The native miniCBF reader added for rugnux is a plain JFJochReader, so the viewer only needed to be told which one to open a file with. JFJochImageReadingWorker held a concrete JFJochHDF5Reader; it now holds both readers and a JFJochReader* pointing at whichever the open file needs, chosen by JFJochCBFReader::CanRead. Naming any frame opens the whole sweep - the reader's own template matcher decides which frames belong to it, so a directory holding two sweeps or XDS auxiliary files is not spliced together. The previous file is closed before the new one is opened, so switching format between HDF5 and CBF in one session leaves nothing behind. Everything the viewer draws already goes through JFJochReader and JFJochReaderDataset, so nothing else had to move. The two HDF5-only features stay on the HDF5 reader: calibration images, and the reprocessing snapshots, which are metadata read back over the same images the reader is serving and have nothing to attach to for a directory of CBFs. A raw sweep therefore shows geometry and pictures with an empty run list, which is the state a live HTTP stream is already in. Reprocessing jobs run on a CBF sweep too - JFJochProcessController opens its own reader the same way, and Rugnux has handled a CBF source since the reader landed. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01Lc5JG6kJqZoCWaoZ43JGTW
142 lines
5.8 KiB
C++
142 lines
5.8 KiB
C++
// SPDX-FileCopyrightText: 2026 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
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// SPDX-License-Identifier: GPL-3.0-only
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#include "JFJochProcessController.h"
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#include "../reader/JFJochCBFReader.h"
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#include "../reader/JFJochHDF5Reader.h"
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#include <QMetaType>
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#include <cmath>
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JFJochProcessController::JFJochProcessController(QObject *parent) : QObject(parent) {
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qRegisterMetaType<ProcessResult>("ProcessResult");
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qRegisterMetaType<std::shared_ptr<const JFJochReaderDataset>>("std::shared_ptr<const JFJochReaderDataset>");
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}
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JFJochProcessController::~JFJochProcessController() {
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cancel();
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joinWorker_();
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}
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void JFJochProcessController::joinWorker_() {
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if (worker_.joinable())
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worker_.join();
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}
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void JFJochProcessController::start(const QString &file_path, DiffractionExperiment experiment,
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PixelMask pixel_mask, ProcessConfig config) {
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if (running_.exchange(true))
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return; // a job is already running
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cancel_pending_ = false;
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joinWorker_(); // reap the previous (finished) worker, if any
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worker_ = std::thread(&JFJochProcessController::run_, this,
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file_path, std::move(experiment), std::move(pixel_mask), std::move(config));
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emit started();
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}
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void JFJochProcessController::cancel() {
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cancel_pending_ = true;
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if (auto *p = active_.load())
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p->Cancel();
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}
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void JFJochProcessController::run_(QString file_path, DiffractionExperiment experiment,
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PixelMask pixel_mask, ProcessConfig config) {
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try {
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JFJochHDF5Reader hdf5_reader;
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JFJochCBFReader cbf_reader;
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JFJochReader *reader_ptr;
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if (JFJochCBFReader::CanRead(file_path.toStdString())) {
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cbf_reader.ReadFiles(file_path.toStdString());
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reader_ptr = &cbf_reader;
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} else {
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hdf5_reader.ReadFile(file_path.toStdString());
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reader_ptr = &hdf5_reader;
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}
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JFJochReader &reader = *reader_ptr;
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// Seed the live dataset with the experiment so the chart has geometry context; per-image
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// results are filled in by OnImageProcessed as the run progresses.
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{
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auto base = std::make_shared<JFJochReaderDataset>();
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base->experiment = experiment;
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std::lock_guard lock(live_mutex_);
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live_dataset_ = std::move(base);
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last_live_emit_ = {};
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}
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Rugnux process(reader, std::move(experiment), std::move(pixel_mask), std::move(config));
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active_ = &process;
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if (cancel_pending_)
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process.Cancel();
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ProcessResult result = process.Run(this);
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active_ = nullptr;
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running_ = false;
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emit finished(result);
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} catch (const std::exception &e) {
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active_ = nullptr;
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running_ = false;
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emit failed(QString::fromStdString(e.what()));
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}
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}
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void JFJochProcessController::OnPhase(const std::string &phase) {
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emit phaseChanged(QString::fromStdString(phase));
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}
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void JFJochProcessController::OnProgress(uint64_t done, uint64_t total) {
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// Throttle to ~200 updates so a long run does not flood the GUI event queue.
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const uint64_t step = total > 200 ? total / 200 : 1;
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if (done == total || done % step == 0)
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emit progress(done, total);
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}
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void JFJochProcessController::OnImageProcessed(const DataMessage &msg) {
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std::shared_ptr<JFJochReaderDataset> snapshot;
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{
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std::lock_guard lock(live_mutex_);
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if (!live_dataset_)
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return;
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// Place each available per-image result at its ordinal; gaps (images still being processed
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// by other threads) read back as NaN.
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const int64_t i = msg.number;
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auto put = [i](std::vector<float> &v, float val) {
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if (static_cast<int64_t>(v.size()) <= i)
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v.resize(i + 1, NAN);
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v[i] = val;
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};
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auto &d = *live_dataset_;
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// Map this ordinal back to its original image number (for the x-axis of subset/strided runs).
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if (static_cast<int64_t>(d.source_image_number.size()) <= i)
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d.source_image_number.resize(i + 1, 0);
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d.source_image_number[i] = static_cast<int>(msg.original_number.value_or(msg.number));
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if (msg.spot_count) put(d.spot_count, *msg.spot_count);
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if (msg.spot_count_indexed) put(d.spot_count_indexed, *msg.spot_count_indexed);
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if (msg.spot_count_low_res) put(d.spot_count_low_res, *msg.spot_count_low_res);
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if (msg.spot_count_ice_rings) put(d.spot_count_ice_rings, *msg.spot_count_ice_rings);
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if (msg.indexing_result) put(d.indexing_result, *msg.indexing_result ? 1.0f : 0.0f);
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if (msg.indexing_lattice_count) put(d.indexing_lattice_count, *msg.indexing_lattice_count);
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if (msg.bkg_estimate) put(d.bkg_estimate, *msg.bkg_estimate);
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if (msg.resolution_estimate) put(d.resolution_estimate, *msg.resolution_estimate);
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if (msg.profile_radius) put(d.profile_radius, *msg.profile_radius);
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if (msg.mosaicity_deg) put(d.mosaicity_deg, *msg.mosaicity_deg);
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if (msg.b_factor) put(d.b_factor, *msg.b_factor);
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if (msg.integrated_reflections) put(d.integrated_reflections, *msg.integrated_reflections);
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if (msg.image_scale_factor) put(d.image_scale_factor, *msg.image_scale_factor);
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if (msg.image_scale_cc) put(d.image_scale_cc, *msg.image_scale_cc);
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// Throttle to ~4 Hz so the GUI plots refresh smoothly without flooding the event queue.
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const auto now = std::chrono::steady_clock::now();
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if (now - last_live_emit_ < std::chrono::milliseconds(250))
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return;
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last_live_emit_ = now;
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snapshot = std::make_shared<JFJochReaderDataset>(d); // immutable copy for the GUI thread
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}
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emit liveDataset(snapshot);
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}
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