
  9. gpio_num_t pa_pin, uint8_t es8311_addr, uint8_t es7210_addr, bool input_reference) {
  10. duplex_ = true; // 是否双工
  11. input_reference_ = input_reference; // 是否使用参考输入,实现回声消除
  12. input_channels_ = input_reference_ ? 2 : 1; // 输入通道数
  13. input_sample_rate_ = input_sample_rate;
  14. output_sample_rate_ = output_sample_rate;
  15. CreateDuplexChannels(mclk, bclk, ws, dout, din);
  16. // Do initialize of related interface: data_if, ctrl_if and gpio_if
  17. audio_codec_i2s_cfg_t i2s_cfg = {
  18. .port = I2S_NUM_0,
  19. .rx_handle = rx_handle_,
  20. .tx_handle = tx_handle_,
  21. };
  22. data_if_ = audio_codec_new_i2s_data(&i2s_cfg);
  23. assert(data_if_ != NULL);
  24. audio_codec_i2c_cfg_t i2c_cfg = {
  25. .port = I2C_NUM_1,
  26. .addr = es7210_addr,
  27. .bus_handle = i2c_master_handle,
  28. };
  29. const audio_codec_ctrl_if_t *in_ctrl_if_ = audio_codec_new_i2c_ctrl(&i2c_cfg);
  30. assert(in_ctrl_if_ != NULL);
  31. es7243e_codec_cfg_t es7243e_cfg = {
  32. .ctrl_if = in_ctrl_if_,
  33. };
  34. const audio_codec_if_t *in_codec_if_ = es7243e_codec_new(&es7243e_cfg);
  35. assert(in_codec_if_ != NULL);
  36. esp_codec_dev_cfg_t codec_es7243e_dev_cfg = {
  37. .dev_type = ESP_CODEC_DEV_TYPE_IN,
  38. .codec_if = in_codec_if_,
  39. .data_if = data_if_,
  40. };
  41. input_dev_ = esp_codec_dev_new(&codec_es7243e_dev_cfg);
  42. assert(input_dev_ != NULL);
  43. ESP_LOGI(TAG, "DF-K10 AudioDevice initialized");
  44. }
  45. K10AudioCodec::~K10AudioCodec() {
  46. ESP_ERROR_CHECK(esp_codec_dev_close(output_dev_));
  47. esp_codec_dev_delete(output_dev_);
  48. ESP_ERROR_CHECK(esp_codec_dev_close(input_dev_));
  49. esp_codec_dev_delete(input_dev_);
  50. audio_codec_delete_codec_if(in_codec_if_);
  51. audio_codec_delete_ctrl_if(in_ctrl_if_);
  52. audio_codec_delete_codec_if(out_codec_if_);
  53. audio_codec_delete_ctrl_if(out_ctrl_if_);
  54. audio_codec_delete_gpio_if(gpio_if_);
  55. audio_codec_delete_data_if(data_if_);
  56. }
  57. void K10AudioCodec::CreateDuplexChannels(gpio_num_t mclk, gpio_num_t bclk, gpio_num_t ws, gpio_num_t dout, gpio_num_t din) {
  58. assert(input_sample_rate_ == output_sample_rate_);
  59. i2s_chan_config_t chan_cfg = {
  60. .id = I2S_NUM_0,
  61. .role = I2S_ROLE_MASTER,
  62. .dma_desc_num = AUDIO_CODEC_DMA_DESC_NUM,
  63. .dma_frame_num = AUDIO_CODEC_DMA_FRAME_NUM,
  64. .auto_clear_after_cb = true,
  65. .auto_clear_before_cb = false,
  66. .intr_priority = 0,
  67. };
  68. ESP_ERROR_CHECK(i2s_new_channel(&chan_cfg, &tx_handle_, &rx_handle_));
  69. i2s_std_config_t std_cfg = {
  70. .clk_cfg = {
  71. .sample_rate_hz = (uint32_t)output_sample_rate_,
  72. .clk_src = I2S_CLK_SRC_DEFAULT,
  73. .ext_clk_freq_hz = 0,
  74. .mclk_multiple = I2S_MCLK_MULTIPLE_256
  75. },
  76. .slot_cfg = {
  77. .data_bit_width = I2S_DATA_BIT_WIDTH_16BIT,
  78. .slot_bit_width = I2S_SLOT_BIT_WIDTH_AUTO,
  79. .slot_mode = I2S_SLOT_MODE_MONO,
  80. .slot_mask = I2S_STD_SLOT_BOTH,
  81. .ws_width = I2S_DATA_BIT_WIDTH_16BIT,
  82. .ws_pol = false,
  83. .bit_shift = true,
  84. .left_align = true,
  85. .big_endian = false,
  86. .bit_order_lsb = false
  87. },
  88. .gpio_cfg = {
  89. // .mclk = mclk,
  90. .bclk = bclk,
  91. .ws = ws,
  92. .dout = dout,
  93. .din = I2S_GPIO_UNUSED,
  94. .invert_flags = {
  95. .mclk_inv = false,
  96. .bclk_inv = false,
  97. .ws_inv = false
  98. }
  99. }
  100. };
  101. i2s_tdm_config_t tdm_cfg = {
  102. .clk_cfg = {
  103. .sample_rate_hz = (uint32_t)input_sample_rate_,
  104. .clk_src = I2S_CLK_SRC_DEFAULT,
  105. .ext_clk_freq_hz = 0,
  106. .mclk_multiple = I2S_MCLK_MULTIPLE_256,
  107. .bclk_div = 8,
  108. },
  109. .slot_cfg = {
  110. .data_bit_width = I2S_DATA_BIT_WIDTH_16BIT,
  111. .slot_bit_width = I2S_SLOT_BIT_WIDTH_AUTO,
  112. .slot_mode = I2S_SLOT_MODE_STEREO,
  113. .slot_mask = i2s_tdm_slot_mask_t(I2S_TDM_SLOT0 | I2S_TDM_SLOT1 | I2S_TDM_SLOT2 | I2S_TDM_SLOT3),
  114. .ws_width = I2S_TDM_AUTO_WS_WIDTH,
  115. .ws_pol = false,
  116. .bit_shift = true,
  117. .left_align = false,
  118. .big_endian = false,
  119. .bit_order_lsb = false,
  120. .skip_mask = false,
  121. .total_slot = I2S_TDM_AUTO_SLOT_NUM
  122. },
  123. .gpio_cfg = {
  124. .mclk = mclk,
  125. .bclk = bclk,
  126. .ws = ws,
  127. .dout = I2S_GPIO_UNUSED,
  128. .din = din,
  129. .invert_flags = {
  130. .mclk_inv = false,
  131. .bclk_inv = false,
  132. .ws_inv = false
  133. }
  134. }
  135. };
  136. ESP_ERROR_CHECK(i2s_channel_init_std_mode(tx_handle_, &std_cfg));
  137. ESP_ERROR_CHECK(i2s_channel_init_tdm_mode(rx_handle_, &tdm_cfg));
  138. ESP_LOGI(TAG, "Duplex channels created");
  139. }
  140. void K10AudioCodec::SetOutputVolume(int volume) {
  141. AudioCodec::SetOutputVolume(volume);
  142. }
  143. void K10AudioCodec::EnableInput(bool enable) {
  144. if (enable == input_enabled_) {
  145. return;
  146. }
  147. if (enable) {
  148. esp_codec_dev_sample_info_t fs = {
  149. .bits_per_sample = 16,
  150. .channel = 4,
  151. .channel_mask = ESP_CODEC_DEV_MAKE_CHANNEL_MASK(0),
  152. .sample_rate = (uint32_t)output_sample_rate_,
  153. .mclk_multiple = 0,
  154. };
  155. if (input_reference_) {
  156. fs.channel_mask |= ESP_CODEC_DEV_MAKE_CHANNEL_MASK(1);
  157. }
  158. ESP_ERROR_CHECK(esp_codec_dev_open(input_dev_, &fs));
  159. ESP_ERROR_CHECK(esp_codec_dev_set_in_gain(input_dev_, 37.5)); //麦克风增益解决收音太小的问题
  160. } else {
  161. ESP_ERROR_CHECK(esp_codec_dev_close(input_dev_));
  162. }
  163. AudioCodec::EnableInput(enable);
  164. }
  165. void K10AudioCodec::EnableOutput(bool enable) {
  166. if (enable == output_enabled_) {
  167. return;
  168. }
  169. AudioCodec::SetOutputVolume(output_volume_);
  170. AudioCodec::EnableOutput(enable);
  171. }
  172. int K10AudioCodec::Read(int16_t* dest, int samples) {
  173. if (input_enabled_) {
  174. ESP_ERROR_CHECK_WITHOUT_ABORT(esp_codec_dev_read(input_dev_, (void*)dest, samples * sizeof(int16_t)));
  175. }
  176. return samples;
  177. }
  178. int K10AudioCodec::Write(const int16_t* data, int samples) {
  179. if (output_enabled_) {
  180. std::vector<int32_t> buffer(samples * 2); // Allocate buffer for 2x samples
  181. // Apply volume adjustment (same as before)
  182. int32_t volume_factor = pow(double(output_volume_) / 100.0, 2) * 65536;
  183. for (int i = 0; i < samples; i++) {
  184. int64_t temp = int64_t(data[i]) * volume_factor;
  185. if (temp > INT32_MAX) {
  186. buffer[i * 2] = INT32_MAX;
  187. } else if (temp < INT32_MIN) {
  188. buffer[i * 2] = INT32_MIN;
  189. } else {
  190. buffer[i * 2] = static_cast<int32_t>(temp);
  191. }
  192. // Repeat each sample for slow playback (assuming mono audio)
  193. buffer[i * 2 + 1] = buffer[i * 2];
  194. }
  195. size_t bytes_written;
  196. ESP_ERROR_CHECK(i2s_channel_write(tx_handle_, buffer.data(), samples * 2 * sizeof(int32_t), &bytes_written, portMAX_DELAY));
  197. return bytes_written / sizeof(int32_t);
  198. }
  199. return samples;
  200. }