- audio decoding chain improving
This commit is contained in:
@@ -571,6 +571,41 @@ size_t OpusCodec::plc(int lostPackets, std::span<uint8_t> output)
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return total;
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return total;
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}
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}
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size_t OpusCodec::fec(std::span<const uint8_t> nextPacket, std::span<uint8_t> output)
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{
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// Reconstruct the frame lost right before nextPacket from its LBRR data.
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// Needs an initialized decoder; the very first gap of a call (no packet
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// decoded yet) has none, so we bail and let the caller do silence/PLC.
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if (nextPacket.empty() || !mDecoderCtx || output.empty())
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return 0;
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// opus_decode(..., decode_fec=1) emits its audio at the decoder's channel
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// count. Only the matched-channel case is handled here; on a mismatch we
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// return 0 so decodeGapTo() falls back to plc() (which does convert).
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if (mDecoderChannels != channels())
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return 0;
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// The recovered frame is assumed to have the negotiated ptime - the same
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// assumption plc() makes. frame_size is samples-per-channel.
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int samples_per_channel = mPTime * mSamplerate / 1000;
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if (samples_per_channel <= 0)
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return 0;
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size_t needed = (size_t)samples_per_channel * sizeof(opus_int16) * channels();
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if (needed > output.size_bytes())
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return 0;
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// decode_fec = 1: pull the redundant copy of the previous frame. If nextPacket
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// carries no LBRR for it, Opus falls back to its own concealment internally,
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// so the result is never worse than plc().
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int decoded = opus_decode(mDecoderCtx, nextPacket.data(), nextPacket.size_bytes(),
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(opus_int16*)output.data(), samples_per_channel, 1);
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if (decoded <= 0)
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return 0;
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return (size_t)decoded * sizeof(opus_int16) * channels();
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}
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size_t OpusCodec::getNumberOfSamples(std::span<const uint8_t> payload)
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size_t OpusCodec::getNumberOfSamples(std::span<const uint8_t> payload)
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{
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{
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int r = opus_packet_get_nb_samples(payload.data(), payload.size(), mSamplerate);
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int r = opus_packet_get_nb_samples(payload.data(), payload.size(), mSamplerate);
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@@ -113,6 +113,7 @@ public:
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EncodeResult encode(std::span<const uint8_t> input, std::span<uint8_t> output) override;
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EncodeResult encode(std::span<const uint8_t> input, std::span<uint8_t> output) override;
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DecodeResult decode(std::span<const uint8_t> input, std::span<uint8_t> output) override;
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DecodeResult decode(std::span<const uint8_t> input, std::span<uint8_t> output) override;
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size_t plc(int lostFrames, std::span<uint8_t> output) override;
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size_t plc(int lostFrames, std::span<uint8_t> output) override;
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size_t fec(std::span<const uint8_t> nextPacket, std::span<uint8_t> output) override;
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size_t getNumberOfSamples(std::span<const uint8_t> payload);
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size_t getNumberOfSamples(std::span<const uint8_t> payload);
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};
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};
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@@ -348,6 +348,21 @@ std::chrono::milliseconds RtpBuffer::findTimelength()
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return r;
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return r;
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}
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}
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std::shared_ptr<RtpBuffer::Packet> RtpBuffer::peekFront() const
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{
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Lock l(mGuard);
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return mPacketList.empty() ? std::shared_ptr<Packet>() : mPacketList.front();
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}
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std::chrono::milliseconds RtpBuffer::bufferedTime() const
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{
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Lock l(mGuard);
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std::chrono::milliseconds r = 0ms;
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for (const auto& p: mPacketList)
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r += p->timelength();
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return r;
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}
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int RtpBuffer::getNumberOfReturnedPackets() const
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int RtpBuffer::getNumberOfReturnedPackets() const
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{
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{
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return mReturnedCounter;
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return mReturnedCounter;
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@@ -378,14 +393,23 @@ AudioReceiver::AudioReceiver(const CodecList::Settings& settings, MT::Statistics
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mDtmfBuffer.setLow(0ms);
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mDtmfBuffer.setLow(0ms);
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mDtmfBuffer.setHigh(1ms);
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mDtmfBuffer.setHigh(1ms);
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// Avoid collecting too much data
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// Jitter-buffer target delay. Diagnostics on bursty networks showed the buffer level
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mRtpBuffer.setHigh(240ms);
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// swinging ~140ms peak-to-trough and hitting BOTH rails within one call - starving
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// (underrun -> silence) and overflowing (trim -> drop) - with real packet loss near 1%.
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// Widened the window to give burst jitter more room: prebuffer/low-water raised so a
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// late clump arrives before starvation, and the high-water raised so the extra depth
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// is not immediately trimmed back off.
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mRtpBuffer.setHigh(360ms);
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// Keep a non-zero low-water cushion. With low-water at 0 the buffer drains all the way to
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// Prebuffer: initial fill before the first packet is released (also the depth we aim to
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// empty before reacting, so ordinary clock drift / jitter periodically starves the decoder
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// hold). Was the RTP_BUFFER_PREBUFFER default (100ms); set explicitly alongside low-water.
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// and forces silence/PLC insertion (heard as periodic artifacts, uncounted by rtp_lost /
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mRtpBuffer.setPrebuffer(120ms);
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// rtp_dropped). Holding ~60ms lets a late packet arrive before the buffer underruns.
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mRtpBuffer.setLow(60ms);
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// Low-water cushion. With low-water at 0 the buffer drains to empty before reacting, so
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// ordinary clock drift / jitter periodically starves the decoder and forces silence/PLC
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// insertion (heard as periodic artifacts, uncounted by rtp_lost / rtp_dropped). Holding
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// ~120ms lets a late packet clump arrive before the buffer underruns.
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mRtpBuffer.setLow(120ms);
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// Resamplers are lazy inside; there is no actual memory allocation
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// Resamplers are lazy inside; there is no actual memory allocation
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mResampler8.start(AUDIO_CHANNELS, 8000, AUDIO_SAMPLERATE);
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mResampler8.start(AUDIO_CHANNELS, 8000, AUDIO_SAMPLERATE);
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@@ -620,21 +644,60 @@ AudioReceiver::DecodeResult AudioReceiver::decodeGapTo(Audio::DataWindow& output
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else
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else
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if (mCodec && mFrameCount && !mCodecSettings.mSkipDecode)
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if (mCodec && mFrameCount && !mCodecSettings.mSkipDecode)
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{
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{
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// Do PLC to mDecodedFrame/mDecodedLength
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// Conceal the gap into mDecodedFrame/mDecodedLength.
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if (options.mSkipDecode)
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if (options.mSkipDecode)
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mDecodedLength = 0;
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mDecodedLength = 0;
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else
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else
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{
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{
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mDecodedLength = mCodec->plc(mFrameCount, {(uint8_t*)mDecodedFrame.data(), mDecodedFrame.size() * sizeof(int16_t)});
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std::span<uint8_t> concealBuffer{(uint8_t*)mDecodedFrame.data(), mDecodedFrame.size() * sizeof(int16_t)};
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mDecodedLength = 0;
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// In-band FEC first: the packet sitting past the gap (still at the front
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// of the jitter buffer - fetch() leaves it there on a Gap) may carry a
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// redundant copy of the frame we just lost. Recover it exactly instead of
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// synthesising it. Only attempt this when that packet decodes with the
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// very same codec instance we have been using.
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if (auto next = mRtpBuffer.peekFront(); next && next->rtp())
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{
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auto codecIter = mCodecMap.find(next->rtp()->GetPayloadType());
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if (codecIter != mCodecMap.end() && codecIter->second == mCodec)
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{
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mDecodedLength = mCodec->fec({next->rtp()->GetPayloadData(), (size_t)next->rtp()->GetPayloadLength()},
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concealBuffer);
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}
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}
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// No FEC available (unsupported codec, no redundant data, or no next
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// packet yet): fall back to the codec's own concealment.
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if (!mDecodedLength)
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mDecodedLength = mCodec->plc(mFrameCount, concealBuffer);
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if (!mDecodedLength)
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if (!mDecodedLength)
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{
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{
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// PLC is not support or failed
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// PLC unsupported or failed - substitute one frame of silence.
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// So substitute the silence
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size_t frameBytes = (size_t)mCodec->frameTime() * mCodec->samplerate() / 1000
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size_t nr_of_samples = mCodec->frameTime() * mCodec->samplerate() / 1000 * sizeof(short);
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* sizeof(short) * std::max(1, mCodec->channels());
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mDecodedLength = nr_of_samples * sizeof(short);
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frameBytes = std::min(frameBytes, concealBuffer.size_bytes());
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mDecodedLength = frameBytes;
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memset(mDecodedFrame.data(), 0, mDecodedLength);
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memset(mDecodedFrame.data(), 0, mDecodedLength);
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}
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}
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}
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}
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// Fix double-concealment: fetch() advanced mLastSeqno across the gap but not
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// mLastPacketTimestamp, so without this the next real packet's timestamp-gap
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// check in decodePacketTo() would pad the same span again with silence (gap
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// concealed twice - once here as FEC/PLC, once there as silence). Advance the
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// expected-timestamp cursor past the last real packet and record the audio we
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// just produced as the new "last unit", so decodePacketTo() fills only whatever
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// gap remains beyond it.
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if (mDecodedLength && mLastPacketTimestamp && mCodec)
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{
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int sr = mCodec->samplerate();
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int chans = std::max(1, mCodec->channels());
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*mLastPacketTimestamp += (uint32_t)(mLastPacketTimeLength * (sr / 1000));
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int concealedSamples = (int)(mDecodedLength / (sizeof(short) * chans));
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mLastPacketTimeLength = concealedSamples * 1000 / sr;
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}
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}
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}
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if (mDecodedLength)
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if (mDecodedLength)
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@@ -807,7 +870,14 @@ AudioReceiver::DecodeResult AudioReceiver::decodeEmptyTo(Audio::DataWindow& outp
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// Emit silence if codec information is available - it is to properly handle the gaps
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// Emit silence if codec information is available - it is to properly handle the gaps
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auto avail = output.getTimeLength(fmt);
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auto avail = output.getTimeLength(fmt);
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if (options.mElapsed > avail)
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if (options.mElapsed > avail)
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{
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// Genuine decoder starvation: the buffer drained below low-water with no
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// packet (and no CNG) to play, so we fill the timeline with silence. Count
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// it for the heartbeat - this is the signature of jitter/clock-drift
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// underruns that carry no packet-loss.
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output.addZero(fmt.sizeFromTime(options.mElapsed - avail));
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output.addZero(fmt.sizeFromTime(options.mElapsed - avail));
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mUnderrunCount++;
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}
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}
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}
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}
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}
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@@ -825,6 +895,42 @@ void MT::AudioReceiver::processDtmf()
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}
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}
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}
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}
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void MT::AudioReceiver::logReceiveHeartbeat()
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{
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float t = now_ms();
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if (mStatLogLast == 0.0f)
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{
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// First call - just latch the baselines, nothing to report yet.
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mStatLogLast = t;
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mStatLossLast = mStat.mPacketLoss;
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mStatDropLast = mStat.mPacketDropped;
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return;
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}
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if (t - mStatLogLast < 5000.0f)
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return;
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// Deltas over the elapsed window. Loss = missing sequence numbers seen on fetch;
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// dropped = packets discarded by the high-water trim (late/overflow), which is
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// NOT network loss; underruns = decoder starvation (buffer under low-water) that
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// forced silence. These three separate the candidate impairment causes.
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size_t lossDelta = mStat.mPacketLoss - mStatLossLast;
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size_t dropDelta = mStat.mPacketDropped - mStatDropLast;
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ICELogInfo(<< "[rx-heartbeat] buffered=" << mRtpBuffer.bufferedTime().count() << "ms"
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<< " packets=" << mRtpBuffer.getCount()
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<< " underruns/5s=" << mUnderrunCount
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<< " gaps/5s=" << mGapCount
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<< " loss/5s=" << lossDelta
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<< " dropped/5s=" << dropDelta);
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mStatLogLast = t;
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mUnderrunCount = 0;
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mGapCount = 0;
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mStatLossLast = mStat.mPacketLoss;
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mStatDropLast = mStat.mPacketDropped;
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}
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void MT::AudioReceiver::updateDecodingTimeStatistics()
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void MT::AudioReceiver::updateDecodingTimeStatistics()
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{
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{
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if (!mDecodeTimestamp)
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if (!mDecodeTimestamp)
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@@ -887,7 +993,7 @@ AudioReceiver::DecodeResult AudioReceiver::getAudioTo(Audio::DataWindow& output,
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// Decode to mAvailable buffer
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// Decode to mAvailable buffer
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switch (fr.mStatus)
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switch (fr.mStatus)
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{
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{
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case RtpBuffer::FetchResult::Status::Gap: result = decodeGapTo(mAvailable, options.decreaseElapsedBy(produced)); break;
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case RtpBuffer::FetchResult::Status::Gap: mGapCount++; result = decodeGapTo(mAvailable, options.decreaseElapsedBy(produced)); break;
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case RtpBuffer::FetchResult::Status::NoPacket: result = decodeEmptyTo(mAvailable, options.decreaseElapsedBy(produced)); break;
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case RtpBuffer::FetchResult::Status::NoPacket: result = decodeEmptyTo(mAvailable, options.decreaseElapsedBy(produced)); break;
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case RtpBuffer::FetchResult::Status::RegularPacket: result = decodePacketTo(mAvailable, options.decreaseElapsedBy(produced), fr.mPacket); updateDecodeIntervalStatistics(); break;
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case RtpBuffer::FetchResult::Status::RegularPacket: result = decodePacketTo(mAvailable, options.decreaseElapsedBy(produced), fr.mPacket); updateDecodeIntervalStatistics(); break;
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default:
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default:
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@@ -921,6 +1027,8 @@ AudioReceiver::DecodeResult AudioReceiver::getAudioTo(Audio::DataWindow& output,
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mProducedAudio += produced;
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mProducedAudio += produced;
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// ICELogDebug(<< "Requested " << options.mElapsed << ", produced " << produced << ", remains " << mAvailable.getTimeLength(fmt) << ", packets " << getRtpBuffer().getCount());
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// ICELogDebug(<< "Requested " << options.mElapsed << ", produced " << produced << ", remains " << mAvailable.getTimeLength(fmt) << ", packets " << getRtpBuffer().getCount());
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logReceiveHeartbeat();
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return result;
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return result;
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}
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}
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@@ -106,6 +106,17 @@ public:
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FetchResult fetch();
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FetchResult fetch();
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// Return the oldest buffered packet without removing it, or nullptr when empty.
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// After fetch() reports a Gap the post-gap packet stays at the front, so this
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// lets the decoder peek at it (e.g. to pull Opus in-band FEC) before it is
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// fetched and decoded normally on the next call.
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std::shared_ptr<Packet> peekFront() const;
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// Thread-safe snapshot of the currently buffered audio duration. Same value as
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// findTimelength() but taken under the buffer lock, safe to call from the audio
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// thread while the network thread adds packets (used by the diagnostic heartbeat).
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std::chrono::milliseconds bufferedTime() const;
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// Drop oldest packets so buffered audio stays within the high-water mark,
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// Drop oldest packets so buffered audio stays within the high-water mark,
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// recording packet-loss events for any sequence gaps crossed (the same
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// recording packet-loss events for any sequence gaps crossed (the same
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// accounting fetch() performs). Used to bound memory on streams that never
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// accounting fetch() performs). Used to bound memory on streams that never
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@@ -327,6 +338,16 @@ protected:
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size_t mDecodeCount = 0;
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size_t mDecodeCount = 0;
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void updateDecodeIntervalStatistics();
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void updateDecodeIntervalStatistics();
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// --- Step 0 diagnostics: periodic receive-path heartbeat ---
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// Emits jitter-buffer fill level, starvation (underrun) count, gap/loss/drop
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// deltas every ~5 s so we can tell which impairment mechanism dominates a call.
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float mStatLogLast = 0.0f; // now_ms() of last heartbeat; 0 = not started
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size_t mUnderrunCount = 0; // silence insertions on an empty/starved buffer since last log
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size_t mGapCount = 0; // gap (loss) concealment events since last log
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size_t mStatLossLast = 0; // mStat.mPacketLoss at last heartbeat
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size_t mStatDropLast = 0; // mStat.mPacketDropped at last heartbeat
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void logReceiveHeartbeat();
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};
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};
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}
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}
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@@ -88,6 +88,13 @@ public:
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// Returns size of produced data (PCM signed short) in bytes
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// Returns size of produced data (PCM signed short) in bytes
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virtual size_t plc(int lostFrames, std::span<uint8_t> output) = 0;
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virtual size_t plc(int lostFrames, std::span<uint8_t> output) = 0;
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// In-band forward error correction. Reconstructs the single frame lost
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// immediately before nextPacket, using the redundant (LBRR) copy that
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// nextPacket may carry. Returns the number of PCM bytes written to output,
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// or 0 when the codec has no in-band FEC or no redundant data was present
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// (in which case the caller should fall back to plc()). Default: unsupported.
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virtual size_t fec(std::span<const uint8_t> nextPacket, std::span<uint8_t> output) { return 0; }
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};
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};
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}
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}
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#endif
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#endif
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Reference in New Issue
Block a user