js8call/plotter.cpp
2024-09-13 06:16:09 -07:00

891 lines
22 KiB
C++

#include "plotter.h"
#include <QDebug>
#include <QMouseEvent>
#include <QPainter>
#include <QPen>
#include <QToolTip>
#include <QWheelEvent>
#include "commons.h"
#include "moc_plotter.cpp"
#include <algorithm>
#include <fstream>
#include <iostream>
#include "DriftingDateTime.h"
#include "varicode.h"
#define MAX_SCREENSIZE 2048
extern "C" {
void flat4_(float swide[], int* iz, int* nflatten);
void plotsave_(float swide[], int* m_w , int* m_h1, int* irow);
}
namespace
{
constexpr std::size_t VERT_DIVS = 7;
qint32
freqPerDiv(float const fSpan)
{
if (fSpan > 2500) { return 500; }
if (fSpan > 1000) { return 200; }
if (fSpan > 500) { return 100; }
if (fSpan > 250) { return 50; }
if (fSpan > 100) { return 20; }
return 10;
}
double
fftBinWidth(qint32 const nsps)
{
switch (nsps)
{
case 252000: return 1500.0 / 32768.0;
case 82944: return 1500.0 / 12288.0;
case 40960: return 1500.0 / 6144.0;
default: return 1500.0 / 2048.0;
}
}
float
bw(qint32 const nSubMode)
{
switch (nSubMode)
{
case Varicode::JS8CallNormal: return 8.0 * (double)RX_SAMPLE_RATE / (double)JS8A_SYMBOL_SAMPLES;
case Varicode::JS8CallFast: return 8.0 * (double)RX_SAMPLE_RATE / (double)JS8B_SYMBOL_SAMPLES;
case Varicode::JS8CallTurbo: return 8.0 * (double)RX_SAMPLE_RATE / (double)JS8C_SYMBOL_SAMPLES;
case Varicode::JS8CallSlow: return 8.0 * (double)RX_SAMPLE_RATE / (double)JS8E_SYMBOL_SAMPLES;
case Varicode::JS8CallUltra: return 8.0 * (double)RX_SAMPLE_RATE / (double)JS8I_SYMBOL_SAMPLES;
default: return 0;
}
}
}
CPlotter::CPlotter(QWidget *parent) : //CPlotter Constructor
QFrame {parent},
m_set_freq_action {new QAction {tr ("&Set Rx && Tx Offset"), this}},
m_bScaleOK {false},
m_bReference {false},
m_bReference0 {false},
m_fSpan {2000.0},
m_plotZero {0},
m_plotGain {0},
m_plot2dGain {0},
m_plot2dZero {0},
m_nSubMode {0},
m_filterEnabled{false},
m_filterCenter {0},
m_filterWidth {0},
m_turbo {false},
m_Running {false},
m_paintEventBusy {false},
m_fftBinWidth {1500.0/2048.0},
m_dialFreq {0.},
m_sum {},
m_line {0},
m_nsps {6912},
m_Percent2DScreen {0}, //percent of screen used for 2D display
m_Percent2DScreen0 {0},
m_rxFreq {1020},
m_txFreq {0},
m_startFreq {0},
m_lastMouseX {-1}
{
setSizePolicy(QSizePolicy::Expanding, QSizePolicy::Expanding);
setFocusPolicy(Qt::StrongFocus);
setAttribute(Qt::WA_PaintOnScreen,false);
setAutoFillBackground(false);
setAttribute(Qt::WA_OpaquePaintEvent, false);
setAttribute(Qt::WA_NoSystemBackground, true);
m_bReplot=false;
setMouseTracking(true);
}
CPlotter::~CPlotter() = default;
QSize CPlotter::minimumSizeHint() const
{
return QSize(50, 50);
}
QSize CPlotter::sizeHint() const
{
return QSize(180, 180);
}
void CPlotter::resizeEvent(QResizeEvent *) //resizeEvent()
{
if (!size().isValid()) return;
if ((m_Size != size()) ||
(m_bReference != m_bReference0) ||
(m_Percent2DScreen != m_Percent2DScreen0))
{
m_Size = size();
m_w = m_Size.width();
m_h = m_Size.height();
m_h2 = m_Percent2DScreen * m_h / 100.0;
if (m_h2 > m_h - 30) m_h2 = m_h - 30;
if (m_bReference ) m_h2 = m_h - 30;
if (m_h2 < 1) m_h2 = 1;
m_h1 = m_h - m_h2;
// m_line=0;
m_FilterOverlayPixmap = QPixmap(m_Size);
m_FilterOverlayPixmap.fill(Qt::transparent);
m_DialOverlayPixmap = QPixmap(m_Size);
m_DialOverlayPixmap.fill(Qt::transparent);
m_HoverOverlayPixmap = QPixmap(m_Size);
m_HoverOverlayPixmap.fill(Qt::transparent);
m_2DPixmap = QPixmap(m_w, m_h2);
m_2DPixmap.fill(Qt::black);
m_WaterfallPixmap = QPixmap(m_w, m_h1);
m_WaterfallPixmap.fill(Qt::black);
m_OverlayPixmap = QPixmap(m_w, m_h2);
m_OverlayPixmap.fill(Qt::black);
// Address scale font looking terrible, since it's drawn into this
// intermediate pixmap, so if we don't scale it to match the device,
// the text will look pixelated.
//
// Same is true of the decode lines in the waterfall; they look
// pixelated, but the fix doesn't appear to be straightforward, and
// it's arguably an effect there, a bit like a Tektronix display.
m_ScalePixmap = QPixmap(QSize(m_w, 30) * devicePixelRatio());
m_ScalePixmap.setDevicePixelRatio(devicePixelRatio());
m_ScalePixmap.fill(Qt::white);
m_Percent2DScreen0 = m_Percent2DScreen;
}
DrawOverlay();
}
void CPlotter::paintEvent(QPaintEvent *) // paintEvent()
{
if (m_paintEventBusy) return;
m_paintEventBusy = true;
QPainter painter(this);
painter.drawPixmap(0,0,m_ScalePixmap);
painter.drawPixmap(0,30,m_WaterfallPixmap);
painter.drawPixmap(0,m_h1,m_2DPixmap);
int const x = XfromFreq(m_rxFreq);
painter.drawPixmap(x,0,m_DialOverlayPixmap);
if (m_lastMouseX >= 0 && m_lastMouseX != x)
{
painter.drawPixmap(m_lastMouseX, 0, m_HoverOverlayPixmap);
}
if (m_filterEnabled && m_filterWidth > 0)
{
painter.drawPixmap(0, 0, m_FilterOverlayPixmap);
}
m_paintEventBusy = false;
}
void CPlotter::draw(float swide[], bool bScroll, bool)
{
double fac = sqrt(m_binsPerPixel * m_waterfallAvg / 15.0);
double gain = fac * pow(10.0, 0.015 * m_plotGain);
double gain2d = pow(10.0, 0.02 * m_plot2dGain);
float y2;
float ymin;
int j;
int j0;
if(m_bReference != m_bReference0) resizeEvent(nullptr);
m_bReference0 = m_bReference;
// Move current data down one line (must do this before attaching a QPainter object)
if(bScroll && !m_bReplot)
{
m_WaterfallPixmap.scroll(0, 1, m_WaterfallPixmap.rect());
}
QPainter painter1(&m_WaterfallPixmap);
m_2DPixmap = m_OverlayPixmap.copy();
QPainter painter2D(&m_2DPixmap);
if(!painter2D.isActive()) return;
painter2D.setFont({"Arial", 12});
if (m_bLinearAvg) { painter2D.setPen(Qt::yellow); }
else if(m_bReference) { painter2D.setPen(Qt::blue); }
else { painter2D.setPen(Qt::green); }
static QPoint LineBuf[MAX_SCREENSIZE];
j = 0;
j0 = int(m_startFreq/m_fftBinWidth + 0.5);
int iz = XfromFreq(5000.0);
m_fMax = FreqfromX(iz);
if(bScroll && swide[0] < 1.e29)
{
flat4_(swide, &iz, &m_Flatten);
}
ymin = 1.e30f;
if(swide[0] > 1.e29 && swide[0] < 1.5e30) painter1.setPen(Qt::green); // horizontal line
if(swide[0] > 1.4e30 ) painter1.setPen(Qt::yellow);
if(!m_bReplot)
{
m_j = 0;
int irow = -1;
plotsave_(swide, &m_w, &m_h1, &irow);
}
for(int i = 0; i < iz; i++)
{
float const y = swide[i];
if (y < ymin) ymin = y;
int const y1 = std::clamp(static_cast<int>(10.0 * gain * y + m_plotZero), 0, 254);
if (swide[i] < 1.e29) painter1.setPen(g_ColorTbl[y1]);
painter1.drawPoint(i,m_j);
}
m_line++;
float y2min = 1.e30f;
float y2max = -1.e30f;
for (int i = 0; i < iz; i++)
{
float const y = swide[i] - ymin;
y2 = 0;
if (m_bCurrent) y2 = gain2d * y + m_plot2dZero; //Current
if(bScroll)
{
float sum = 0.0f;
int k = j0 + m_binsPerPixel * i;
for (int l = 0; l < m_binsPerPixel; l++)
{
sum += dec_data.savg[k++];
}
m_sum[i] = sum;
}
if (m_bCumulative ) y2 = gain2d * (m_sum[i] / m_binsPerPixel + m_plot2dZero);
if (m_Flatten == 0) y2 += 15; //### could do better! ###
if (m_bLinearAvg) //Linear Avg (yellow)
{
float sum = 0.0f;
int k = j0 + m_binsPerPixel * i;
for (int l = 0; l < m_binsPerPixel; l++)
{
sum+=spectra_.syellow[k++];
}
y2 = gain2d * sum / m_binsPerPixel + m_plot2dZero;
}
if(m_bReference) //Reference (red)
{
float const df_ref = 12000.0f / 6912.0f;
int const k = FreqfromX(i) / df_ref + 0.5;
y2 = spectra_.ref[k] + m_plot2dZero;
}
if (i == iz - 1)
{
painter2D.drawPolyline(LineBuf, j);
}
LineBuf[j].setX(i);
LineBuf[j].setY(int(0.9 * m_h2 - y2 * m_h2 / 70.0));
if (y2 < y2min) y2min = y2;
if (y2 > y2max) y2max = y2;
j++;
}
if(m_bReplot) return;
if (swide[0] > 1.0e29) m_line = 0;
if (m_line == painter1.fontMetrics().height())
{
qint64 const ms = DriftingDateTime::currentMSecsSinceEpoch() % 86400000;
int const n = (ms/1000) % m_TRperiod;
auto const t1 = DriftingDateTime::currentDateTimeUtc().addSecs(-n);
auto const ts = t1.toString(m_TRperiod < 60 ? "hh:mm:ss" : "hh:mm");
painter1.setPen(Qt::white);
painter1.drawText(5,
painter1.fontMetrics().ascent(),
QString("%1 %2").arg(ts).arg(m_rxBand));
}
if(m_mode == "JT4" || m_mode== "QRA64") //Mark freqs of JT4 single-tone msgs
{
int const y = 0.2 * m_h2;
painter2D.setFont({"Arial", 12, QFont::Bold});
painter2D.setPen(Qt::yellow);
painter2D.drawText(XfromFreq(m_rxFreq ) - 4, y, "T");
painter2D.drawText(XfromFreq(m_rxFreq + 250) - 4, y, "M");
painter2D.drawText(XfromFreq(m_rxFreq + 500) - 4, y, "R");
painter2D.drawText(XfromFreq(m_rxFreq + 750) - 4, y, "73");
}
update(); //trigger a new paintEvent
m_bScaleOK = true;
}
void CPlotter::drawDecodeLine(const QColor &color, int ia, int ib)
{
int const x1 = XfromFreq(ia);
int const x2 = XfromFreq(ib);
QPainter painter1(&m_WaterfallPixmap);
painter1.setPen(color);
painter1.drawLine(qMin(x1, x2), 4, qMax(x1, x2), 4);
painter1.drawLine(qMin(x1, x2), 0, qMin(x1, x2), 9);
painter1.drawLine(qMax(x1, x2), 0, qMax(x1, x2), 9);
}
void CPlotter::drawHorizontalLine(const QColor &color, int x, int width)
{
QPainter painter1(&m_WaterfallPixmap);
painter1.setPen(color);
painter1.drawLine(x, 0, width <= 0 ? m_w : x + width, 0);
}
void CPlotter::replot()
{
float swide[m_w];
m_bReplot = true;
for (int irow = 0; irow < m_h1; irow++)
{
m_j = irow;
plotsave_(swide, &m_w, &m_h1, &irow);
draw(swide, false, false);
}
update(); //trigger a new paintEvent
m_bReplot = false;
}
void CPlotter::DrawOverlay()
{
if (m_OverlayPixmap.isNull() ||
m_WaterfallPixmap.isNull()) return;
QLinearGradient gradient(0, 0, 0, m_h2); //fill background with gradient
gradient.setColorAt(1, Qt::black);
gradient.setColorAt(0, Qt::darkBlue);
QPainter p(&m_OverlayPixmap);
p.setBrush(gradient);
p.drawRect(0, 0, m_w, m_h2);
p.setBrush(Qt::SolidPattern);
double const df = m_binsPerPixel * m_fftBinWidth;
m_fSpan = m_w * df;
m_freqPerDiv = freqPerDiv(m_fSpan);
float const ppdV = m_freqPerDiv / df;
float const ppdH = (float)m_h2 / (float)VERT_DIVS;
std::size_t const hdivs = m_fSpan / m_freqPerDiv + 1.9999;
float xx0 = float(m_startFreq) /float(m_freqPerDiv);
xx0 = xx0 - int(xx0);
int x0 = xx0 * ppdV + 0.5;
p.setPen(QPen(Qt::white, 1, Qt::DotLine));
for (std::size_t i = 1; i < hdivs; i++) //draw vertical grids
{
if (int const x = (int)((float)i * ppdV) - x0;
x >= 0 &&
x <= m_w)
{
p.drawLine(x, 0, x , m_h2);
}
}
for (std::size_t i = 1; i < VERT_DIVS; i++) //draw horizontal grids
{
int const y = (int)( (float)i * ppdH );
p.drawLine(0, y, m_w, y);
}
DrawOverlayScale(df, ppdV);
// paint dials and filter overlays
if (m_mode == "FT8")
{
int const fwidth = XfromFreq(m_rxFreq + bw(m_nSubMode)) - XfromFreq(m_rxFreq);
DrawOverlayDial(fwidth);
DrawOverlayHover(fwidth);
DrawOverlayFilter();
}
}
void
CPlotter::DrawOverlayScale(double const df,
float const ppdV)
{
QPen const penOrange (QColor(230, 126, 34), 3);
QPen const penGray (QColor(149, 165, 166), 3);
QPen const penLightGreen (QColor( 46, 204, 113), 3);
QPen const penLightYellow(QColor(241, 196, 15), 3);
m_ScalePixmap.fill(Qt::white);
QPainter p(&m_ScalePixmap);
p.setFont({"Arial"});
p.setPen(Qt::black);
p.drawRect(0, 0, m_w, 30);
int const fOffset = ((m_startFreq + m_freqPerDiv - 1) / m_freqPerDiv) * m_freqPerDiv;
double const xOffset = double(fOffset - m_startFreq) / m_freqPerDiv;
std::size_t const nMinor = m_freqPerDiv == 200 ? 4: 5;
std::size_t const nHDivs = m_w * df / m_freqPerDiv + 0.9999;
float const ppdVM = ppdV / nMinor;
float const ppdVL = ppdV / 2;
// Draw ticks and labels.
for (std::size_t iMajor = 0; iMajor < nHDivs; iMajor++)
{
auto const rMajor = (xOffset + iMajor) * ppdV;
auto const xMajor = static_cast<int>(rMajor);
p.drawLine(xMajor, 18, xMajor, 30);
for (std::size_t iMinor = 1; iMinor < nMinor; iMinor++)
{
auto const xMinor = static_cast<int>(rMajor + iMinor * ppdVM);
p.drawLine(xMinor, 22, xMinor, 30);
}
if (xMajor > 70)
{
p.drawText(QRect(xMajor - static_cast<int>(ppdVL), 0, static_cast<int>(ppdV), 20),
Qt::AlignCenter,
QString::number(fOffset + iMajor * m_freqPerDiv));
}
}
// If our scale incldues the WSPR range, display it.
if (m_dialFreq > 10.13 &&
m_dialFreq < 10.15 && !m_mode.startsWith(QLatin1StringView("WSPR")))
{
float const wspr = 1.0e6f * (10.1401 - m_dialFreq);
int const x1 = XfromFreq(wspr);
int const x2 = XfromFreq(wspr + 200.0f);
if (x1 <= m_w && x2 >= 0)
{
p.setPen(penOrange); //Mark WSPR sub-band orange
p.drawLine(x1, 9, x2, 9);
}
}
// Colorize the JS8 sub-bands.
for (std::size_t i = 0; i <= 3500; i += 500)
{
int const x1 = XfromFreq(static_cast<float>(i));
int const x2 = XfromFreq(static_cast<float>(i + 500));
if (x1 <= m_w && x2 > 0)
{
switch (i) {
case 500:
case 2500:
p.setPen(penLightYellow);
break;
case 1000:
case 1500:
case 2000:
p.setPen(penLightGreen);
break;
default:
p.setPen(penGray);
break;
}
p.drawLine(x1 + 1, 26, x2 - 2, 26);
p.drawLine(x1 + 1, 28, x2 - 2, 28);
}
}
p.setPen(Qt::black);
p.drawLine(0, 29, m_w, 29);
}
// Paint the dial overlay, showing the chunk of the frequency spectrum
// presently in use.
void
CPlotter::DrawOverlayDial(int const fwidth)
{
QPainter p(&m_DialOverlayPixmap);
p.setCompositionMode(QPainter::CompositionMode_Source);
p.fillRect(rect(), Qt::transparent);
p.setPen(Qt::red);
p.fillRect(0, 26, fwidth + 2, 4, Qt::red);
p.fillRect(0, m_h - 4, fwidth + 2, 4, Qt::red);
p.drawLine(0, 30, 0, m_h); // first slot, left line
p.drawLine(fwidth + 1, 30, fwidth + 1, m_h); // first slot, right line
#if TEST_FOX_WAVE_GEN
if (m_turbo)
{
auto const bwValue = bw(m_nSubMode);
int const offset = XfromFreq(m_rxFreq + bwValue + TEST_FOX_WAVE_GEN_OFFSET) -
XfromFreq(m_rxFreq + bwValue + 4; // + 4 for the line padding
for (int i = 1; i < TEST_FOX_WAVE_GEN_SLOTS; i++)
{
p.fillRect(i*(fwidth + offset), 26, i*(fwidth + offset) + fwidth + 3, 4, Qt::Red);
p.drawLine(i*(fwidth + offset), 30, i*(fwidth + offset), m_h); // n slot, left line
p.drawLine(i*(fwidth + offset) + fwidth + 2, 30, i*(fwidth + offset) + fwidth + 2, m_h); // n slot, right line
}
}
#endif
}
// Paint the hover overlay, showing the prospective chunk of frequency
// spectrum under the mouse.
void
CPlotter::DrawOverlayHover(int const fwidth)
{
QPainter p(&m_HoverOverlayPixmap);
p.setCompositionMode(QPainter::CompositionMode_Source);
p.fillRect(rect(), Qt::transparent);
p.setPen(Qt::white);
p.drawLine(0, 30, 0, m_h); // first slot, left line hover
p.drawLine(fwidth, 30, fwidth, m_h); // first slot, right line hover
#if TEST_FOX_WAVE_GEN
if (m_turbo)
{
for(int i = 1; i < TEST_FOX_WAVE_GEN_SLOTS; i++)
{
hoverPainter.drawLine(i*(fwidth + offset), 30, i*(fwidth + offset), m_h); // n slot, left line
hoverPainter.drawLine(i*(fwidth + offset) + fwidth + 2, 30, i*(fwidth + offset) + fwidth + 2, m_h); // n slot, right line
}
}
#endif
#if DRAW_FREQ_OVERLAY
hoverPainter.setFont({"Arial"});
hoverPainter.drawText(fwidth + 5, m_h, QString("%1").arg(FreqfromX(m_lastMouseX)));
#endif
}
// Paint the filter overlay pixmap, if the filter is enabled and has a width
// greater than zero. Note that we could be more clever here and ensure the
// filter is actually visible prior to painting, but what we're doing here
// is reasonably trivial, so probably not worth the effort.
void
CPlotter::DrawOverlayFilter()
{
if (m_filterEnabled && m_filterWidth > 0)
{
QPainter p(&m_FilterOverlayPixmap);
p.setCompositionMode(QPainter::CompositionMode_Source);
p.fillRect(rect(), Qt::transparent);
int const start = XfromFreq(static_cast<float>(m_filterCenter - m_filterWidth / 2));
int const end = XfromFreq(static_cast<float>(m_filterCenter + m_filterWidth / 2));
// Yellow vertical line, showing the filter location.
p.setPen(Qt::yellow);
p.drawLine(start, 30, start, m_h);
p.drawLine(end, 30, end, m_h);
// Put a mask over everything outside the bandpass.
QColor const blackMask(0, 0, 0, std::clamp(m_filterOpacity, 0, 255));
p.fillRect(0, 30, start, m_h, blackMask);
p.fillRect(end + 1, 30, m_w, m_h, blackMask);
}
}
int CPlotter::XfromFreq(float const f) const //XfromFreq()
{
return std::clamp(static_cast<int>(m_w * (f - m_startFreq) / m_fSpan + 0.5), 0, m_w);
}
float CPlotter::FreqfromX(int const x) const //FreqfromX()
{
return float(m_startFreq + x * m_binsPerPixel * m_fftBinWidth);
}
void CPlotter::setPlot2dGain(int const n) //setPlot2dGain
{
m_plot2dGain = n;
update();
}
void CPlotter::setStartFreq(int const f) //SetStartFreq()
{
m_startFreq = f;
resizeEvent(nullptr);
update();
}
void CPlotter::UpdateOverlay() //UpdateOverlay
{
DrawOverlay();
}
void CPlotter::setBinsPerPixel(int const n) //setBinsPerPixel
{
m_binsPerPixel = n < 1 ? 1 : n;
DrawOverlay(); //Redraw scales and ticks
update(); //trigger a new paintEvent}
}
void CPlotter::setRxFreq(int const x) //setRxFreq
{
m_rxFreq = x; // x is freq in Hz
DrawOverlay();
update();
}
void CPlotter::leaveEvent(QEvent *)
{
m_lastMouseX = -1;
}
void CPlotter::wheelEvent(QWheelEvent * event)
{
auto const delta = event->angleDelta();
if (delta.isNull())
{
event->ignore();
return;
}
int const dir = delta.y() > 0 ? 1 : -1;
int newFreq = rxFreq();
if(event->modifiers() & Qt::ControlModifier)
{
newFreq += dir;
}
else
{
newFreq = newFreq / 10 * 10 + dir * 10;
}
emit setFreq1(newFreq, newFreq);
}
void CPlotter::mouseMoveEvent(QMouseEvent * event)
{
auto const x = std::clamp(static_cast<int>(event->position().x()), 0, m_Size.width());
m_lastMouseX = x;
#if DRAW_FREQ_OVERLAY
DrawOverlay();
#endif
update();
event->ignore();
QToolTip::showText(event->globalPosition().toPoint(),
QString::number(int(FreqfromX(x))));
}
void CPlotter::mouseReleaseEvent(QMouseEvent * event)
{
if (Qt::LeftButton == event->button())
{
auto const x = std::clamp(static_cast<int>(event->position().x()), 0, m_Size.width());
bool const ctrl = event->modifiers() & Qt::ControlModifier;
bool const shift = event->modifiers() & Qt::ShiftModifier;
auto const newFreq = int(FreqfromX(x)+0.5);
int const oldTxFreq = m_txFreq;
int const oldRxFreq = m_rxFreq;
if (ctrl) { emit setFreq1(newFreq, newFreq ); }
else if (shift) { emit setFreq1(oldRxFreq, newFreq ); }
else { emit setFreq1(newFreq, oldTxFreq); }
emit freezeDecode1(ctrl ? 101 : 1);
}
else
{
event->ignore(); // let parent handle
}
}
void CPlotter::mouseDoubleClickEvent(QMouseEvent * event)
{
if (Qt::LeftButton == event->button())
{
emit freezeDecode1(event->modifiers() & Qt::ControlModifier ? 102 : 2);
}
else
{
event->ignore(); // let parent handle
}
}
void CPlotter::setNsps(int const ntrperiod, int const nsps) //setNsps
{
m_TRperiod = ntrperiod;
m_nsps = nsps;
m_fftBinWidth = fftBinWidth(nsps);
DrawOverlay(); //Redraw scales and ticks
update(); //trigger a new paintEvent}
}
void CPlotter::setTxFreq(int const n) //setTxFreq
{
m_txFreq = n;
DrawOverlay();
update();
}
void CPlotter::setDialFreq(double const d)
{
m_dialFreq = d;
DrawOverlay();
update();
}
void CPlotter::setRxBand(QString const & band)
{
m_rxBand = band;
DrawOverlay();
update();
}
void CPlotter::setTurbo(bool const turbo)
{
m_turbo = turbo;
DrawOverlay();
update();
}
void CPlotter::setFilterCenter(int const center)
{
m_filterCenter = center;
DrawOverlay();
update();
}
void CPlotter::setFilterWidth(int const width)
{
m_filterWidth = width;
DrawOverlay();
update();
}
void CPlotter::setFilterEnabled(bool const enabled)
{
m_filterEnabled = enabled;
DrawOverlay();
update();
}
void CPlotter::setFilterOpacity(int const alpha)
{
m_filterOpacity = alpha;
DrawOverlay();
update();
}
void
CPlotter::setRxRange(int const fMin)
{
m_fMin = fMin;
DrawOverlay();
update();
}
void
CPlotter::setMode(QString const & mode)
{
m_mode = mode;
DrawOverlay();
update();
}
void
CPlotter::setModeTx(QString const & modeTx)
{
m_modeTx = modeTx;
DrawOverlay();
update();
}
void
CPlotter::setSubMode(int const nSubMode)
{
m_nSubMode = nSubMode;
DrawOverlay();
update();
}
void
CPlotter::setTol(int const n)
{
m_tol = n; // XXX this is never referenced
DrawOverlay();
update();
}
void CPlotter::setFlatten(bool const b1, bool const b2)
{
m_Flatten = 0;
if (b1) m_Flatten = 1;
if (b2) m_Flatten = 2;
}
void CPlotter::SetPercent2DScreen(int percent)
{
m_Percent2DScreen=percent;
resizeEvent(nullptr);
update();
}