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			347 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			347 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
///////////////////////////////////////////////////////////////////////////////////
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// Copyright (C) 2019 Edouard Griffiths, F4EXB                                   //
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// Copyright (C) 2021 Jon Beniston, M7RCE                                        //
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//                                                                               //
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// This program is free software; you can redistribute it and/or modify          //
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// it under the terms of the GNU General Public License as published by          //
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// the Free Software Foundation as version 3 of the License, or                  //
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// (at your option) any later version.                                           //
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//                                                                               //
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// This program is distributed in the hope that it will be useful,               //
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// but WITHOUT ANY WARRANTY; without even the implied warranty of                //
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the                  //
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// GNU General Public License V3 for more details.                               //
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//                                                                               //
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// You should have received a copy of the GNU General Public License             //
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// along with this program. If not, see <http://www.gnu.org/licenses/>.          //
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///////////////////////////////////////////////////////////////////////////////////
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#include <QDebug>
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#include <complex.h>
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#include "dsp/dspengine.h"
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#include "dsp/datafifo.h"
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#include "util/db.h"
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#include "util/stepfunctions.h"
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#include "maincore.h"
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#include "packetdemod.h"
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#include "packetdemodsink.h"
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PacketDemodSink::PacketDemodSink(PacketDemod *packetDemod) :
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        m_packetDemod(packetDemod),
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        m_channelSampleRate(PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE),
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        m_channelFrequencyOffset(0),
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        m_magsqSum(0.0f),
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        m_magsqPeak(0.0f),
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        m_magsqCount(0),
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        m_messageQueueToChannel(nullptr),
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        m_f1(nullptr),
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        m_f0(nullptr),
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        m_corrBuf(nullptr),
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        m_corrIdx(0),
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        m_corrCnt(0)
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{
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    m_magsq = 0.0;
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    m_demodBuffer.resize(1<<12);
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    m_demodBufferFill = 0;
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    applySettings(m_settings, true);
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    applyChannelSettings(m_channelSampleRate, m_channelFrequencyOffset, true);
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}
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PacketDemodSink::~PacketDemodSink()
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{
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    delete[] m_f1;
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    delete[] m_f0;
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    delete[] m_corrBuf;
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}
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void PacketDemodSink::feed(const SampleVector::const_iterator& begin, const SampleVector::const_iterator& end)
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{
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    Complex ci;
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    for (SampleVector::const_iterator it = begin; it != end; ++it)
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    {
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        Complex c(it->real(), it->imag());
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        c *= m_nco.nextIQ();
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        if (m_interpolatorDistance < 1.0f) // interpolate
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        {
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            while (!m_interpolator.interpolate(&m_interpolatorDistanceRemain, c, &ci))
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            {
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                processOneSample(ci);
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                m_interpolatorDistanceRemain += m_interpolatorDistance;
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            }
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        }
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        else // decimate
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        {
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            if (m_interpolator.decimate(&m_interpolatorDistanceRemain, c, &ci))
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            {
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                processOneSample(ci);
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                m_interpolatorDistanceRemain += m_interpolatorDistance;
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            }
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        }
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    }
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}
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void PacketDemodSink::processOneSample(Complex &ci)
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{
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    Complex ca;
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    // FM demodulation
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    double magsqRaw;
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    Real deviation;
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    Real fmDemod = m_phaseDiscri.phaseDiscriminatorDelta(ci, magsqRaw, deviation);
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    // Calculate average and peak levels for level meter
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    Real magsq = magsqRaw / (SDR_RX_SCALED*SDR_RX_SCALED);
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    m_movingAverage(magsq);
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    m_magsq = m_movingAverage.asDouble();
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    m_magsqSum += magsq;
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    if (magsq > m_magsqPeak)
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    {
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        m_magsqPeak = magsq;
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    }
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    m_magsqCount++;
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    m_corrBuf[m_corrIdx] = fmDemod;
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    if (m_corrCnt >= m_correlationLength)
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    {
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        // Correlate with 1200 + 2200 baud complex exponentials
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        Complex corrF0 = 0.0f;
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        Complex corrF1 = 0.0f;
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        for (int i = 0; i < m_correlationLength; i++)
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        {
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            int j = m_corrIdx - i;
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            if (j < 0)
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                j += m_correlationLength;
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            corrF0 += m_f0[i] * m_corrBuf[j];
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            corrF1 += m_f1[i] * m_corrBuf[j];
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        }
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        m_corrCnt--; // Avoid overflow in increment below
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        // Low pass filter, to minimize changes above the baud rate
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        Real f0Filt = m_lowpassF0.filter(std::abs(corrF0));
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        Real f1Filt = m_lowpassF1.filter(std::abs(corrF1));
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        // Determine which is the closest match and then quantise to 1 or -1
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        // FIXME: We should try to account for the fact that higher frequencies can have preemphasis
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        float diff = f1Filt - f0Filt;
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        int sample = diff >= 0.0f ? 1 : 0;
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        // Look for edge
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        if (sample != m_samplePrev)
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        {
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            m_syncCount = PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE/m_settings.getBaudRate()/2;
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        }
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        else
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        {
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            m_syncCount--;
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            if (m_syncCount <= 0)
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            {
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                // HDLC deframing
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                // Should be in the middle of the symbol
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                // NRZI decoding
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                int bit;
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                if (sample != m_symbolPrev)
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                    bit = 0;
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                else
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                    bit = 1;
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                m_symbolPrev = sample;
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                // Store in shift reg
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                m_bits |= bit << m_bitCount;
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                m_bitCount++;
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                if (bit == 1)
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                {
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                    m_onesCount++;
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                    // Shouldn't ever get 7 1s in a row
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                    if ((m_onesCount == 7) && m_gotSOP)
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                    {
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                        m_gotSOP = false;
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                        m_byteCount = 0;
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                    }
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                }
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                else if (bit == 0)
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                {
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                    if (m_onesCount == 5)
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                    {
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                        // Remove bit-stuffing (5 1s followed by a 0)
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                        m_bitCount--;
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                    }
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                    else if (m_onesCount == 6)
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                    {
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                        // Start/end of packet
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                        if ((m_bitCount == 8) && (m_bits == 0x7e) && (m_byteCount > 0))
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                        {
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                            // End of packet
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                            // Check CRC is valid
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                            m_crc.init();
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                            m_crc.calculate(m_bytes, m_byteCount - 2);
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                            uint16_t calcCrc = m_crc.get();
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                            uint16_t rxCrc = m_bytes[m_byteCount-2] | (m_bytes[m_byteCount-1] << 8);
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                            if (calcCrc == rxCrc)
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                            {
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                                QByteArray rxPacket((char *)m_bytes, m_byteCount);
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                                qDebug() << "RX: " << rxPacket.toHex();
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                                if (getMessageQueueToChannel())
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                                {
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                                    MainCore::MsgPacket *msg = MainCore::MsgPacket::create(m_packetDemod, rxPacket, QDateTime::currentDateTime()); // FIXME pointer
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                                    getMessageQueueToChannel()->push(msg);
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                                }
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                            }
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                            else
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                                qDebug() << QString("PacketDemodSink::processOneSample: CRC mismatch: %1 %2")
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                                    .arg(calcCrc, 4, 16,  QLatin1Char('0'))
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                                    .arg(rxCrc, 4, 16, QLatin1Char('0'));
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                            // Reset state to start receiving next packet
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                            m_gotSOP = false;
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                            m_bits = 0;
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                            m_bitCount = 0;
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                            m_byteCount = 0;
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                        }
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                        else
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                        {
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                            // Start of packet
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                            m_gotSOP = true;
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                            m_bits = 0;
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                            m_bitCount = 0;
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                            m_byteCount = 0;
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                        }
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                    }
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                    m_onesCount = 0;
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                }
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                if (m_gotSOP)
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                {
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                    if (m_bitCount == 8)
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                    {
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                        if (m_byteCount >= 512)
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                        {
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                            // Too many bytes
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                            m_gotSOP = false;
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                            m_byteCount = 0;
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                        }
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                        else
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                        {
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                            m_bytes[m_byteCount] = m_bits;
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                            m_byteCount++;
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                        }
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                        m_bits = 0;
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                        m_bitCount = 0;
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                    }
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                }
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                m_syncCount = PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE/m_settings.getBaudRate();
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            }
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        }
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        m_samplePrev = sample;
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    }
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    m_corrIdx = (m_corrIdx + 1) % m_correlationLength;
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    m_corrCnt++;
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    m_demodBuffer[m_demodBufferFill++] = fmDemod * std::numeric_limits<int16_t>::max();
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    if (m_demodBufferFill >= m_demodBuffer.size())
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    {
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        QList<ObjectPipe*> dataPipes;
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        MainCore::instance()->getDataPipes().getDataPipes(m_channel, "demod", dataPipes);
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        if (dataPipes.size() > 0)
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        {
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            QList<ObjectPipe*>::iterator it = dataPipes.begin();
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            for (; it != dataPipes.end(); ++it)
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            {
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                DataFifo *fifo = qobject_cast<DataFifo*>((*it)->m_element);
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                if (fifo) {
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                    fifo->write((quint8*) &m_demodBuffer[0], m_demodBuffer.size() * sizeof(qint16), DataFifo::DataTypeI16);
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                }
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            }
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        }
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        m_demodBufferFill = 0;
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    }
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}
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void PacketDemodSink::applyChannelSettings(int channelSampleRate, int channelFrequencyOffset, bool force)
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{
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    qDebug() << "PacketDemodSink::applyChannelSettings:"
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            << " channelSampleRate: " << channelSampleRate
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            << " channelFrequencyOffset: " << channelFrequencyOffset;
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    if ((m_channelFrequencyOffset != channelFrequencyOffset) ||
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        (m_channelSampleRate != channelSampleRate) || force)
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    {
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        m_nco.setFreq(-channelFrequencyOffset, channelSampleRate);
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    }
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    if ((m_channelSampleRate != channelSampleRate) || force)
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    {
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        m_interpolator.create(16, channelSampleRate, m_settings.m_rfBandwidth / 2.2);
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        m_interpolatorDistance = (Real) channelSampleRate / (Real) PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE;
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        m_interpolatorDistanceRemain = m_interpolatorDistance;
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    }
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    m_channelSampleRate = channelSampleRate;
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    m_channelFrequencyOffset = channelFrequencyOffset;
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}
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void PacketDemodSink::applySettings(const PacketDemodSettings& settings, bool force)
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{
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    qDebug() << "PacketDemodSink::applySettings:"
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            << " force: " << force;
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    if ((settings.m_rfBandwidth != m_settings.m_rfBandwidth) || force)
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    {
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        m_interpolator.create(16, m_channelSampleRate, settings.m_rfBandwidth / 2.2);
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        m_interpolatorDistance = (Real) m_channelSampleRate / (Real) PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE;
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        m_interpolatorDistanceRemain = m_interpolatorDistance;
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        m_lowpass.create(301, PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE, settings.m_rfBandwidth / 2.0f);
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    }
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    if ((settings.m_fmDeviation != m_settings.m_fmDeviation) || force)
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    {
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        m_phaseDiscri.setFMScaling(PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE / (2.0f * settings.m_fmDeviation));
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    }
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    if (force)
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    {
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        delete[] m_f1;
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        delete[] m_f0;
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        delete[] m_corrBuf;
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        m_correlationLength = PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE/settings.getBaudRate();
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        m_f1 = new Complex[m_correlationLength]();
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        m_f0 = new Complex[m_correlationLength]();
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        m_corrBuf = new Complex[m_correlationLength]();
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        m_corrIdx = 0;
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        m_corrCnt = 0;
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        Real f0 = 0.0f;
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        Real f1 = 0.0f;
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        for (int i = 0; i < m_correlationLength; i++)
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        {
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            m_f0[i] = Complex(cos(f0), sin(f0));
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            m_f1[i] = Complex(cos(f1), sin(f1));
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            f0 += 2.0f*(Real)M_PI*2200.0f/PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE;
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            f1 += 2.0f*(Real)M_PI*1200.0f/PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE;
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        }
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        m_lowpassF1.create(301, PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE, settings.getBaudRate() * 1.1f);
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        m_lowpassF0.create(301, PacketDemodSettings::PACKETDEMOD_CHANNEL_SAMPLE_RATE, settings.getBaudRate() * 1.1f);
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        m_samplePrev = 0;
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        m_syncCount = 0;
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        m_symbolPrev = 0;
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        m_bits = 0;
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        m_bitCount = 0;
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        m_onesCount = 0;
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        m_gotSOP = false;
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        m_byteCount = 0;
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    }
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    m_settings = settings;
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}
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