481 lines
19 KiB
C++
481 lines
19 KiB
C++
/*
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* Copyright (C) 2023 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <map>
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#include <set>
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#define LOG_TAG "AHAL_AlsaUtils"
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#include <Utils.h>
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#include <aidl/android/media/audio/common/AudioFormatType.h>
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#include <aidl/android/media/audio/common/PcmType.h>
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#include <android-base/logging.h>
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#include <audio_utils/primitives.h>
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#include <cutils/compiler.h>
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#include "Utils.h"
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#include "core-impl/utils.h"
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using aidl::android::hardware::audio::common::getChannelCount;
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using aidl::android::media::audio::common::AudioChannelLayout;
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using aidl::android::media::audio::common::AudioDeviceAddress;
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using aidl::android::media::audio::common::AudioFormatDescription;
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using aidl::android::media::audio::common::AudioFormatType;
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using aidl::android::media::audio::common::AudioIoFlags;
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using aidl::android::media::audio::common::AudioPortExt;
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using aidl::android::media::audio::common::PcmType;
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namespace aidl::android::hardware::audio::core::alsa {
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const float kUnityGainFloat = 1.0f;
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DeviceProxy::DeviceProxy() : mProfile(nullptr), mProxy(nullptr, alsaProxyDeleter) {}
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DeviceProxy::DeviceProxy(const DeviceProfile& deviceProfile)
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: mProfile(new alsa_device_profile), mProxy(new alsa_device_proxy, alsaProxyDeleter) {
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profile_init(mProfile.get(), deviceProfile.direction);
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mProfile->card = deviceProfile.card;
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mProfile->device = deviceProfile.device;
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memset(mProxy.get(), 0, sizeof(alsa_device_proxy));
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}
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void DeviceProxy::alsaProxyDeleter(alsa_device_proxy* proxy) {
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if (proxy != nullptr) {
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proxy_close(proxy);
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delete proxy;
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}
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}
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namespace {
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using AudioChannelCountToMaskMap = std::map<unsigned int, AudioChannelLayout>;
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using AudioFormatDescToPcmFormatMap = std::map<AudioFormatDescription, enum pcm_format>;
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using PcmFormatToAudioFormatDescMap = std::map<enum pcm_format, AudioFormatDescription>;
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AudioChannelLayout getInvalidChannelLayout() {
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static const AudioChannelLayout invalidChannelLayout =
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AudioChannelLayout::make<AudioChannelLayout::Tag::invalid>(0);
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return invalidChannelLayout;
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}
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static AudioChannelCountToMaskMap make_ChannelCountToMaskMap(
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const std::set<AudioChannelLayout>& channelMasks) {
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AudioChannelCountToMaskMap channelMaskToCountMap;
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for (const auto& channelMask : channelMasks) {
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channelMaskToCountMap.emplace(getChannelCount(channelMask), channelMask);
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}
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return channelMaskToCountMap;
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}
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#define DEFINE_CHANNEL_LAYOUT_MASK(n) \
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AudioChannelLayout::make<AudioChannelLayout::Tag::layoutMask>(AudioChannelLayout::LAYOUT_##n)
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const AudioChannelCountToMaskMap& getSupportedChannelOutLayoutMap() {
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static const std::set<AudioChannelLayout> supportedOutChannelLayouts = {
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DEFINE_CHANNEL_LAYOUT_MASK(MONO),
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DEFINE_CHANNEL_LAYOUT_MASK(STEREO),
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};
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static const AudioChannelCountToMaskMap outLayouts =
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make_ChannelCountToMaskMap(supportedOutChannelLayouts);
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return outLayouts;
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}
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const AudioChannelCountToMaskMap& getSupportedChannelInLayoutMap() {
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static const std::set<AudioChannelLayout> supportedInChannelLayouts = {
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DEFINE_CHANNEL_LAYOUT_MASK(MONO),
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DEFINE_CHANNEL_LAYOUT_MASK(STEREO),
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};
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static const AudioChannelCountToMaskMap inLayouts =
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make_ChannelCountToMaskMap(supportedInChannelLayouts);
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return inLayouts;
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}
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#undef DEFINE_CHANNEL_LAYOUT_MASK
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#define DEFINE_CHANNEL_INDEX_MASK(n) \
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AudioChannelLayout::make<AudioChannelLayout::Tag::indexMask>(AudioChannelLayout::INDEX_MASK_##n)
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const AudioChannelCountToMaskMap& getSupportedChannelIndexLayoutMap() {
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static const std::set<AudioChannelLayout> supportedIndexChannelLayouts = {
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DEFINE_CHANNEL_INDEX_MASK(1), DEFINE_CHANNEL_INDEX_MASK(2),
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DEFINE_CHANNEL_INDEX_MASK(3), DEFINE_CHANNEL_INDEX_MASK(4),
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DEFINE_CHANNEL_INDEX_MASK(5), DEFINE_CHANNEL_INDEX_MASK(6),
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DEFINE_CHANNEL_INDEX_MASK(7), DEFINE_CHANNEL_INDEX_MASK(8),
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DEFINE_CHANNEL_INDEX_MASK(9), DEFINE_CHANNEL_INDEX_MASK(10),
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DEFINE_CHANNEL_INDEX_MASK(11), DEFINE_CHANNEL_INDEX_MASK(12),
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DEFINE_CHANNEL_INDEX_MASK(13), DEFINE_CHANNEL_INDEX_MASK(14),
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DEFINE_CHANNEL_INDEX_MASK(15), DEFINE_CHANNEL_INDEX_MASK(16),
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DEFINE_CHANNEL_INDEX_MASK(17), DEFINE_CHANNEL_INDEX_MASK(18),
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DEFINE_CHANNEL_INDEX_MASK(19), DEFINE_CHANNEL_INDEX_MASK(20),
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DEFINE_CHANNEL_INDEX_MASK(21), DEFINE_CHANNEL_INDEX_MASK(22),
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DEFINE_CHANNEL_INDEX_MASK(23), DEFINE_CHANNEL_INDEX_MASK(24),
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};
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static const AudioChannelCountToMaskMap indexLayouts =
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make_ChannelCountToMaskMap(supportedIndexChannelLayouts);
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return indexLayouts;
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}
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#undef DEFINE_CHANNEL_INDEX_MASK
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AudioFormatDescription make_AudioFormatDescription(AudioFormatType type) {
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AudioFormatDescription result;
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result.type = type;
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return result;
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}
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AudioFormatDescription make_AudioFormatDescription(PcmType pcm) {
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auto result = make_AudioFormatDescription(AudioFormatType::PCM);
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result.pcm = pcm;
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return result;
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}
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const AudioFormatDescToPcmFormatMap& getAudioFormatDescriptorToPcmFormatMap() {
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static const AudioFormatDescToPcmFormatMap formatDescToPcmFormatMap = {
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{make_AudioFormatDescription(PcmType::INT_16_BIT), PCM_FORMAT_S16_LE},
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{make_AudioFormatDescription(PcmType::FIXED_Q_8_24), PCM_FORMAT_S24_LE},
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{make_AudioFormatDescription(PcmType::INT_24_BIT), PCM_FORMAT_S24_3LE},
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{make_AudioFormatDescription(PcmType::INT_32_BIT), PCM_FORMAT_S32_LE},
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{make_AudioFormatDescription(PcmType::FLOAT_32_BIT), PCM_FORMAT_FLOAT_LE},
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};
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return formatDescToPcmFormatMap;
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}
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static PcmFormatToAudioFormatDescMap make_PcmFormatToAudioFormatDescMap(
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const AudioFormatDescToPcmFormatMap& formatDescToPcmFormatMap) {
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PcmFormatToAudioFormatDescMap result;
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for (const auto& formatPair : formatDescToPcmFormatMap) {
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result.emplace(formatPair.second, formatPair.first);
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}
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return result;
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}
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const PcmFormatToAudioFormatDescMap& getPcmFormatToAudioFormatDescMap() {
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static const PcmFormatToAudioFormatDescMap pcmFormatToFormatDescMap =
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make_PcmFormatToAudioFormatDescMap(getAudioFormatDescriptorToPcmFormatMap());
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return pcmFormatToFormatDescMap;
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}
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void applyGainToInt16Buffer(void* buffer, const size_t bufferSizeBytes, const float gain,
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int channelCount) {
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const uint16_t unityGainQ4_12 = u4_12_from_float(kUnityGainFloat);
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const uint16_t vl = u4_12_from_float(gain);
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const uint32_t vrl = (vl << 16) | vl;
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int numFrames = 0;
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if (channelCount == 2) {
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numFrames = bufferSizeBytes / sizeof(uint32_t);
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if (numFrames == 0) {
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return;
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}
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uint32_t* intBuffer = (uint32_t*)buffer;
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if (CC_UNLIKELY(vl > unityGainQ4_12)) {
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do {
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int32_t l = mulRL(1, *intBuffer, vrl) >> 12;
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int32_t r = mulRL(0, *intBuffer, vrl) >> 12;
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l = clamp16(l);
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r = clamp16(r);
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*intBuffer++ = (r << 16) | (l & 0xFFFF);
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} while (--numFrames);
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} else {
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do {
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int32_t l = mulRL(1, *intBuffer, vrl) >> 12;
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int32_t r = mulRL(0, *intBuffer, vrl) >> 12;
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*intBuffer++ = (r << 16) | (l & 0xFFFF);
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} while (--numFrames);
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}
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} else {
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numFrames = bufferSizeBytes / sizeof(uint16_t);
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if (numFrames == 0) {
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return;
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}
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int16_t* intBuffer = (int16_t*)buffer;
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if (CC_UNLIKELY(vl > unityGainQ4_12)) {
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do {
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int32_t mono = mul(*intBuffer, static_cast<int16_t>(vl)) >> 12;
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*intBuffer++ = clamp16(mono);
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} while (--numFrames);
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} else {
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do {
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int32_t mono = mul(*intBuffer, static_cast<int16_t>(vl)) >> 12;
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*intBuffer++ = static_cast<int16_t>(mono & 0xFFFF);
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} while (--numFrames);
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}
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}
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}
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void applyGainToInt32Buffer(int32_t* typedBuffer, const size_t bufferSizeBytes, const float gain) {
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int numSamples = bufferSizeBytes / sizeof(int32_t);
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if (numSamples == 0) {
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return;
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}
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if (CC_UNLIKELY(gain > kUnityGainFloat)) {
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do {
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float multiplied = (*typedBuffer) * gain;
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if (multiplied > INT32_MAX) {
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*typedBuffer++ = INT32_MAX;
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} else if (multiplied < INT32_MIN) {
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*typedBuffer++ = INT32_MIN;
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} else {
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*typedBuffer++ = multiplied;
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}
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} while (--numSamples);
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} else {
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do {
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*typedBuffer++ = (*typedBuffer) * gain;
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} while (--numSamples);
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}
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}
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void applyGainToFloatBuffer(float* floatBuffer, const size_t bufferSizeBytes, const float gain) {
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int numSamples = bufferSizeBytes / sizeof(float);
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if (numSamples == 0) {
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return;
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}
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if (CC_UNLIKELY(gain > kUnityGainFloat)) {
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do {
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*floatBuffer++ = std::clamp((*floatBuffer) * gain, -kUnityGainFloat, kUnityGainFloat);
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} while (--numSamples);
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} else {
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do {
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*floatBuffer++ = (*floatBuffer) * gain;
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} while (--numSamples);
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}
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}
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} // namespace
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std::ostream& operator<<(std::ostream& os, const DeviceProfile& device) {
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return os << "<" << device.card << "," << device.device << ">";
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}
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AudioChannelLayout getChannelLayoutMaskFromChannelCount(unsigned int channelCount, int isInput) {
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return findValueOrDefault(
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isInput ? getSupportedChannelInLayoutMap() : getSupportedChannelOutLayoutMap(),
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channelCount, getInvalidChannelLayout());
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}
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AudioChannelLayout getChannelIndexMaskFromChannelCount(unsigned int channelCount) {
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return findValueOrDefault(getSupportedChannelIndexLayoutMap(), channelCount,
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getInvalidChannelLayout());
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}
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unsigned int getChannelCountFromChannelMask(const AudioChannelLayout& channelMask, bool isInput) {
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switch (channelMask.getTag()) {
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case AudioChannelLayout::Tag::layoutMask: {
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return findKeyOrDefault(
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isInput ? getSupportedChannelInLayoutMap() : getSupportedChannelOutLayoutMap(),
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static_cast<unsigned>(getChannelCount(channelMask)), 0u /*defaultValue*/);
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}
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case AudioChannelLayout::Tag::indexMask: {
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return findKeyOrDefault(getSupportedChannelIndexLayoutMap(),
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static_cast<unsigned>(getChannelCount(channelMask)),
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0u /*defaultValue*/);
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}
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case AudioChannelLayout::Tag::none:
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case AudioChannelLayout::Tag::invalid:
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case AudioChannelLayout::Tag::voiceMask:
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default:
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return 0;
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}
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}
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std::vector<AudioChannelLayout> getChannelMasksFromProfile(const alsa_device_profile* profile) {
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const bool isInput = profile->direction == PCM_IN;
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std::vector<AudioChannelLayout> channels;
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for (size_t i = 0; i < AUDIO_PORT_MAX_CHANNEL_MASKS && profile->channel_counts[i] != 0; ++i) {
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auto layoutMask =
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alsa::getChannelLayoutMaskFromChannelCount(profile->channel_counts[i], isInput);
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if (layoutMask.getTag() == AudioChannelLayout::Tag::layoutMask) {
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channels.push_back(layoutMask);
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}
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auto indexMask = alsa::getChannelIndexMaskFromChannelCount(profile->channel_counts[i]);
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if (indexMask.getTag() == AudioChannelLayout::Tag::indexMask) {
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channels.push_back(indexMask);
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}
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}
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return channels;
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}
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std::optional<DeviceProfile> getDeviceProfile(
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const ::aidl::android::media::audio::common::AudioDevice& audioDevice, bool isInput) {
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if (audioDevice.address.getTag() != AudioDeviceAddress::Tag::alsa) {
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LOG(ERROR) << __func__ << ": not alsa address: " << audioDevice.toString();
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return std::nullopt;
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}
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auto& alsaAddress = audioDevice.address.get<AudioDeviceAddress::Tag::alsa>();
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if (alsaAddress.size() != 2 || alsaAddress[0] < 0 || alsaAddress[1] < 0) {
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LOG(ERROR) << __func__
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<< ": malformed alsa address: " << ::android::internal::ToString(alsaAddress);
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return std::nullopt;
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}
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return DeviceProfile{.card = alsaAddress[0],
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.device = alsaAddress[1],
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.direction = isInput ? PCM_IN : PCM_OUT,
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.isExternal = !audioDevice.type.connection.empty()};
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}
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std::optional<DeviceProfile> getDeviceProfile(
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const ::aidl::android::media::audio::common::AudioPort& audioPort) {
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if (audioPort.ext.getTag() != AudioPortExt::Tag::device) {
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LOG(ERROR) << __func__ << ": port id " << audioPort.id << " is not a device port";
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return std::nullopt;
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}
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auto& devicePort = audioPort.ext.get<AudioPortExt::Tag::device>();
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return getDeviceProfile(devicePort.device, audioPort.flags.getTag() == AudioIoFlags::input);
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}
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std::optional<struct pcm_config> getPcmConfig(const StreamContext& context, bool isInput) {
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struct pcm_config config;
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config.channels = alsa::getChannelCountFromChannelMask(context.getChannelLayout(), isInput);
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if (config.channels == 0) {
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LOG(ERROR) << __func__ << ": invalid channel=" << context.getChannelLayout().toString();
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return std::nullopt;
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}
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config.format = alsa::aidl2c_AudioFormatDescription_pcm_format(context.getFormat());
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if (config.format == PCM_FORMAT_INVALID) {
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LOG(ERROR) << __func__ << ": invalid format=" << context.getFormat().toString();
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return std::nullopt;
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}
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config.rate = context.getSampleRate();
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if (config.rate == 0) {
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LOG(ERROR) << __func__ << ": invalid sample rate=" << config.rate;
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return std::nullopt;
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}
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return config;
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}
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std::vector<int> getSampleRatesFromProfile(const alsa_device_profile* profile) {
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std::vector<int> sampleRates;
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for (int i = 0; i < std::min(MAX_PROFILE_SAMPLE_RATES, AUDIO_PORT_MAX_SAMPLING_RATES) &&
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profile->sample_rates[i] != 0;
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i++) {
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sampleRates.push_back(profile->sample_rates[i]);
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}
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return sampleRates;
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}
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DeviceProxy openProxyForAttachedDevice(const DeviceProfile& deviceProfile,
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struct pcm_config* pcmConfig, size_t bufferFrameCount) {
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if (deviceProfile.isExternal) {
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LOG(FATAL) << __func__ << ": called for an external device, address=" << deviceProfile;
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}
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DeviceProxy proxy(deviceProfile);
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if (!profile_fill_builtin_device_info(proxy.getProfile(), pcmConfig, bufferFrameCount)) {
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LOG(FATAL) << __func__ << ": failed to init for built-in device, address=" << deviceProfile;
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}
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if (int err = proxy_prepare_from_default_config(proxy.get(), proxy.getProfile()); err != 0) {
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LOG(FATAL) << __func__ << ": fail to prepare for device address=" << deviceProfile
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<< " error=" << err;
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return DeviceProxy();
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}
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if (int err = proxy_open(proxy.get()); err != 0) {
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LOG(ERROR) << __func__ << ": failed to open device, address=" << deviceProfile
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<< " error=" << err;
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return DeviceProxy();
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}
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return proxy;
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}
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DeviceProxy openProxyForExternalDevice(const DeviceProfile& deviceProfile,
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struct pcm_config* pcmConfig, bool requireExactMatch) {
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if (!deviceProfile.isExternal) {
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LOG(FATAL) << __func__ << ": called for an attached device, address=" << deviceProfile;
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}
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auto proxy = readAlsaDeviceInfo(deviceProfile);
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if (proxy.get() == nullptr) {
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return proxy;
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}
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if (int err = proxy_prepare(proxy.get(), proxy.getProfile(), pcmConfig, requireExactMatch);
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err != 0) {
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LOG(ERROR) << __func__ << ": fail to prepare for device address=" << deviceProfile
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<< " error=" << err;
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return DeviceProxy();
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}
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if (int err = proxy_open(proxy.get()); err != 0) {
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LOG(ERROR) << __func__ << ": failed to open device, address=" << deviceProfile
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<< " error=" << err;
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return DeviceProxy();
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}
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return proxy;
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}
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DeviceProxy readAlsaDeviceInfo(const DeviceProfile& deviceProfile) {
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DeviceProxy proxy(deviceProfile);
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if (!profile_read_device_info(proxy.getProfile())) {
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LOG(ERROR) << __func__ << ": unable to read device info, device address=" << deviceProfile;
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return DeviceProxy();
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}
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return proxy;
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}
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void resetTransferredFrames(DeviceProxy& proxy, uint64_t frames) {
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if (proxy.get() != nullptr) {
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proxy.get()->transferred = frames;
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}
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}
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AudioFormatDescription c2aidl_pcm_format_AudioFormatDescription(enum pcm_format legacy) {
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return findValueOrDefault(getPcmFormatToAudioFormatDescMap(), legacy, AudioFormatDescription());
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}
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pcm_format aidl2c_AudioFormatDescription_pcm_format(const AudioFormatDescription& aidl) {
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return findValueOrDefault(getAudioFormatDescriptorToPcmFormatMap(), aidl, PCM_FORMAT_INVALID);
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}
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void applyGain(void* buffer, float gain, size_t bufferSizeBytes, enum pcm_format pcmFormat,
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int channelCount) {
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if (channelCount != 1 && channelCount != 2) {
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LOG(WARNING) << __func__ << ": unsupported channel count " << channelCount;
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return;
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}
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if (!getPcmFormatToAudioFormatDescMap().contains(pcmFormat)) {
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LOG(WARNING) << __func__ << ": unsupported pcm format " << pcmFormat;
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return;
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}
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if (std::abs(gain - kUnityGainFloat) < 1e-6) {
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return;
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}
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switch (pcmFormat) {
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case PCM_FORMAT_S16_LE:
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applyGainToInt16Buffer(buffer, bufferSizeBytes, gain, channelCount);
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break;
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case PCM_FORMAT_FLOAT_LE: {
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float* floatBuffer = (float*)buffer;
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applyGainToFloatBuffer(floatBuffer, bufferSizeBytes, gain);
|
|
} break;
|
|
case PCM_FORMAT_S24_LE:
|
|
// PCM_FORMAT_S24_LE buffer is composed of signed fixed-point 32-bit Q8.23 data with
|
|
// min and max limits of the same bit representation as min and max limits of
|
|
// PCM_FORMAT_S32_LE buffer.
|
|
case PCM_FORMAT_S32_LE: {
|
|
int32_t* typedBuffer = (int32_t*)buffer;
|
|
applyGainToInt32Buffer(typedBuffer, bufferSizeBytes, gain);
|
|
} break;
|
|
case PCM_FORMAT_S24_3LE: {
|
|
int numSamples = bufferSizeBytes / (sizeof(uint8_t) * 3);
|
|
if (numSamples == 0) {
|
|
return;
|
|
}
|
|
std::unique_ptr<int32_t[]> typedBuffer(new int32_t[numSamples]);
|
|
memcpy_to_i32_from_p24(typedBuffer.get(), (uint8_t*)buffer, numSamples);
|
|
applyGainToInt32Buffer(typedBuffer.get(), numSamples * sizeof(int32_t), gain);
|
|
memcpy_to_p24_from_i32((uint8_t*)buffer, typedBuffer.get(), numSamples);
|
|
} break;
|
|
default:
|
|
LOG(FATAL) << __func__ << ": unsupported pcm format " << pcmFormat;
|
|
break;
|
|
}
|
|
}
|
|
|
|
} // namespace aidl::android::hardware::audio::core::alsa
|