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https://gitlab.winehq.org/wine/wine-gecko.git
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347 lines
11 KiB
C++
347 lines
11 KiB
C++
/* -*- Mode: C++; tab-width: 2; indent-tabs-mode: nil; c-basic-offset: 2 -*-*/
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/* This Source Code Form is subject to the terms of the Mozilla Public
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* License, v. 2.0. If a copy of the MPL was not distributed with this file,
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* You can obtain one at http://mozilla.org/MPL/2.0/. */
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#include "AudioNodeStream.h"
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#include "MediaStreamGraphImpl.h"
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#include "AudioNodeEngine.h"
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#include "ThreeDPoint.h"
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using namespace mozilla::dom;
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namespace mozilla {
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/**
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* An AudioNodeStream produces a single audio track with ID
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* AUDIO_NODE_STREAM_TRACK_ID. This track has rate IdealAudioRate().
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* Each chunk in the track is a single block of WEBAUDIO_BLOCK_SIZE samples.
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*/
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static const int AUDIO_NODE_STREAM_TRACK_ID = 1;
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AudioNodeStream::~AudioNodeStream()
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{
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MOZ_COUNT_DTOR(AudioNodeStream);
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}
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void
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AudioNodeStream::SetStreamTimeParameter(uint32_t aIndex, MediaStream* aRelativeToStream,
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double aStreamTime)
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{
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class Message : public ControlMessage {
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public:
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Message(AudioNodeStream* aStream, uint32_t aIndex, MediaStream* aRelativeToStream,
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double aStreamTime)
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: ControlMessage(aStream), mStreamTime(aStreamTime),
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mRelativeToStream(aRelativeToStream), mIndex(aIndex) {}
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virtual void Run()
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{
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static_cast<AudioNodeStream*>(mStream)->
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SetStreamTimeParameterImpl(mIndex, mRelativeToStream, mStreamTime);
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}
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double mStreamTime;
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MediaStream* mRelativeToStream;
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uint32_t mIndex;
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};
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MOZ_ASSERT(this);
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GraphImpl()->AppendMessage(new Message(this, aIndex, aRelativeToStream, aStreamTime));
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}
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void
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AudioNodeStream::SetStreamTimeParameterImpl(uint32_t aIndex, MediaStream* aRelativeToStream,
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double aStreamTime)
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{
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StreamTime streamTime = std::max<MediaTime>(0, SecondsToMediaTime(aStreamTime));
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GraphTime graphTime = aRelativeToStream->StreamTimeToGraphTime(streamTime);
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StreamTime thisStreamTime = GraphTimeToStreamTimeOptimistic(graphTime);
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TrackTicks ticks = TimeToTicksRoundDown(IdealAudioRate(), thisStreamTime);
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mEngine->SetStreamTimeParameter(aIndex, ticks);
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}
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void
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AudioNodeStream::SetDoubleParameter(uint32_t aIndex, double aValue)
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{
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class Message : public ControlMessage {
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public:
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Message(AudioNodeStream* aStream, uint32_t aIndex, double aValue)
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: ControlMessage(aStream), mValue(aValue), mIndex(aIndex) {}
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virtual void Run()
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{
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static_cast<AudioNodeStream*>(mStream)->Engine()->
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SetDoubleParameter(mIndex, mValue);
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}
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double mValue;
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uint32_t mIndex;
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};
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MOZ_ASSERT(this);
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GraphImpl()->AppendMessage(new Message(this, aIndex, aValue));
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}
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void
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AudioNodeStream::SetInt32Parameter(uint32_t aIndex, int32_t aValue)
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{
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class Message : public ControlMessage {
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public:
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Message(AudioNodeStream* aStream, uint32_t aIndex, int32_t aValue)
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: ControlMessage(aStream), mValue(aValue), mIndex(aIndex) {}
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virtual void Run()
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{
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static_cast<AudioNodeStream*>(mStream)->Engine()->
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SetInt32Parameter(mIndex, mValue);
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}
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int32_t mValue;
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uint32_t mIndex;
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};
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MOZ_ASSERT(this);
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GraphImpl()->AppendMessage(new Message(this, aIndex, aValue));
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}
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void
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AudioNodeStream::SetTimelineParameter(uint32_t aIndex,
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const AudioEventTimeline<ErrorResult>& aValue)
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{
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class Message : public ControlMessage {
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public:
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Message(AudioNodeStream* aStream, uint32_t aIndex,
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const AudioEventTimeline<ErrorResult>& aValue)
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: ControlMessage(aStream), mValue(aValue), mIndex(aIndex) {}
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virtual void Run()
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{
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static_cast<AudioNodeStream*>(mStream)->Engine()->
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SetTimelineParameter(mIndex, mValue);
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}
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AudioEventTimeline<ErrorResult> mValue;
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uint32_t mIndex;
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};
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GraphImpl()->AppendMessage(new Message(this, aIndex, aValue));
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}
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void
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AudioNodeStream::SetThreeDPointParameter(uint32_t aIndex, const ThreeDPoint& aValue)
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{
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class Message : public ControlMessage {
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public:
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Message(AudioNodeStream* aStream, uint32_t aIndex, const ThreeDPoint& aValue)
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: ControlMessage(aStream), mValue(aValue), mIndex(aIndex) {}
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virtual void Run()
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{
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static_cast<AudioNodeStream*>(mStream)->Engine()->
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SetThreeDPointParameter(mIndex, mValue);
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}
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ThreeDPoint mValue;
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uint32_t mIndex;
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};
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MOZ_ASSERT(this);
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GraphImpl()->AppendMessage(new Message(this, aIndex, aValue));
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}
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void
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AudioNodeStream::SetBuffer(already_AddRefed<ThreadSharedFloatArrayBufferList> aBuffer)
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{
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class Message : public ControlMessage {
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public:
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Message(AudioNodeStream* aStream,
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already_AddRefed<ThreadSharedFloatArrayBufferList> aBuffer)
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: ControlMessage(aStream), mBuffer(aBuffer) {}
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virtual void Run()
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{
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static_cast<AudioNodeStream*>(mStream)->Engine()->
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SetBuffer(mBuffer.forget());
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}
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nsRefPtr<ThreadSharedFloatArrayBufferList> mBuffer;
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};
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MOZ_ASSERT(this);
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GraphImpl()->AppendMessage(new Message(this, aBuffer));
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}
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StreamBuffer::Track*
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AudioNodeStream::EnsureTrack()
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{
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StreamBuffer::Track* track = mBuffer.FindTrack(AUDIO_NODE_STREAM_TRACK_ID);
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if (!track) {
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nsAutoPtr<MediaSegment> segment(new AudioSegment());
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for (uint32_t j = 0; j < mListeners.Length(); ++j) {
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MediaStreamListener* l = mListeners[j];
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l->NotifyQueuedTrackChanges(Graph(), AUDIO_NODE_STREAM_TRACK_ID, IdealAudioRate(), 0,
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MediaStreamListener::TRACK_EVENT_CREATED,
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*segment);
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}
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track = &mBuffer.AddTrack(AUDIO_NODE_STREAM_TRACK_ID, IdealAudioRate(), 0, segment.forget());
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}
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return track;
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}
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bool
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AudioNodeStream::AllInputsFinished() const
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{
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uint32_t inputCount = mInputs.Length();
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for (uint32_t i = 0; i < inputCount; ++i) {
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if (!mInputs[i]->GetSource()->IsFinishedOnGraphThread()) {
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return false;
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}
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}
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return !!inputCount;
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}
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AudioChunk*
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AudioNodeStream::ObtainInputBlock(AudioChunk* aTmpChunk)
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{
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uint32_t inputCount = mInputs.Length();
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uint32_t outputChannelCount = mNumberOfInputChannels;
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nsAutoTArray<AudioChunk*,250> inputChunks;
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for (uint32_t i = 0; i < inputCount; ++i) {
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MediaStream* s = mInputs[i]->GetSource();
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AudioNodeStream* a = static_cast<AudioNodeStream*>(s);
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MOZ_ASSERT(a == s->AsAudioNodeStream());
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if (a->IsFinishedOnGraphThread()) {
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continue;
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}
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AudioChunk* chunk = &a->mLastChunk;
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MOZ_ASSERT(chunk);
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if (chunk->IsNull()) {
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continue;
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}
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inputChunks.AppendElement(chunk);
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if (!mNumberOfInputChannels) {
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outputChannelCount =
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GetAudioChannelsSuperset(outputChannelCount, chunk->mChannelData.Length());
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}
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}
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uint32_t inputChunkCount = inputChunks.Length();
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if (inputChunkCount == 0) {
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aTmpChunk->SetNull(WEBAUDIO_BLOCK_SIZE);
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return aTmpChunk;
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}
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if (inputChunkCount == 1 &&
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inputChunks[0]->mChannelData.Length() == outputChannelCount) {
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return inputChunks[0];
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}
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AllocateAudioBlock(outputChannelCount, aTmpChunk);
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for (uint32_t i = 0; i < inputChunkCount; ++i) {
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AudioChunk* chunk = inputChunks[i];
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nsAutoTArray<const void*,GUESS_AUDIO_CHANNELS> channels;
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channels.AppendElements(chunk->mChannelData);
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if (channels.Length() < outputChannelCount) {
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AudioChannelsUpMix(&channels, outputChannelCount, nullptr);
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NS_ASSERTION(outputChannelCount == channels.Length(),
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"We called GetAudioChannelsSuperset to avoid this");
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} else if (channels.Length() > outputChannelCount) {
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nsAutoTArray<float*,GUESS_AUDIO_CHANNELS> outputChannels;
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outputChannels.SetLength(outputChannelCount);
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for (uint32_t i = 0; i < outputChannelCount; ++i) {
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outputChannels[i] =
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const_cast<float*>(static_cast<const float*>(aTmpChunk->mChannelData[i]));
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}
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AudioChannelsDownMix(channels, outputChannels.Elements(),
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outputChannelCount, WEBAUDIO_BLOCK_SIZE);
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channels.SetLength(outputChannelCount);
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for (uint32_t i = 0; i < channels.Length(); ++i) {
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channels[i] = outputChannels[i];
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}
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}
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for (uint32_t c = 0; c < channels.Length(); ++c) {
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const float* inputData = static_cast<const float*>(channels[c]);
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float* outputData = static_cast<float*>(const_cast<void*>(aTmpChunk->mChannelData[c]));
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if (inputData) {
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if (i == 0) {
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AudioBlockCopyChannelWithScale(inputData, chunk->mVolume, outputData);
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} else {
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AudioBlockAddChannelWithScale(inputData, chunk->mVolume, outputData);
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}
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} else {
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if (i == 0) {
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memset(outputData, 0, WEBAUDIO_BLOCK_SIZE*sizeof(float));
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}
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}
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}
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}
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return aTmpChunk;
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}
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// The MediaStreamGraph guarantees that this is actually one block, for
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// AudioNodeStreams.
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void
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AudioNodeStream::ProduceOutput(GraphTime aFrom, GraphTime aTo)
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{
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StreamBuffer::Track* track = EnsureTrack();
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AudioChunk outputChunk;
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AudioSegment* segment = track->Get<AudioSegment>();
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outputChunk.SetNull(0);
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if (mInCycle) {
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// XXX DelayNode not supported yet so just produce silence
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outputChunk.SetNull(WEBAUDIO_BLOCK_SIZE);
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} else {
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AudioChunk tmpChunk;
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AudioChunk* inputChunk = ObtainInputBlock(&tmpChunk);
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bool finished = false;
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mEngine->ProduceAudioBlock(this, *inputChunk, &outputChunk, &finished);
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if (finished) {
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FinishOutput();
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}
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}
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mLastChunk = outputChunk;
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if (mKind == MediaStreamGraph::EXTERNAL_STREAM) {
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segment->AppendAndConsumeChunk(&outputChunk);
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} else {
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segment->AppendNullData(outputChunk.GetDuration());
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}
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for (uint32_t j = 0; j < mListeners.Length(); ++j) {
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MediaStreamListener* l = mListeners[j];
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AudioChunk copyChunk = outputChunk;
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AudioSegment tmpSegment;
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tmpSegment.AppendAndConsumeChunk(©Chunk);
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l->NotifyQueuedTrackChanges(Graph(), AUDIO_NODE_STREAM_TRACK_ID,
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IdealAudioRate(), segment->GetDuration(), 0,
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tmpSegment);
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}
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}
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TrackTicks
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AudioNodeStream::GetCurrentPosition()
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{
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return EnsureTrack()->Get<AudioSegment>()->GetDuration();
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}
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void
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AudioNodeStream::FinishOutput()
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{
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if (IsFinishedOnGraphThread()) {
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return;
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}
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StreamBuffer::Track* track = EnsureTrack();
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track->SetEnded();
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FinishOnGraphThread();
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for (uint32_t j = 0; j < mListeners.Length(); ++j) {
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MediaStreamListener* l = mListeners[j];
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AudioSegment emptySegment;
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l->NotifyQueuedTrackChanges(Graph(), AUDIO_NODE_STREAM_TRACK_ID,
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IdealAudioRate(),
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track->GetSegment()->GetDuration(),
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MediaStreamListener::TRACK_EVENT_ENDED, emptySegment);
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}
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}
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}
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