234 lines
6.2 KiB
C++
234 lines
6.2 KiB
C++
#include "dft.h"
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#include "tdr.h"
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#include "Traces/fftcomplex.h"
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#include "unit.h"
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#include "ui_dftdialog.h"
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#include "ui_dftexplanationwidget.h"
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#include "appwindow.h"
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#include <QDebug>
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using namespace std;
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Math::DFT::DFT()
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{
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automaticDC = true;
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DCfreq = 1000000000.0;
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destructing = false;
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thread = new DFTThread(*this);
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thread->start(TDRThread::Priority::LowestPriority);
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connect(&window, &WindowFunction::changed, this, &DFT::updateDFT);
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}
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Math::DFT::~DFT()
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{
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// tell thread to exit
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destructing = true;
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semphr.release();
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thread->wait();
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delete thread;
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}
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TraceMath::DataType Math::DFT::outputType(TraceMath::DataType inputType)
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{
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if(inputType == DataType::Time) {
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return DataType::Frequency;
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} else {
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return DataType::Invalid;
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}
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}
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QString Math::DFT::description()
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{
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QString ret = "DFT (";
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if(automaticDC) {
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ret += "automatic DC)";
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} else {
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ret += "DC:" + Unit::ToString(DCfreq, "Hz", " kMG", 6) + ")";
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}
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ret += ", window: " + window.getDescription();
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return ret;
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}
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void Math::DFT::edit()
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{
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auto d = new QDialog();
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auto ui = new Ui::DFTDialog;
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ui->setupUi(d);
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connect(d, &QDialog::finished, [=](){
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delete ui;
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});
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ui->windowBox->setLayout(new QVBoxLayout);
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ui->windowBox->layout()->addWidget(window.createEditor());
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connect(ui->DCautomatic, &QRadioButton::toggled, [=](bool automatic){
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automaticDC = automatic;
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ui->freq->setEnabled(!automatic);
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updateDFT();
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});
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if(automaticDC) {
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ui->DCautomatic->setChecked(true);
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} else {
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ui->DCmanual->setChecked(true);
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}
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ui->freq->setUnit("Hz");
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ui->freq->setPrecision(6);
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ui->freq->setPrefixes(" kMG");
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ui->freq->setValue(DCfreq);
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connect(ui->freq, &SIUnitEdit::valueChanged, [=](double newval){
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DCfreq = newval;
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updateDFT();
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});
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connect(ui->buttonBox, &QDialogButtonBox::accepted, d, &QDialog::accept);
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if(AppWindow::showGUI()) {
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d->show();
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}
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}
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QWidget *Math::DFT::createExplanationWidget()
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{
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auto w = new QWidget();
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auto ui = new Ui::DFTExplanationWidget;
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ui->setupUi(w);
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connect(w, &QWidget::destroyed, [=](){
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delete ui;
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});
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return w;
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}
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nlohmann::json Math::DFT::toJSON()
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{
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nlohmann::json j;
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j["automatic_DC"] = automaticDC;
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j["window"] = window.toJSON();
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if(!automaticDC) {
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j["DC"] = DCfreq;
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}
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return j;
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}
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void Math::DFT::fromJSON(nlohmann::json j)
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{
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automaticDC = j.value("automatic_DC", true);
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DCfreq = j.value("DC", 1000000000.0);
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if(j.contains("window")) {
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window.fromJSON(j["window"]);
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}
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}
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void Math::DFT::inputSamplesChanged(unsigned int begin, unsigned int end)
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{
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Q_UNUSED(end);
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if(input->rData().size() < 2) {
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// not enough input data
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data.clear();
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emit outputSamplesChanged(0, 0);
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warning("Not enough input samples");
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return;
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}
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// DFT is computationally expensive, only update at the end of sweep -> check if this is the first changed data in the next sweep
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if(begin != 0) {
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// not the end, do nothing
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return;
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}
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// trigger calculation in thread
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semphr.release();
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success();
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}
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void Math::DFT::updateDFT()
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{
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if(dataType != DataType::Invalid) {
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inputSamplesChanged(0, input->rData().size());
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}
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}
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Math::DFTThread::DFTThread(Math::DFT &dft)
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: dft(dft)
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{
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}
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void Math::DFTThread::run()
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{
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qDebug() << "DFT thread starting";
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while(1) {
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dft.semphr.acquire();
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// clear possible additional semaphores
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dft.semphr.tryAcquire(dft.semphr.available());
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if(dft.destructing) {
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// TDR object about to be deleted, exit thread
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qDebug() << "DFT thread exiting";
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return;
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}
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qDebug() << "DFT thread calculating";
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double DC = dft.DCfreq;
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TDR *tdr = nullptr;
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if(dft.automaticDC) {
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// find the last operation that transformed from the frequency domain to the time domain
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auto in = dft.input;
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while(in->getInput()->getDataType() != DFT::DataType::Frequency) {
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in = dft.input->getInput();
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}
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switch(in->getType()) {
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case DFT::Type::TDR: {
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tdr = static_cast<TDR*>(in);
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if(tdr->getMode() == TDR::Mode::Lowpass) {
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DC = 0;
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} else {
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// bandpass mode, assume DC is in the middle of the frequency data
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DC = tdr->getInput()->getSample(tdr->getInput()->numSamples()/2).x;
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}
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}
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break;
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default:
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// unknown, assume DC is in the middle of the frequency data
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DC = in->getInput()->getSample(in->getInput()->numSamples()/2).x;
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break;
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}
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}
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auto samples = dft.input->rData().size();
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auto timeSpacing = dft.input->rData()[1].x - dft.input->rData()[0].x;
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vector<complex<double>> timeDomain(samples);
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for(unsigned int i=0;i<samples;i++) {
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timeDomain.at(i) = dft.input->rData()[i].y;
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}
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Fft::shift(timeDomain, false);
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dft.window.apply(timeDomain);
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Fft::shift(timeDomain, true);
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Fft::transform(timeDomain, false);
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// shift DC bin into the middle
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Fft::shift(timeDomain, false);
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double binSpacing = 1.0 / (timeSpacing * timeDomain.size());
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dft.data.clear();
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int DCbin = timeDomain.size() / 2, startBin = 0;
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if(DC > 0) {
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dft.data.resize(timeDomain.size());
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} else {
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startBin = (timeDomain.size()+1) / 2;
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dft.data.resize(timeDomain.size()/2);
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}
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// reverse effect of frequency domain window function from TDR (if available)
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if(tdr) {
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tdr->getWindow().reverse(timeDomain);
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}
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for(int i = startBin;(unsigned int) i<timeDomain.size();i++) {
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auto freq = (i - DCbin) * binSpacing + DC;
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dft.data[i - startBin].x = round(freq);
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dft.data[i - startBin].y = timeDomain.at(i);
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}
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emit dft.outputSamplesChanged(0, dft.data.size());
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}
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}
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