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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>
298 lines
11 KiB
C++
298 lines
11 KiB
C++
// SPDX-FileCopyrightText: 2025 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 "JFJochReaderImage.h"
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#include "../common/PixelMask.h"
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#include "JFJochDecompress.h"
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#include <queue>
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#include <algorithm>
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#include <cmath>
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JFJochReaderImage::JFJochReaderImage(const DataMessage &in_message,
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const std::shared_ptr<const JFJochReaderDataset> &in_dataset)
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: message(in_message),
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dataset(in_dataset),
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image(in_dataset->experiment.GetPixelsNum(), 0) {
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ProcessInputImage(in_message.image);
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message.image = CompressedImage(image, in_dataset->experiment.GetXPixelsNum(),
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in_dataset->experiment.GetYPixelsNum());
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}
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JFJochReaderImage::JFJochReaderImage(const JFJochReaderImage &other)
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: dataset(other.dataset),
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image(other.image),
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message(other.message),
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saturated_pixel(other.saturated_pixel),
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error_pixel(other.error_pixel),
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valid_pixel(other.valid_pixel),
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valid_min(other.valid_min),
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valid_max(other.valid_max),
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valid_count(other.valid_count),
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has_valid(other.has_valid),
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top_pixels_acc(other.top_pixels_acc),
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top_pixels(other.top_pixels),
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count_histogram(other.count_histogram),
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auto_foreground(other.auto_foreground) {
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// Need to make image use local copy
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message.image = CompressedImage(image, dataset->experiment.GetXPixelsNum(),
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dataset->experiment.GetYPixelsNum());
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}
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void JFJochReaderImage::ProcessInputImage(const CompressedImage &in_image) {
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size_t npixel = in_image.GetWidth() * in_image.GetHeight();
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if (npixel == 0)
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throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
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"Image size cannot be zero");
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std::vector<uint8_t> tmp;
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const auto compression_start_time = std::chrono::steady_clock::now();
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const uint8_t *image_ptr = in_image.GetUncompressedPtr(tmp);
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const auto compression_end_time = std::chrono::steady_clock::now();
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if (in_image.GetCompressionAlgorithm() != CompressionAlgorithm::NO_COMPRESSION)
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message.compression_time_s = std::chrono::duration<float>(compression_end_time - compression_start_time).count();
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switch (in_image.GetMode()) {
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case CompressedImageMode::Int8:
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ProcessInputImage<int8_t>(image_ptr, npixel, INT8_MAX, INT8_MIN);
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break;
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case CompressedImageMode::Int16:
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ProcessInputImage<int16_t>(image_ptr, npixel, INT16_MAX, INT16_MIN);
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break;
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case CompressedImageMode::Int32:
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ProcessInputImage<int32_t>(image_ptr, npixel, INT32_MAX, INT32_MIN);
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break;
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case CompressedImageMode::Uint8:
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ProcessInputImage<uint8_t>(image_ptr, npixel, UINT8_MAX, INT64_MAX);
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break;
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case CompressedImageMode::Uint16:
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ProcessInputImage<uint16_t>(image_ptr, npixel, UINT16_MAX, INT64_MAX);
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break;
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case CompressedImageMode::Uint32:
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ProcessInputImage<uint32_t>(image_ptr, npixel, INT32_MAX, INT64_MAX);
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break;
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default:
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throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Floating point images not supported");
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}
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}
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template<class T>
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void JFJochReaderImage::ProcessInputImage(const void *data, size_t npixel, int64_t sat_value, int64_t special_value) {
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if (npixel != image.size())
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throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
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"Mismatch in input size");
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const T* img_ptr = reinterpret_cast<const T*>(data);
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// Reset per-image stats
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saturated_pixel.clear();
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error_pixel.clear();
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valid_count = 0;
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has_valid = false;
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top_pixels_acc.Clear();
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top_pixels.clear();
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top_pixels.reserve(top_pixels_acc.Capacity());
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bool has_input_mask = false;
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const auto &mask = dataset->pixel_mask->GetMask();
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if (mask.size() == npixel)
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has_input_mask = true;
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for (size_t i = 0; i < npixel; i++) {
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int32_t val;
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if (img_ptr[i] <= INT32_MAX)
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val = static_cast<int32_t>(img_ptr[i]);
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else
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val = INT32_MAX;
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uint32_t mask_val = 0;
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if (has_input_mask)
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mask_val = mask[i];
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if ((mask_val & (
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(1<<PixelMask::ModuleGapPixelBit)
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| (1<<PixelMask::ChipGapPixelBit)
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| (1<<PixelMask::ModuleEdgePixelBit))) != 0) {
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image[i] = GAP_PXL_VALUE;
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} else if ((mask_val & (1u << PixelMask::BeamStopPixelBit)) != 0) {
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image[i] = BEAM_STOP_PXL_VALUE;
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} else if ((mask_val != 0) || (img_ptr[i] == special_value)) {
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image[i] = ERROR_PXL_VALUE;
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error_pixel.emplace(static_cast<int64_t>(i));
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} else if (val >= sat_value) {
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image[i] = SATURATED_PXL_VALUE;
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saturated_pixel.emplace(static_cast<int64_t>(i));
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} else {
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image[i] = val;
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if (!has_valid) {
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has_valid = true;
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valid_min = val;
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valid_max = val;
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} else {
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valid_min = std::min(valid_min, val);
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valid_max = std::max(valid_max, val);
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}
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valid_count++;
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count_histogram.Add(val);
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top_pixels_acc.Add(val, static_cast<int32_t>(i));
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}
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}
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auto_foreground = count_histogram.Percentile(auto_foreground_range).value_or(10);
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// Export top pixels (already sorted descending) into the existing vector interface
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for (int i = 0; i < top_pixels_acc.Size(); i++) {
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const auto &e = top_pixels_acc[i];
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top_pixels.emplace_back(e.value, e.index);
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}
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}
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std::optional<std::pair<int32_t, int32_t>> JFJochReaderImage::ValidMinMax() const {
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if (!has_valid)
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return {};
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return std::make_pair(valid_min, valid_max);
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}
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const std::vector<std::pair<int32_t, int32_t>> &JFJochReaderImage::GetTopPixels() const {
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return top_pixels;
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}
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const DataMessage &JFJochReaderImage::ImageData() const {
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return message;
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}
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DataMessage &JFJochReaderImage::ImageData() {
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return message;
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}
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const std::vector<int32_t> &JFJochReaderImage::Image() const {
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return image;
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}
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const std::unordered_set<int64_t> &JFJochReaderImage::SaturatedPixels() const {
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return saturated_pixel;
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}
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const std::unordered_set<int64_t> &JFJochReaderImage::ErrorPixels() const {
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return error_pixel;
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}
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const JFJochReaderDataset &JFJochReaderImage::Dataset() const {
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if (!dataset)
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throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
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"Dataset not set");
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return *dataset;
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}
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void JFJochReaderImage::AddImage(const JFJochReaderImage &other) {
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if (other.Image().size() != image.size())
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throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
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"Mismatch in size");
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message.indexing_result = false;
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message.resolution_estimate = {};
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message.bkg_estimate = {};
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message.spots = {};
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error_pixel.clear();
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saturated_pixel.clear();
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valid_count = 0;
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has_valid = false;
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top_pixels_acc.Clear();
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top_pixels.clear();
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top_pixels.reserve(top_pixels_acc.Capacity());
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count_histogram.clear();
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for (size_t i = 0; i < image.size(); i++) {
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if (image[i] == GAP_PXL_VALUE || other.image[i] == GAP_PXL_VALUE) {
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image[i] = GAP_PXL_VALUE;
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} else if (image[i] == BEAM_STOP_PXL_VALUE || other.image[i] == BEAM_STOP_PXL_VALUE) {
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image[i] = BEAM_STOP_PXL_VALUE;
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} else if (image[i] == ERROR_PXL_VALUE || other.image[i] == ERROR_PXL_VALUE) {
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image[i] = ERROR_PXL_VALUE;
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error_pixel.emplace(static_cast<int64_t>(i));
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} else if (image[i] == SATURATED_PXL_VALUE || other.image[i] == SATURATED_PXL_VALUE) {
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image[i] = SATURATED_PXL_VALUE;
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saturated_pixel.emplace(static_cast<int64_t>(i));
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} else {
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int64_t sum = static_cast<int64_t>(image[i]) + static_cast<int64_t>(other.image[i]);
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if (sum < MIN_REAL_PXL_VALUE) [[unlikely]] {
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image[i] = ERROR_PXL_VALUE;
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error_pixel.emplace(static_cast<int64_t>(i));
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} else if (sum > dataset->experiment.GetSaturationLimit()) [[unlikely]] {
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image[i] = SATURATED_PXL_VALUE;
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saturated_pixel.emplace(static_cast<int64_t>(i));
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} else {
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const int32_t val = static_cast<int32_t>(sum);
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image[i] = val;
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if (!has_valid) {
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has_valid = true;
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valid_min = val;
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valid_max = val;
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} else {
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valid_min = std::min(valid_min, val);
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valid_max = std::max(valid_max, val);
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}
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valid_count++;
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count_histogram.Add(val);
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top_pixels_acc.Add(val, static_cast<int32_t>(i));
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}
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}
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}
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auto_foreground = count_histogram.Percentile(auto_foreground_range).value_or(10);
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for (int i = 0; i < top_pixels_acc.Size(); i++) {
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const auto &e = top_pixels_acc[i];
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top_pixels.emplace_back(e.value, e.index);
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}
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}
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std::vector<float> JFJochReaderImage::GetAzInt1D() const {
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if (dataset->azimuthal_bins <= 1) {
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return message.az_int_profile;
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} else if (message.az_int_profile.size() == dataset->azimuthal_bins * dataset->q_bins
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&& dataset->azimuthal_bins * dataset->q_bins > 0 ) {
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std::vector<float> tmp(dataset->q_bins);
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for (int i = 0; i < message.az_int_profile.size(); i++)
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tmp[i % dataset->q_bins] += message.az_int_profile[i];
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return tmp;
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} else
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return {};
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}
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std::vector<float> JFJochReaderImage::GetAzInt1D_BinToQ() const {
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if (dataset->azimuthal_bins <= 1) {
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return dataset->az_int_bin_to_q;
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} else if (dataset->az_int_bin_to_q.size() == dataset->azimuthal_bins * dataset->q_bins
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&& dataset->azimuthal_bins * dataset->q_bins > 0 ) {
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std::vector<float> tmp(dataset->q_bins);
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for (int i = 0; i < dataset->q_bins; i++)
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tmp[i] = dataset->az_int_bin_to_q[i];
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return tmp;
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} else
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return {};
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}
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std::shared_ptr<JFJochReaderDataset> JFJochReaderImage::CreateMutableDataset() {
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std::shared_ptr<JFJochReaderDataset> new_dataset = std::make_shared<JFJochReaderDataset>(*dataset);
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dataset = new_dataset;
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return new_dataset;
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}
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int32_t JFJochReaderImage::GetAutoContrastValue() const {
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return auto_foreground;
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}
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std::vector<float> JFJochReaderImage::GetHistogram() const {
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return count_histogram.GetCount();
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}
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