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Jungfraujoch/viewer/image_viewer/JFJochImage.cpp
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v1.0.0.rc-161 (#71)
This is an UNSTABLE release. It includes many experimental features, as well as many AI generated fixes. We recommend using rc.152 for production use.

* **rugnux: significantly better quality of results, and faster.** A large rework of integration, scaling, merging, geometry refinement and space-group determination, together with measurements the program previously made no attempt at - the direct beam before indexing, the beam stop, the goniometer rotation scale, and the stretches of a sweep the crystal did not deliver. A rotation dataset typically gains observations at better <I/sigma> and R_meas, and every `mx` and `scale` run writes a `<prefix>_report.txt` results report modelled on XDS's `CORRECT.LP`. Many defaults moved with it: spot detection is self-calibrating, beam-stop detection and rotation geometry post-refinement are on, resolution limits default to as far as the detector reaches, and ice-ring handling engages only where the crystal is measured to have ice.
* **jfjoch_viewer:** the beam-stop shadow, the detector calibration and the beam-centre measurement are reachable from "Analyze dataset"; the settings panel reports how the sample moved and how polarized the beam was; image rendering and interaction are faster.
* **Performance:** bitshuffle+LZ4 images are decoded on the GPU rather than on the host, with the bitshuffle inverse fused into preprocessing so the decompressed frame is never held in device memory.
* **Broker, writer, packaging and build:** image-slot lifetime and locking fixes, per-image datasets sized by the images actually written, the Debian/Ubuntu broker package renamed to `jfjoch`, and `image_analysis` compiling under MSVC again.

**Breaking change to the rugnux command line:**
* `--azint-only` and `--scale` are **removed**, replaced by `--mode azint` and `--mode scale`; the full pipeline is `--mode mx` and remains the default. A script passing the old flags now fails with the list of valid modes rather than silently running the wrong one.
* `-t`/`--stride` is **refused on rotation data**: skipping frames cuts every reflection's rocking curve, so the combined fulls and their partiality would be measured over frames the sweep never recorded. Select a contiguous range with `-s`/`-e` instead. `--mode azint` and `--force-still` still take a stride.

**Breaking changes to OpenAPI** - regenerate the client (`jfjoch-client` 1.0.0-rc.161, `frontend/src/client`) or read the affected fields as optional:
* `image_scale_b` is removed from the `plot_type` enum, so a client requesting that plot now gets an error rather than a curve.
* `azim_int_settings.high_q_recipA`, `spot_finding_settings.high_resolution_limit` and `spot_finding_settings.low_resolution_limit` are no longer `required`. All three mean "no limit at that end" when unset and are omitted from the response instead of carrying a placeholder value, which raises in a client generated from an rc.160-or-earlier spec. A value of 0 is still accepted and means the same thing.

**Breaking changes to the stored formats** - a consumer reading these fields must treat them as optional:
* The per-image image-scale B factor is no longer computed, so `/entry/MX/imageScaleBFactor` is absent from newly written HDF5 files and the corresponding key is absent from the CBOR DataMessage and END blocks. Files written by rc.160 and earlier still contain it and still open; nothing in the pipeline reads it any more.
* `_reflns.jfjoch_diffrn_ISa` now carries the whole-range `1/sqrt(a*b)` that XDS's ISa denotes, and the error-model `a` and `b` are reported in XDS's convention; the strong-reflection asymptote moves to `_reflns.jfjoch_diffrn_ISa_asymptotic`. **A file written by an earlier version carries the asymptote under the plain `ISa` name.**

Reviewed-on: #71
Co-authored-by: Filip Leonarski <filip.leonarski@psi.ch>
2026-08-13 17:03:10 +02:00

996 lines
36 KiB
C++

// SPDX-FileCopyrightText: 2025 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#include "JFJochImage.h"
#include <QGraphicsSimpleTextItem>
#include <QScrollBar>
#include <QWheelEvent>
#include <QMouseEvent>
#include <QTimer>
#include <QMenu>
#include <QContextMenuEvent>
#include <QClipboard>
#include <QGuiApplication>
#include <QMimeData>
#include <QBuffer>
#include <QFileDialog>
#include <QElapsedTimer>
#include <QPainter>
#include <QtConcurrent/QtConcurrent>
QRectF JFJochImageItem::boundingRect() const {
return img_ ? QRectF(0, 0, img_->width(), img_->height()) : QRectF();
}
QPainterPath JFJochImageItem::opaqueArea() const {
// The buffer is RGB32, so the item fully covers its bounding rect
QPainterPath path;
path.addRect(boundingRect());
return path;
}
void JFJochImageItem::paint(QPainter *painter, const QStyleOptionGraphicsItem *, QWidget *) {
if (!img_ || img_->isNull())
return;
// QGraphicsPixmapItem defaults to Qt::FastTransformation and turned this hint off before
// drawing; keep doing that, so zoomed-in detector pixels stay sharp squares.
painter->setRenderHint(QPainter::SmoothPixmapTransform, false);
painter->drawImage(0, 0, *img_);
}
void JFJochImageItem::refresh() {
prepareGeometryChange();
update();
}
JFJochImage::JFJochImage(QWidget *parent) : QGraphicsView(parent) {
setDragMode(QGraphicsView::NoDrag); // Disable default drag mode
setTransformationAnchor(QGraphicsView::AnchorUnderMouse); // Zoom anchors
setRenderHint(QPainter::Antialiasing); // Enable smooth rendering
setRenderHint(QPainter::SmoothPixmapTransform);
setSizePolicy(QSizePolicy::Expanding, QSizePolicy::Expanding);
setFocusPolicy(Qt::ClickFocus);
// Connect the horizontal scrollbar's valueChanged signal
connect(horizontalScrollBar(), &QScrollBar::valueChanged, this, &JFJochImage::onScroll);
// Connect the vertical scrollbar's valueChanged signal
connect(verticalScrollBar(), &QScrollBar::valueChanged, this, &JFJochImage::onScroll);
// Optional: a sensible default colormap
color_scale.Select(ColorScaleEnum::Indigo);
hover_tail_timer_ = new QTimer(this);
hover_tail_timer_->setSingleShot(true);
connect(hover_tail_timer_, &QTimer::timeout, this, &JFJochImage::UpdateHover);
}
void JFJochImage::onScroll(int value) {
if (suppress_overlay_update_)
return;
updateOverlay();
}
void JFJochImage::UpdateHover() {
hover_rate_.restart();
mouseHover(hover_scene_pos_, hover_modifiers_);
emit hoverScenePos(hover_scene_pos_);
}
void JFJochImage::ScheduleHoverUpdate(const QPointF &scenePos, Qt::KeyboardModifiers modifiers) {
hover_scene_pos_ = scenePos;
hover_modifiers_ = modifiers;
if (!hover_rate_.isValid() || hover_rate_.elapsed() >= kHoverIntervalMs) {
hover_tail_timer_->stop();
UpdateHover();
return;
}
// Too soon. Push the catch-up back instead of queueing one per skipped motion, so it fires
// once, after the pointer stops -- a catch-up that fires mid-gesture is an extra repaint.
hover_tail_timer_->start(kHoverIntervalMs);
}
void JFJochImage::leaveEvent(QEvent *event) {
// A tail update that fires now would report a position the pointer has already left
hover_tail_timer_->stop();
QGraphicsView::leaveEvent(event);
}
void JFJochImage::ScheduleRenderImage() {
if (render_pending_)
return;
render_pending_ = true;
QTimer::singleShot(0, this, [this] {
render_pending_ = false;
RenderImage();
Redraw();
});
}
void JFJochImage::changeBackground(float val) {
background = val;
ScheduleRenderImage();
}
void JFJochImage::changeForeground(float val) {
auto_fg = false;
emit autoForegroundChanged(false);
foreground = val;
// Regenerate the image
ScheduleRenderImage();
}
void JFJochImage::setColorMap(int color_map) {
try {
color_scale.Select(static_cast<ColorScaleEnum>(color_map));
// Regenerate the image
RenderImage();
Redraw();
} catch (...) {
}
}
void JFJochImage::setFeatureColor(QColor input) {
feature_color = input;
RenderImage();
Redraw();
}
void JFJochImage::wheelEvent(QWheelEvent *event) {
if (!scene()) return;
const double zoomFactor = 1.15; // Zoom factor
// Get the position of the mouse in scene coordinates
QPointF targetScenePos = mapToScene(event->position().toPoint());
const bool exp_fg_adjust = (event->modifiers() & Qt::ControlModifier);
const bool lin_fg_adjust = (event->modifiers() & Qt::ShiftModifier) || m_adjustForegroundWithWheel;
if (exp_fg_adjust || lin_fg_adjust) {
float new_foreground = foreground;
if (exp_fg_adjust) {
const float step = (event->angleDelta().y() > 0) ? zoomFactor : (1.0 / zoomFactor);
new_foreground = foreground * step;
} else {
new_foreground = foreground + event->angleDelta().y() / 120.0f;
}
if (new_foreground < 1.0f)
new_foreground = 1.0f;
changeForeground(new_foreground);
emit foregroundChanged(foreground);
} else {
// Zooming and re-centering both move the scrollbars, and every move reaches
// onScroll(); suppress those and rebuild the overlay once, below.
suppress_overlay_update_ = true;
// Perform zooming
if (event->angleDelta().y() > 0) {
if (scale_factor * zoomFactor < 500.0) {
scale_factor *= zoomFactor;
scale(zoomFactor, zoomFactor);
}
} else {
if (scale_factor > 0.2) {
scale_factor *= 1.0 / zoomFactor;
scale(1.0 / zoomFactor, 1.0 / zoomFactor);
}
}
// Adjust the view's center to keep the zoom focused on the mouse position
QPointF updatedViewportCenter = mapToScene(viewport()->rect().center());
QPointF delta = targetScenePos - updatedViewportCenter;
translate(delta.x(), delta.y()); // Shift the view
suppress_overlay_update_ = false;
updateOverlay();
emitViewportChanged();
}
}
void JFJochImage::resizeEvent(QResizeEvent *event) {
QGraphicsView::resizeEvent(event);
if (scene())
scene()->setSceneRect(QRectF(0, 0, static_cast<qreal>(W), static_cast<qreal>(H)));
// Retry a deferred initial fit: fitToViewShorterSideOnce() skips fitting while the viewport has no
// real size yet (before the widget is laid out/shown), leaving the view at 1:1 - a small grid-scan
// plot then renders tiny, "zoomed out". This is the retry its comment promises. Only while the
// initial fit is still pending, so a later user resize never overrides a manual zoom.
if (!initial_fit_done_)
fitToViewShorterSideOnce();
updateOverlay();
}
QPointF JFJochImage::RoundPoint(const QPointF &input) {
return QPointF(qRound(input.x()), qRound(input.y()));
}
void JFJochImage::SetROIBox(QRect box) {
roi_type = RoiType::RoiBox;
roiBox= box;
roiStartPos = roiBox.topLeft();
roiEndPos = roiBox.bottomRight();
Redraw();
}
void JFJochImage::SetROICircle(double x, double y, double radius) {
roi_type = RoiType::RoiCircle;
roiBox= QRectF(x - radius, y - radius, 2 * radius, 2 * radius).normalized();
roiStartPos = roiBox.topLeft();
roiEndPos = roiBox.bottomRight();
Redraw();
}
void JFJochImage::mousePressEvent(QMouseEvent *event) {
if (!scene()) return;
if (event->button() == Qt::LeftButton) {
const QPointF scenePos = mapToScene(event->pos());
if (roiEditPress(scenePos)) {
mouse_event_type = MouseEventType::EditingExternalROI;
event->accept();
return;
}
active_handle_ = AllowROI()
? hitTestROIHandle(scenePos, 4.0 / std::sqrt(std::max(1e-4, scale_factor)))
: ResizeHandle::None;
if (active_handle_ != ResizeHandle::None && active_handle_ != ResizeHandle::Inside) {
mouse_event_type = MouseEventType::ResizingROI;
roiStartPos = roiBox.topLeft();
roiEndPos = roiBox.bottomRight();
setCursor(Qt::SizeAllCursor);
} else if (AllowROI() && roiBox.contains(scenePos)) {
mouse_event_type = MouseEventType::MovingROI;
lastMousePos = event->pos();
setCursor(Qt::ClosedHandCursor);
} else if (AllowROI() && (event->modifiers() & Qt::Modifier::SHIFT)) {
mouse_event_type = MouseEventType::DrawingROI;
roiStartPos = RoundPoint(scenePos);
roiEndPos = roiStartPos;
roi_type = (event->modifiers() & Qt::Modifier::CTRL) ? RoiType::RoiCircle : RoiType::RoiBox;
setCursor(Qt::CrossCursor);
} else {
mouse_event_type = MouseEventType::Panning;
setCursor(Qt::ClosedHandCursor);
lastMousePos = event->pos();
}
}
QGraphicsView::mousePressEvent(event);
}
void JFJochImage::mouseMoveEvent(QMouseEvent *event) {
if (!scene())
return;
const QPointF scenePos = mapToScene(event->pos());
ScheduleHoverUpdate(scenePos, event->modifiers());
QPointF delta;
switch (mouse_event_type) {
case MouseEventType::EditingExternalROI:
roiEditMove(scenePos);
return;
case MouseEventType::Panning: {
const QPoint viewDelta = event->pos() - lastMousePos;
lastMousePos = event->pos();
// Each setValue() reaches onScroll(), so the overlay was rebuilt three times per
// mouse move. Suppress those and rebuild once, below.
suppress_overlay_update_ = true;
horizontalScrollBar()->setValue(horizontalScrollBar()->value() - viewDelta.x());
verticalScrollBar()->setValue(verticalScrollBar()->value() - viewDelta.y());
suppress_overlay_update_ = false;
updateOverlay();
emitViewportChanged();
break;
}
case MouseEventType::DrawingROI:
roiEndPos = RoundPoint(scenePos);
updateROI();
break;
case MouseEventType::MovingROI:
delta = mapToScene(event->pos()) - mapToScene(lastMousePos);
lastMousePos = event->pos();
roiBox.translate(delta);
updateROI();
break;
case MouseEventType::ResizingROI: {
// Modify the corresponding edges based on active_handle_
if (roi_type == RoiType::RoiCircle) {
// Resize circle by radius only, keep center fixed
const QPointF c = roiBox.center();
const qreal dx = scenePos.x() - c.x();
const qreal dy = scenePos.y() - c.y();
qreal r = std::hypot(dx, dy);
const qreal rMin = 1.0; // clamp tiny radii
if (r < rMin) r = rMin;
roiBox = QRectF(c.x() - r, c.y() - r, 2*r, 2*r);
} else {
// Box: modify edges based on active handle
QRectF r = roiBox;
switch (active_handle_) {
case ResizeHandle::Left: r.setLeft(scenePos.x()); break;
case ResizeHandle::Right: r.setRight(scenePos.x()); break;
case ResizeHandle::Top: r.setTop(scenePos.y()); break;
case ResizeHandle::Bottom: r.setBottom(scenePos.y()); break;
case ResizeHandle::TopLeft: r.setTop(scenePos.y()); r.setLeft(scenePos.x()); break;
case ResizeHandle::TopRight: r.setTop(scenePos.y()); r.setRight(scenePos.x()); break;
case ResizeHandle::BottomLeft: r.setBottom(scenePos.y()); r.setLeft(scenePos.x()); break;
case ResizeHandle::BottomRight:r.setBottom(scenePos.y()); r.setRight(scenePos.x()); break;
default: break;
}
roiBox = r.normalized();
}
updateROI();
break;
}
case MouseEventType::None: {
if (!AllowROI())
break;
const qreal tol = 4.0 / std::sqrt(std::max(1e-4, scale_factor));
ResizeHandle h = hitTestROIHandle(scenePos, tol);
// Update hover state so overlay can draw arrows/handles accordingly
if (h != hover_handle_) {
hover_handle_ = h;
updateOverlay();
}
// Set an informative cursor
switch (h) {
case ResizeHandle::Left:
case ResizeHandle::Right:
setCursor(Qt::SizeHorCursor); break;
case ResizeHandle::Top:
case ResizeHandle::Bottom:
setCursor(Qt::SizeVerCursor); break;
case ResizeHandle::TopLeft:
case ResizeHandle::BottomRight:
setCursor(Qt::SizeFDiagCursor); break;
case ResizeHandle::TopRight:
case ResizeHandle::BottomLeft:
setCursor(Qt::SizeBDiagCursor); break;
case ResizeHandle::Inside:
setCursor(Qt::OpenHandCursor); break;
case ResizeHandle::None:
setCursor(Qt::ArrowCursor); break;
}
break;
}
}
QGraphicsView::mouseMoveEvent(event);
}
void JFJochImage::mouseReleaseEvent(QMouseEvent *event) {
if (!scene()) return;
if (event->button() == Qt::LeftButton) {
if (mouse_event_type == MouseEventType::EditingExternalROI) {
roiEditRelease();
} else {
const bool drawn = (mouse_event_type == MouseEventType::DrawingROI);
if (drawn)
roiEndPos = RoundPoint(mapToScene(event->pos()));
updateROI();
if (drawn)
roiScratchDrawn(); // turn the drawn scratch box/circle into a persistent ROI
}
}
mouse_event_type = MouseEventType::None;
active_handle_ = ResizeHandle::None;
setCursor(Qt::ArrowCursor);
QGraphicsView::mouseReleaseEvent(event);
}
void JFJochImage::contextMenuEvent(QContextMenuEvent *event) {
QMenu menu(this);
QAction *copyImageAct = menu.addAction(tr("Copy image"));
QAction *copyWithOverlayAct = menu.addAction(tr("Copy image with overlay"));
menu.addSeparator();
QAction *saveImageAct = menu.addAction(tr("Save image as JPEG..."));
QAction *saveWithOverlayAct = menu.addAction(tr("Save image with overlay as JPEG..."));
menu.addSeparator();
QAction *fitAct = menu.addAction(tr("Fit image to view"));
QAction *clearRoiAct = AllowROI() ? menu.addAction(tr("Clear ROI")) : nullptr;
const bool hasImage = (W > 0 && H > 0 && !frame_->isNull());
copyImageAct->setEnabled(hasImage);
copyWithOverlayAct->setEnabled(hasImage && scene());
saveImageAct->setEnabled(hasImage);
saveWithOverlayAct->setEnabled(hasImage && scene());
QAction *chosen = menu.exec(event->globalPos());
if (!chosen) return;
if (chosen == copyImageAct) {
copyImageToClipboard();
} else if (chosen == copyWithOverlayAct) {
copyImageWithOverlayToClipboard();
} else if (chosen == saveImageAct) {
saveImageToFile(false);
} else if (chosen == saveWithOverlayAct) {
saveImageToFile(true);
} else if (chosen == fitAct) {
fitToView();
} else if (clearRoiAct && chosen == clearRoiAct) {
clearROIInternal();
}
}
static void setClipboardAsJpegAndImage(const QImage &img, int quality = 95) {
// Provide both "image/jpeg" and generic image flavors for better compatibility
QByteArray ba;
ba.reserve(img.width() * img.height() * 3 / 2);
QBuffer buf(&ba);
buf.open(QIODevice::WriteOnly);
QImage toSave = img;
// Force 1:1 pixel ratio and standard DPI (96) to avoid scaling in consumer apps
toSave.setDevicePixelRatio(1.0);
constexpr int dotsPerMeter96DPI = 3780; // 96 DPI
toSave.setDotsPerMeterX(dotsPerMeter96DPI);
toSave.setDotsPerMeterY(dotsPerMeter96DPI);
toSave = toSave.convertToFormat(QImage::Format_ARGB32); // ensure a known format for encoding
toSave.save(&buf, "JPEG", quality);
auto *mime = new QMimeData();
mime->setData("image/jpeg", ba);
mime->setImageData(toSave); // also set as generic bitmap
QGuiApplication::clipboard()->setMimeData(mime);
}
QImage JFJochImage::renderToImage(bool with_overlay) {
QImage img;
if (with_overlay && scene()) {
// Render the entire scene (image + overlay) at native image resolution
img = QImage(int(W), int(H), QImage::Format_ARGB32_Premultiplied);
img.fill(Qt::transparent);
QPainter p(&img);
const QRectF rect(0, 0, qreal(W), qreal(H));
scene()->render(&p, rect, rect);
p.end();
} else {
// The underlying rendered image (no overlay)
img = *frame_;
}
// Ensure 1:1 pixel ratio and 96 DPI metadata to avoid rescaling in consumer apps
img.setDevicePixelRatio(1.0);
constexpr int dotsPerMeter96DPI = 3780;
img.setDotsPerMeterX(dotsPerMeter96DPI);
img.setDotsPerMeterY(dotsPerMeter96DPI);
return img;
}
void JFJochImage::copyImageToClipboard() {
if (W == 0 || H == 0 || frame_->isNull()) return;
setClipboardAsJpegAndImage(renderToImage(false), 95);
emit writeStatusBar(tr("Image copied to clipboard"), 2000);
}
void JFJochImage::copyImageWithOverlayToClipboard() {
if (W == 0 || H == 0 || !scene()) return;
setClipboardAsJpegAndImage(renderToImage(true), 95);
emit writeStatusBar(tr("Image with overlay copied to clipboard"), 2000);
}
void JFJochImage::saveImageToFile(bool with_overlay) {
if (W == 0 || H == 0 || frame_->isNull()) return;
if (with_overlay && !scene()) return;
const QString caption = with_overlay ? tr("Save image with overlay as JPEG")
: tr("Save image as JPEG");
QString file_name = QFileDialog::getSaveFileName(this, caption, QString(),
tr("JPEG image (*.jpg *.jpeg)"));
if (file_name.isEmpty())
return;
if (!file_name.endsWith(".jpg", Qt::CaseInsensitive) && !file_name.endsWith(".jpeg", Qt::CaseInsensitive))
file_name += ".jpg";
// JPEG cannot store alpha; flatten to RGB before encoding.
const QImage img = renderToImage(with_overlay).convertToFormat(QImage::Format_RGB32);
if (img.save(file_name, "JPEG", 95))
emit writeStatusBar(tr("Saved %1").arg(file_name), 3000);
else
emit writeStatusBar(tr("Failed to save %1").arg(file_name), 3000);
}
void JFJochImage::clearROIInternal() {
roiBox = QRectF(); // clear any ROI
// Keep current roi_type; ROI simply becomes empty
updateOverlay();
emit writeStatusBar(tr("ROI cleared"), 1500);
}
JFJochImage::ResizeHandle
JFJochImage::hitTestROIHandle(const QPointF& scenePos, qreal tol) const {
if (roiBox.isNull() || roiBox.width() <= 0 || roiBox.height() <= 0)
return ResizeHandle::None;
const QRectF r = roiBox;
if (roi_type == RoiType::RoiCircle) {
// Circle hit test: near perimeter -> resize, inside -> move
const QPointF c = r.center();
const qreal rx = r.width() * 0.5;
const qreal ry = r.height() * 0.5;
// Enforce circular assumption: use average radius
const qreal rad = 0.5 * (rx + ry);
const qreal dx = scenePos.x() - c.x();
const qreal dy = scenePos.y() - c.y();
const qreal d = std::hypot(dx, dy);
if (std::abs(d - rad) <= tol) {
// generic "edge" resize handle for circle
return ResizeHandle::Right;
}
if (d < rad) return ResizeHandle::Inside;
return ResizeHandle::None;
}
// Box hit test (corners first)
const QPointF tl = r.topLeft();
const QPointF tr = r.topRight();
const QPointF bl = r.bottomLeft();
const QPointF br = r.bottomRight();
auto nearPt = [&](const QPointF& a, const QPointF& b, qreal t) {
return std::abs(a.x() - b.x()) <= t && std::abs(a.y() - b.y()) <= t;
};
if (nearPt(scenePos, tl, tol)) return ResizeHandle::TopLeft;
if (nearPt(scenePos, tr, tol)) return ResizeHandle::TopRight;
if (nearPt(scenePos, bl, tol)) return ResizeHandle::BottomLeft;
if (nearPt(scenePos, br, tol)) return ResizeHandle::BottomRight;
// Edges
if (std::abs(scenePos.x() - r.left()) <= tol && scenePos.y() >= r.top() - tol && scenePos.y() <= r.bottom() + tol)
return ResizeHandle::Left;
if (std::abs(scenePos.x() - r.right()) <= tol && scenePos.y() >= r.top() - tol && scenePos.y() <= r.bottom() + tol)
return ResizeHandle::Right;
if (std::abs(scenePos.y() - r.top()) <= tol && scenePos.x() >= r.left() - tol && scenePos.x() <= r.right() + tol)
return ResizeHandle::Top;
if (std::abs(scenePos.y() - r.bottom()) <= tol && scenePos.x() >= r.left() - tol && scenePos.x() <= r.right() + tol)
return ResizeHandle::Bottom;
if (r.contains(scenePos)) return ResizeHandle::Inside;
return ResizeHandle::None;
}
void JFJochImage::updateROI() {
if (roi_type == RoiType::RoiBox) {
if (mouse_event_type == MouseEventType::DrawingROI) {
// While drawing: construct box from start/end
QRectF rect = QRectF(RoundPoint(roiStartPos), RoundPoint(roiEndPos)).normalized();
roiBox = rect;
} else {
// While moving/resizing: keep roiBox as modified, just sync corners
roiStartPos = roiBox.topLeft();
roiEndPos = roiBox.bottomRight();
}
emit roiBoxUpdated(roiBox.toRect());
} else {
double radius;
if (mouse_event_type == MouseEventType::DrawingROI) {
// Center at roiStartPos, radius from start->end
QPointF delta = roiStartPos - roiEndPos;
radius = std::sqrt(delta.x() * delta.x() + delta.y() * delta.y());
roiBox = QRectF(roiStartPos.x() - radius, roiStartPos.y() - radius,
2 * radius, 2 * radius).normalized();
} else {
// Moving/resizing: infer center/radius from roiBox
const QPointF c = roiBox.center();
radius = 0.5 * std::min(roiBox.width(), roiBox.height());
roiStartPos = c; // treat start as center for consistency
roiEndPos = QPointF(c.x() + radius, c.y()); // arbitrary point on radius
}
emit roiCircleUpdated(roiStartPos.x(), roiStartPos.y(), radius);
}
updateOverlay();
}
void JFJochImage::addOverlayItem(QGraphicsItem *item) {
overlay_items_.append(item);
}
void JFJochImage::DrawROI() {
if (!AllowROI())
return;
if (roiBox.isNull() || roiBox.width() <= 0 || roiBox.height() <= 0) return;
auto scn = scene();
if (!scn)
return;
QPen pen(feature_color, 2);
pen.setStyle(Qt::DashLine);
pen.setCosmetic(true);
const qreal f = std::clamp(scale_factor, 0.5, 50.0);
const qreal handleSize = 3.0 / std::sqrt(std::max(1e-4, f));
if (roi_type == RoiType::RoiCircle) {
// Draw circle
addOverlayItem(scn->addEllipse(roiBox, pen));
// A single handle on the circle at the rightmost point
const QPointF c = roiBox.center();
const qreal rad = 0.5 * (roiBox.width() + roiBox.height()) * 0.5; // average, should be equal
QPointF hpos = QPointF(roiBox.right(), c.y());
addOverlayItem(scn->addRect(QRectF(hpos.x() - handleSize, hpos.y() - handleSize, 2 * handleSize, 2 * handleSize),
QPen(feature_color, 1), QBrush(feature_color)));
// On hover near perimeter: draw in/out arrows along radius at handle
if (hover_handle_ != ResizeHandle::None && hover_handle_ != ResizeHandle::Inside) {
QPen apen(feature_color, 1);
apen.setCosmetic(true);
const qreal arrowLen = 8.0 / std::sqrt(std::max(1e-4, f));
// Outward arrow
addOverlayItem(scn->addLine(QLineF(c, c + QPointF(rad + arrowLen, 0)), apen));
// Inward arrow
addOverlayItem(scn->addLine(QLineF(c, c + QPointF(rad - arrowLen, 0)), apen));
}
} else {
// Box
addOverlayItem(scn->addRect(roiBox, pen));
// Corner handles
auto addHandle = [&](const QPointF& p) {
addOverlayItem(scn->addRect(QRectF(p.x() - handleSize, p.y() - handleSize, 2 * handleSize, 2 * handleSize),
QPen(feature_color, 1), QBrush(feature_color)));
};
addHandle(roiBox.topLeft());
addHandle(roiBox.topRight());
addHandle(roiBox.bottomLeft());
addHandle(roiBox.bottomRight());
// On hover over a resizable edge/corner: draw small arrows indicating resize direction
if (hover_handle_ != ResizeHandle::None && hover_handle_ != ResizeHandle::Inside) {
QPen apen(feature_color, 1);
apen.setCosmetic(true);
const qreal arrowLen = 6.0 / std::sqrt(std::max(1e-4, f));
const qreal off = 10.0 / std::sqrt(std::max(1e-4, f));
auto drawArrow = [&](const QPointF& a, const QPointF& b) {
addOverlayItem(scn->addLine(QLineF(a, b), apen));
};
const QRectF r = roiBox;
switch (hover_handle_) {
case ResizeHandle::Left:
drawArrow(QPointF(r.left(), r.center().y() - off), QPointF(r.left() - arrowLen, r.center().y() - off));
drawArrow(QPointF(r.left(), r.center().y() + off), QPointF(r.left() - arrowLen, r.center().y() + off));
break;
case ResizeHandle::Right:
drawArrow(QPointF(r.right(), r.center().y() - off), QPointF(r.right() + arrowLen, r.center().y() - off));
drawArrow(QPointF(r.right(), r.center().y() + off), QPointF(r.right() + arrowLen, r.center().y() + off));
break;
case ResizeHandle::Top:
drawArrow(QPointF(r.center().x() - off, r.top()), QPointF(r.center().x() - off, r.top() - arrowLen));
drawArrow(QPointF(r.center().x() + off, r.top()), QPointF(r.center().x() + off, r.top() - arrowLen));
break;
case ResizeHandle::Bottom:
drawArrow(QPointF(r.center().x() - off, r.bottom()), QPointF(r.center().x() - off, r.bottom() + arrowLen));
drawArrow(QPointF(r.center().x() + off, r.bottom()), QPointF(r.center().x() + off, r.bottom() + arrowLen));
break;
case ResizeHandle::TopLeft:
case ResizeHandle::TopRight:
case ResizeHandle::BottomLeft:
case ResizeHandle::BottomRight:
// For corners, show arrows on both axes (simple version)
drawArrow(QPointF(r.right(), r.center().y()), QPointF(r.right() + arrowLen, r.center().y()));
drawArrow(QPointF(r.left(), r.center().y()), QPointF(r.left() - arrowLen, r.center().y()));
drawArrow(QPointF(r.center().x(), r.top()), QPointF(r.center().x(), r.top() - arrowLen));
drawArrow(QPointF(r.center().x(), r.bottom()), QPointF(r.center().x(), r.bottom() + arrowLen));
break;
default: break;
}
}
}
}
void JFJochImage::Redraw() {
if (W*H <= 0)
return;
QGraphicsScene *currentScene = scene();
if (!currentScene) {
// First time - create a new scene
currentScene = new QGraphicsScene(this);
setScene(currentScene);
// Reset initial-fit state for a new scene
initial_fit_done_ = false;
image_item_ = nullptr; // new scene, old pointer invalid
}
// Perform initial fit only once per image size
fitToViewShorterSideOnce();
updateOverlay();
}
PixelColorMap JFJochImage::MakeColorMap() const {
// Bad pixel color
int r, g, b, a;
feature_color.getRgb(&r, &g, &b, &a);
auto bad_color = rgb{.r = static_cast<uint8_t>(r), .g = static_cast<uint8_t>(g), .b = static_cast<uint8_t>(b)};
const auto &lut_data = color_scale.LUTData();
const auto lutSize = static_cast<int>(lut_data.size());
const float lutScale = static_cast<float>(lutSize - 1);
const float range = foreground - background;
return PixelColorMap{
.lut = lut_data.data(),
.lut_size = lutSize,
.minv = background,
.range = range,
.inv_range = (range > 0) ? (lutScale / range) : 0.0f,
.inv_range_log = (range > 0) ? (lutScale / std::log1p(range)) : 0.0f,
.hdr = hdr_mode,
.gap = color_scale.Apply(ColorScaleSpecial::Gap),
.bad = bad_color,
// Saturation color
.saturated = show_saturation ? bad_color : color_scale.Apply(1.0f),
.beam_stop = show_beam_stop ? color_scale.Apply(ColorScaleSpecial::BeamStop) : bad_color,
};
}
void JFJochImage::ColorRow(size_t y, const PixelColorMap &map, QRgb *out) const {
const float *row = &image_fp[y * W];
for (size_t x = 0; x < W; ++x) {
const float fp = row[x];
rgb c;
if (!std::isfinite(fp))
c = std::isnan(fp) ? map.gap : (std::signbit(fp) ? map.bad : map.saturated);
else
c = map.Apply(fp);
out[x] = qRgb(c.r, c.g, c.b);
}
}
void JFJochImage::RenderImage() {
if (frame_->width() != int(W) || frame_->height() != int(H))
*frame_ = QImage(int(W), int(H), QImage::Format_RGB32);
// Take the data pointer once, here: scanLine() is non-const, so calling it from the
// workers below would have each of them detach the (possibly shared) buffer in parallel.
uchar *const bits = frame_->bits();
const qsizetype stride = frame_->bytesPerLine();
const PixelColorMap map = MakeColorMap();
QVector<int> rows;
rows.reserve(H);
for (int y = 0; y < H; ++y) rows.push_back(y);
QtConcurrent::blockingMap(rows, [&](int y) {
ColorRow(y, map, reinterpret_cast<QRgb *>(bits + y * stride));
});
image_dirty_ = true;
emit frameRendered();
}
void JFJochImage::ClearFrame() {
*frame_ = QImage();
image_dirty_ = true;
emit frameRendered();
}
void JFJochImage::centerOnSpot(QPointF point) {
// If W or H = 0, then conditions are never satisfied
if (point.x() >= 0 && point.x() < W && point.y() >= 0 && point.y() < H)
centerOn(point);
emitViewportChanged();
}
void JFJochImage::emitViewportChanged() {
if (m_applyingViewport || !scene())
return;
emit viewportChanged(transform(), mapToScene(viewport()->rect().center()));
}
void JFJochImage::applyViewport(QTransform transform, QPointF center) {
if (m_applyingViewport || !scene())
return;
m_applyingViewport = true;
// As in wheelEvent: one rebuild, not one per scrollbar move
suppress_overlay_update_ = true;
setTransform(transform);
scale_factor = transform.m11();
centerOn(center);
suppress_overlay_update_ = false;
updateOverlay();
m_applyingViewport = false;
}
QString JFJochImage::PixelLabel(int x, int y) const {
// Choose thresholds that fit your UI width
constexpr float kMinFixed = 1e-3;
constexpr float kMaxFixed = 1e5;
const float val = image_fp[static_cast<size_t>(y) * W + x];
const auto absVal = std::abs(val);
const auto nearest = std::nearbyint(val);
if (std::isnan(val))
return QStringLiteral("Gap");
if (std::isinf(val))
return std::signbit(val) ? QStringLiteral("Err") : QStringLiteral("Sat");
if (val == 0.0f)
return QStringLiteral("0");
if (absVal >= kMinFixed && absVal < kMaxFixed) {
if (std::abs(val - nearest) < 1e-6)
return QString::number(static_cast<qint64>(val));
if (absVal < 1e4)
return QString::number(val, 'f', label_decimals_);
return QString::number(val, 'f', std::min(label_decimals_, 2));
}
return QString::number(val, 'e', 1);
}
void JFJochImage::drawPixelLabels(QPainter *painter, const QRectF &rect) {
constexpr int kMaxLabels = 5000;
// Only the exposed area, not the whole viewport: a hover repaint dirties a couple of hundred
// pixels, and laying out every visible cell for it would do thousands of mapFromScene / pixel /
// drawText calls whose output is then clipped away - at up to 15 repaints a second.
const QRectF visibleRect = mapToScene(viewport()->rect()).boundingRect() & rect;
const int startX = std::max(0, static_cast<int>(std::floor(visibleRect.left())));
const int endX = std::min(static_cast<int>(W), static_cast<int>(std::ceil(visibleRect.right())));
const int startY = std::max(0, static_cast<int>(std::floor(visibleRect.top())));
const int endY = std::min(static_cast<int>(H), static_cast<int>(std::ceil(visibleRect.bottom())));
if (endX <= startX || endY <= startY)
return;
if ((endX - startX) * (endY - startY) > kMaxLabels)
return;
// Laid out in viewport pixels: a constant, readable size independent of the zoom
painter->save();
painter->resetTransform();
QFont font("DejaVu Sans Mono");
font.setStyleHint(QFont::TypeWriter);
font.setPixelSize(std::clamp(static_cast<int>(scale_factor * 0.3), 7, 16));
painter->setFont(font);
for (int y = startY; y < endY; y++) {
for (int x = startX; x < endX; x++) {
const QRect cell = mapFromScene(QRectF(x, y, 1, 1)).boundingRect();
// Read the colour back from the rendered image rather than keeping a full-size
// mirror of it around for the few pixels that get a label.
const QRgb pxl = frame_->pixel(x, y);
painter->setPen(luminance(rgb{.r = static_cast<uint8_t>(qRed(pxl)),
.g = static_cast<uint8_t>(qGreen(pxl)),
.b = static_cast<uint8_t>(qBlue(pxl))}) > 128.0
? Qt::black : Qt::white);
painter->drawText(cell, Qt::AlignCenter, PixelLabel(x, y));
}
}
painter->restore();
}
void JFJochImage::drawForeground(QPainter *painter, const QRectF &rect) {
QGraphicsView::drawForeground(painter, rect);
if (scale_factor > 30.0 && W * H > 0 && frame_ && !frame_->isNull())
drawPixelLabels(painter, rect);
}
void JFJochImage::resetScenePointers() {
image_item_ = nullptr;
overlay_items_.clear();
}
void JFJochImage::updateOverlay() {
if (!scene() || W * H <= 0) return;
// Remove only overlay items, keep the image item persistent
for (auto *item : overlay_items_)
scene()->removeItem(item);
qDeleteAll(overlay_items_);
overlay_items_.clear();
// Ensure the image item exists and is up-to-date. Refreshing it marks the whole item
// dirty, which forces a full repaint of the viewport, so only do it when the image
// really changed - not on every pan and zoom.
if (!image_item_) {
image_item_ = new JFJochImageItem(frame_);
image_item_->setZValue(0);
scene()->addItem(image_item_);
image_dirty_ = false;
} else if (image_dirty_) {
image_item_->refresh();
image_dirty_ = false;
}
DrawROI();
addCustomOverlay();
}
void JFJochImage::addCustomOverlay() {}
void JFJochImage::fitToView() {
initial_fit_done_ = false;
Redraw();
}
void JFJochImage::fitToViewShorterSideOnce() {
if (initial_fit_done_ && prev_H == H && prev_W == W)
return;
if (W == 0 || H == 0 || !viewport())
return;
prev_H = H;
prev_W = W;
// Guard against tiny or zero viewport (happens before layout settles)
const QSize vp = viewport()->size();
if (vp.width() < 8 || vp.height() < 8)
return; // resizeEvent / showEvent will retry once the layout has settled
if (scene())
scene()->setSceneRect(QRectF(0, 0, static_cast<qreal>(W), static_cast<qreal>(H)));
const auto oldAnchor = transformationAnchor();
setTransformationAnchor(QGraphicsView::AnchorViewCenter);
setTransform(QTransform());
fitInView(QRectF(0, 0, static_cast<qreal>(W), static_cast<qreal>(H)), Qt::KeepAspectRatio);
scale_factor = transform().m11();
centerOn(QPointF(static_cast<qreal>(W) * 0.5, static_cast<qreal>(H) * 0.5));
setTransformationAnchor(oldAnchor);
initial_fit_done_ = true;
}
void JFJochImage::adjustForeground(bool input) {
m_adjustForegroundWithWheel = input;
}
double JFJochImage::GetScaleFactor() const {
return scale_factor;
}
void JFJochImage::setZoom(double input) {
if (std::isfinite(input) && input > 0) {
scale_factor = input;
if (!scene())
return;
setTransform(QTransform::fromScale(input, input));
updateOverlay();
emitViewportChanged();
}
}