386 lines
11 KiB
C++
386 lines
11 KiB
C++
// SPDX-License-Identifier: Apache-2.0
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#include <drivers/dummy_i2s_amp.h>
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#include <tactility/device.h>
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#include <tactility/drivers/audio_codec.h>
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#include <tactility/drivers/audio_codec_adapters.h>
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#include <tactility/drivers/i2s_controller.h>
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#include <tactility/log.h>
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#include <dummy_codec.h>
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#include <esp_codec_dev.h>
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#include <audio_codec_sw_vol.h>
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#include <cmath>
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#define TAG "DummyI2sAmp"
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namespace {
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// A dumb I2S class-D amp has no native rate of its own -- it just clocks whatever I2S
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// frames arrive. Report a common default; audio_stream resamples to whatever rate it is
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// opened with.
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constexpr uint32_t NATIVE_SAMPLE_RATE = 44100;
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struct DummyI2sAmpData {
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const audio_codec_data_if_t* data_if = nullptr;
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const audio_codec_gpio_if_t* gpio_if = nullptr;
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const audio_codec_if_t* codec_if = nullptr;
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const audio_codec_vol_if_t* vol_if = nullptr;
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esp_codec_dev_handle_t codec_device = nullptr;
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bool is_open = false;
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esp_codec_dev_sample_info_t open_sample_info = {};
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// esp_codec_dev_set_out_mute() short-circuits on dummy_codec's mute callback (which
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// only toggles the PA enable GPIO, a no-op when there's no enable pin) and never
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// reaches its own software-volume mute fallback as a result. Track mute state
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// ourselves and implement it by zeroing/restoring volume through the working
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// esp_codec_dev_set_out_vol() path (confirmed working, unlike mute) instead.
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bool muted = false;
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int volume_percent = 100;
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};
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#define GET_CONFIG(device) (static_cast<const DummyI2sAmpConfig*>((device)->config))
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#define GET_DATA(device) (static_cast<DummyI2sAmpData*>(device_get_driver_data(device)))
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// region AudioCodecApi
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error_t open(Device* device, const struct AudioCodecStreamConfig* config) {
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auto* data = GET_DATA(device);
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if (data->codec_device == nullptr) {
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return ERROR_RESOURCE;
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}
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if (config->direction != AUDIO_CODEC_DIR_OUTPUT && config->direction != AUDIO_CODEC_DIR_BOTH) {
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return ERROR_NOT_SUPPORTED;
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}
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esp_codec_dev_sample_info_t sample_info = {
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.bits_per_sample = config->bits_per_sample,
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.channel = config->channels,
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.channel_mask = 0,
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.sample_rate = config->sample_rate,
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.mclk_multiple = 0,
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};
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if (data->is_open) {
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bool same_config = data->open_sample_info.bits_per_sample == sample_info.bits_per_sample
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&& data->open_sample_info.channel == sample_info.channel
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&& data->open_sample_info.sample_rate == sample_info.sample_rate;
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return same_config ? ERROR_NONE : ERROR_RESOURCE;
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}
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if (esp_codec_dev_open(data->codec_device, &sample_info) != ESP_CODEC_DEV_OK) {
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LOG_E(TAG, "Failed to open codec device");
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return ERROR_RESOURCE;
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}
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data->is_open = true;
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data->open_sample_info = sample_info;
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return ERROR_NONE;
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}
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error_t close(Device* device) {
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auto* data = GET_DATA(device);
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if (data->codec_device == nullptr) {
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return ERROR_RESOURCE;
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}
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if (data->is_open) {
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esp_codec_dev_close(data->codec_device);
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data->is_open = false;
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}
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return ERROR_NONE;
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}
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error_t read(Device* device, void* buffer, size_t size, size_t* bytes_read, TickType_t timeout) {
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(void) device;
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(void) buffer;
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(void) size;
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(void) bytes_read;
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(void) timeout;
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return ERROR_NOT_SUPPORTED;
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}
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error_t write(Device* device, const void* buffer, size_t size, size_t* bytes_written, TickType_t timeout) {
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(void) timeout;
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auto* data = GET_DATA(device);
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if (!data->is_open) {
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return ERROR_RESOURCE;
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}
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// esp_codec_dev_write returns the number of bytes written (>= 0) on success, or a negative
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// ESP_CODEC_DEV_* error code on failure -- it does NOT return ESP_CODEC_DEV_OK (0) for
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// a successful nonzero-length write.
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int result = esp_codec_dev_write(data->codec_device, const_cast<void*>(buffer), (int) size);
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if (result < 0) {
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return ERROR_RESOURCE;
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}
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*bytes_written = (size_t) result;
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return ERROR_NONE;
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}
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error_t set_volume(Device* device, AudioCodecDirection direction, float volume_percent) {
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auto* data = GET_DATA(device);
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if (data->codec_device == nullptr) {
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return ERROR_RESOURCE;
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}
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if (direction != AUDIO_CODEC_DIR_OUTPUT) {
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return ERROR_NOT_SUPPORTED;
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}
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if (volume_percent < 0.0f || volume_percent > 100.0f) {
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return ERROR_RESOURCE;
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}
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data->volume_percent = (int) std::lround(volume_percent);
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// Don't push the new volume to hardware while muted -- that would audibly unmute.
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// It takes effect once set_mute(false) restores it.
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if (data->muted) {
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return ERROR_NONE;
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}
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return (esp_codec_dev_set_out_vol(data->codec_device, data->volume_percent) == ESP_CODEC_DEV_OK) ? ERROR_NONE : ERROR_RESOURCE;
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}
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error_t get_volume(Device* device, AudioCodecDirection direction, float* volume_percent) {
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auto* data = GET_DATA(device);
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if (data->codec_device == nullptr) {
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return ERROR_RESOURCE;
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}
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if (direction != AUDIO_CODEC_DIR_OUTPUT) {
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return ERROR_NOT_SUPPORTED;
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}
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*volume_percent = (float) data->volume_percent;
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return ERROR_NONE;
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}
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error_t set_mute(Device* device, AudioCodecDirection direction, bool muted) {
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auto* data = GET_DATA(device);
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if (data->codec_device == nullptr) {
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return ERROR_RESOURCE;
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}
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if (direction != AUDIO_CODEC_DIR_OUTPUT) {
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return ERROR_NOT_SUPPORTED;
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}
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if (data->muted == muted) {
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return ERROR_NONE;
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}
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// esp_codec_dev_set_out_mute() is unusable here -- see DummyI2sAmpData::muted comment.
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// Implement mute as a volume override through the working esp_codec_dev_set_out_vol()
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// path instead: zero the hardware volume while muted, restore the tracked percentage
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// on unmute.
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int target = muted ? 0 : data->volume_percent;
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if (esp_codec_dev_set_out_vol(data->codec_device, target) != ESP_CODEC_DEV_OK) {
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return ERROR_RESOURCE;
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}
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data->muted = muted;
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return ERROR_NONE;
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}
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error_t get_mute(Device* device, AudioCodecDirection direction, bool* muted) {
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auto* data = GET_DATA(device);
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if (direction != AUDIO_CODEC_DIR_OUTPUT) {
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return ERROR_NOT_SUPPORTED;
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}
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*muted = data->muted;
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return ERROR_NONE;
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}
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error_t get_native_channels(Device* device, AudioCodecDirection direction, uint8_t* channels) {
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(void) device;
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if (direction != AUDIO_CODEC_DIR_OUTPUT) {
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return ERROR_NOT_SUPPORTED;
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}
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*channels = 2;
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return ERROR_NONE;
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}
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error_t get_native_sample_rate(Device* device, AudioCodecDirection direction, uint32_t* rate_hz) {
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(void) device;
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if (direction != AUDIO_CODEC_DIR_OUTPUT) {
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return ERROR_NOT_SUPPORTED;
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}
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*rate_hz = NATIVE_SAMPLE_RATE;
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return ERROR_NONE;
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}
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error_t get_capabilities(Device* device, AudioCodecDirection* supported_directions) {
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(void) device;
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*supported_directions = AUDIO_CODEC_DIR_OUTPUT;
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return ERROR_NONE;
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}
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static const struct AudioCodecApi API = {
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.open = open,
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.close = close,
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.read = read,
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.write = write,
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.set_volume = set_volume,
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.get_volume = get_volume,
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.set_mute = set_mute,
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.get_mute = get_mute,
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.get_native_sample_rate = get_native_sample_rate,
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.get_native_channels = get_native_channels,
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.get_capabilities = get_capabilities,
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};
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// endregion
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// region Driver lifecycle
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error_t start_device(Device* device) {
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const auto* config = GET_CONFIG(device);
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auto* i2s_controller = config->i2s_device;
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if (i2s_controller == nullptr || device_get_type(i2s_controller) != &I2S_CONTROLLER_TYPE) {
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LOG_E(TAG, "I2S controller device is not valid");
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return ERROR_RESOURCE;
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}
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auto* data = new DummyI2sAmpData();
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data->data_if = audio_codec_adapter_new_i2s_data(i2s_controller);
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if (data->data_if == nullptr) {
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LOG_E(TAG, "Failed to create I2S data adapter");
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goto cleanup;
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}
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if (data->data_if->open(data->data_if, nullptr, 0) != ESP_CODEC_DEV_OK) {
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LOG_E(TAG, "Failed to open data interface");
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goto cleanup;
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}
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{
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int16_t pa_pin = -1;
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if (config->enable_pin.gpio_controller != nullptr) {
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data->gpio_if = audio_codec_adapter_new_gpio(&config->enable_pin, 1);
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if (data->gpio_if == nullptr) {
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LOG_E(TAG, "Failed to create GPIO adapter for enable pin");
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goto cleanup;
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}
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pa_pin = 0;
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}
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dummy_codec_cfg_t codec_config = {
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.gpio_if = data->gpio_if,
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.pa_pin = pa_pin,
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.pa_reverted = false,
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};
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data->codec_if = dummy_codec_new(&codec_config);
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if (data->codec_if == nullptr) {
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LOG_E(TAG, "Failed to create dummy codec interface");
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goto cleanup;
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}
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}
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{
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esp_codec_dev_cfg_t dev_config = {
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.dev_type = ESP_CODEC_DEV_TYPE_OUT,
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.codec_if = data->codec_if,
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.data_if = data->data_if,
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};
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data->codec_device = esp_codec_dev_new(&dev_config);
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if (data->codec_device == nullptr) {
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LOG_E(TAG, "Failed to create codec device");
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goto cleanup;
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}
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}
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// Dumb I2S amps have no hardware volume/mute registers -- apply volume/mute in
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// software on the PCM stream instead.
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data->vol_if = audio_codec_new_sw_vol();
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if (data->vol_if == nullptr || esp_codec_dev_set_vol_handler(data->codec_device, data->vol_if) != ESP_CODEC_DEV_OK) {
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LOG_E(TAG, "Failed to install software volume handler");
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goto cleanup;
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}
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device_set_driver_data(device, data);
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return ERROR_NONE;
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cleanup:
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// Mirrors stop_device's teardown order -- delete_*_if() routines close their interface
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// first, so we don't need separate ->close() calls here.
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if (data->codec_device != nullptr) {
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esp_codec_dev_delete(data->codec_device);
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}
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if (data->vol_if != nullptr) {
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audio_codec_delete_vol_if(data->vol_if);
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}
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if (data->codec_if != nullptr) {
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audio_codec_delete_codec_if(data->codec_if);
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}
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if (data->gpio_if != nullptr) {
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audio_codec_adapter_delete_gpio(data->gpio_if);
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}
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if (data->data_if != nullptr) {
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audio_codec_delete_data_if(data->data_if);
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}
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delete data;
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return ERROR_RESOURCE;
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}
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error_t stop_device(Device* device) {
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auto* data = GET_DATA(device);
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if (data == nullptr) {
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return ERROR_NONE;
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}
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if (data->is_open) {
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esp_codec_dev_close(data->codec_device);
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}
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if (data->codec_device != nullptr) {
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esp_codec_dev_delete(data->codec_device);
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}
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if (data->vol_if != nullptr) {
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audio_codec_delete_vol_if(data->vol_if);
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}
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if (data->codec_if != nullptr) {
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audio_codec_delete_codec_if(data->codec_if);
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}
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if (data->gpio_if != nullptr) {
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audio_codec_adapter_delete_gpio(data->gpio_if);
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}
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if (data->data_if != nullptr) {
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audio_codec_delete_data_if(data->data_if);
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}
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device_set_driver_data(device, nullptr);
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delete data;
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return ERROR_NONE;
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}
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// endregion
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} // namespace
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extern "C" {
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Driver dummy_i2s_amp_driver = {
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.name = "dummy_i2s_amp",
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.compatible = (const char*[]) { "maxim,max98357a", "nsiway,ns4168", nullptr },
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.start_device = start_device,
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.stop_device = stop_device,
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.api = &API,
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.device_type = &AUDIO_CODEC_TYPE,
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.owner = nullptr,
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.internal = nullptr,
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};
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}
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