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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>
294 lines
17 KiB
C++
294 lines
17 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 <fstream>
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#include <sstream>
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#include <spdlog/fmt/fmt.h>
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#include "../common/GitInfo.h"
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#include "../common/time_utc.h"
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#include "../image_analysis/scale_merge/Merge.h"
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#include "../image_analysis/scale_merge/SearchSpaceGroup.h"
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#include "../image_analysis/scale_merge/TwinningAnalysis.h"
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#include "ResultReport.h"
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namespace {
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// The version of this file format. Bumped when a key is renamed or removed, a table column moves,
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// or a reason code changes meaning - a consumer can gate on it.
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constexpr int REPORT_VERSION = 1;
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const char *BANNER = " ******************************************************************************";
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void Section(std::ostream &os, const std::string &title) {
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os << "\n" << BANNER << "\n " << title << "\n" << BANNER << "\n\n";
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}
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// Every number a consumer might want is written as one of these, so it is one grep away.
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template <class T> void Key(std::ostream &os, const char *key, const T &value) {
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os << key << "= " << value << "\n";
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}
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std::string CellString(const UnitCell &c) {
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return fmt::format("{:.3f} {:.3f} {:.3f} {:.3f} {:.3f} {:.3f}", c.a, c.b, c.c,
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c.alpha, c.beta, c.gamma);
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}
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}
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std::string RenderResultReport(const std::string &output_prefix,
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const std::string &input_file,
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const DiffractionExperiment &experiment,
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const ProcessResult &result) {
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std::ostringstream os;
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const bool rotation = experiment.IsRotationIndexing();
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const bool merged = result.has_merge_statistics;
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std::vector<std::string> warnings = result.warnings;
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os << BANNER << "\n"
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<< " RUGNUX PROCESSING REPORT\n"
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<< BANNER << "\n\n"
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<< " What this run determined, written next to its other output. The `KEY= value` lines and\n"
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<< " the tables below are a stable interface - a script greps them, and REPORT_VERSION says\n"
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<< " when that interface last changed. Timing, rates and per-image progress are not here;\n"
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<< " they are on stdout.\n\n";
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Key(os, "REPORT_VERSION", REPORT_VERSION);
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Key(os, "RUGNUX_VERSION", jfjoch_version());
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if (!jfjoch_git_sha1().empty())
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Key(os, "RUGNUX_GIT", jfjoch_git_sha1().substr(0, 6) + " " + jfjoch_git_date());
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Key(os, "DATE", time_UTC(std::chrono::system_clock::now()));
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Key(os, "INPUT_FILE", input_file);
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Key(os, "OUTPUT_PREFIX", output_prefix);
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// ---------------------------------------------------------------- 1. DATA SET
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Section(os, "1. DATA SET");
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Key(os, "EXPERIMENT_TYPE", rotation ? "ROTATION" : "STILLS");
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Key(os, "IMAGES_PROCESSED", result.images_processed);
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Key(os, "WAVELENGTH", fmt::format("{:.5f}", experiment.GetWavelength_A()));
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if (const auto gonio = experiment.GetGoniometer()) {
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Key(os, "OSCILLATION_RANGE", fmt::format("{:.4f}", gonio->GetIncrement_deg()));
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Key(os, "STARTING_ANGLE", fmt::format("{:.3f}", gonio->GetStart_deg()));
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const auto ax = gonio->GetAxis();
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Key(os, "ROTATION_AXIS", fmt::format("{:.6f} {:.6f} {:.6f}", ax.x, ax.y, ax.z));
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}
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Key(os, "DETECTOR_DISTANCE", fmt::format("{:.3f}", result.used_distance_mm));
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Key(os, "BEAM_CENTRE", fmt::format("{:.2f} {:.2f}", result.used_beam_x_pxl, result.used_beam_y_pxl));
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os << "\n"
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<< " The distance and beam centre above are the ones this result was integrated at, which on\n"
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<< " a rotation run is the post-refined geometry rather than the values in the input file.\n";
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if (result.pass_count > 1) {
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os << "\n";
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Key(os, "PASS", fmt::format("{} of {}", result.pass_number, result.pass_count));
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Key(os, "PASS_DECISION", result.pass_decision);
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os << "\n"
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<< " A rotation run integrates twice: once at the geometry in the input file, then again at\n"
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<< " the post-refined geometry. Every number in this report describes the pass named above,\n"
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<< " whose files are " << output_prefix << ".*; the header-geometry pass was written to\n"
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<< " " << output_prefix << "_01.* and is kept only for comparison.\n";
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}
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// ---------------------------------------------------------------- 2. INDEXING
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Section(os, "2. INDEXING");
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if (result.indexing_rate.has_value())
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Key(os, "INDEXING_RATE", fmt::format("{:.4f}", result.indexing_rate.value()));
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Key(os, "LATTICE_FOUND", (result.consensus_cell.has_value() ? "TRUE" : "FALSE"));
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if (result.consensus_cell.has_value())
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Key(os, "UNIT_CELL_CONSTANTS", CellString(*result.consensus_cell));
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if (result.space_group_number.has_value())
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Key(os, "SPACE_GROUP_NUMBER", result.space_group_number.value());
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if (result.indexing_rate.value_or(0.0f) <= 0.0f)
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warnings.emplace_back("No image indexed - no crystal lattice was determined from this dataset");
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// ---------------------------------------------- 3. GEOMETRY POST-REFINEMENT
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if (result.post_refine.has_value()) {
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const auto &pr = *result.post_refine;
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Section(os, "3. GEOMETRY POST-REFINEMENT");
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os << " The rotation two-pass fits the detector distance and beam centre from the observed spot\n"
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<< " positions, and the cell scale and rotation axis from the observed rocking angles. Each\n"
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<< " step is committed only if it improves a held-out residual.\n\n";
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Key(os, "POSTREFINE_EVENTS_USED", pr.events_used);
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Key(os, "POSTREFINE_OBS_USED", pr.obs_used);
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Key(os, "POSTREFINE_CELL_COMMITTED", pr.cell_refined ? "TRUE" : "FALSE");
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Key(os, "POSTREFINE_DETECTOR_COMMITTED", pr.detector_refined ? "TRUE" : "FALSE");
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Key(os, "POSTREFINE_DISTANCE", fmt::format("{:.3f} -> {:.3f}", pr.distance_before_mm,
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pr.distance_after_mm));
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Key(os, "POSTREFINE_BEAM_CENTRE", fmt::format("{:.2f} {:.2f} -> {:.2f} {:.2f}",
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pr.beam_x_before_px, pr.beam_y_before_px,
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pr.beam_x_after_px, pr.beam_y_after_px));
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Key(os, "GONIOMETER_ROTATION_SCALE", fmt::format("{:.5f}", pr.rotation_scale));
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Key(os, "GONIOMETER_ROTATION_SCALE_SUSPECT", pr.rotation_scale_suspect ? "TRUE" : "FALSE");
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os << "\n GONIOMETER_ROTATION_SCALE is the factor by which the stage actually turned relative to\n"
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<< " the angles stored in the file (which are the commanded ones). 1.0 = they agree. It drives\n"
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<< " the second integration pass only when SUSPECT is TRUE - both cross-validated and outside\n"
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<< " the tolerance - since a stage that is in fact well calibrated must be left alone. A\n"
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<< " manual --rotation-scale replaces it and is applied to both passes.\n";
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if (pr.rotation_scale_suspect)
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warnings.emplace_back(fmt::format(
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"The goniometer turned by a factor {:.5f} of the angles stored in the file - the "
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"stage rotation looks mis-calibrated by {:+.2f}%. The correction was applied to this "
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"run, but the fault is in the hardware and should be fixed there",
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pr.rotation_scale, 100.0 * (pr.rotation_scale - 1.0)));
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}
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// ---------------------------------------------- 4. SPACE GROUP DETERMINATION
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Section(os, "4. SPACE GROUP DETERMINATION");
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if (result.space_group_search.has_value()) {
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Key(os, "SPACE_GROUP_SEARCH", "DE_NOVO");
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os << "\n" << SearchSpaceGroupResultToText(*result.space_group_search) << "\n";
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} else if (result.space_group_number.has_value()) {
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Key(os, "SPACE_GROUP_SEARCH", "FIXED");
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os << "\n The space group was given, not determined here.\n";
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} else {
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Key(os, "SPACE_GROUP_SEARCH", "NONE");
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os << "\n No space group was determined.\n";
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}
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// ---------------------------------------------------- 5. SCALING AND MERGING
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Section(os, "5. SCALING AND MERGING");
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if (!merged) {
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Key(os, "MERGE", "NOT_PERFORMED");
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os << "\n No scaling or merging was performed on this run, so there are no merging statistics, no\n"
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<< " error model, and no sweep-quality diagnosis below. The integrated reflections are in\n"
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<< " " << output_prefix << "_process.h5.\n";
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} else {
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const auto &o = result.merge_statistics.overall;
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Key(os, "MERGE", "PERFORMED");
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Key(os, "INCLUDE_RESOLUTION_RANGE", fmt::format("{:.3f} {:.3f}", o.d_max, o.d_min));
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Key(os, "FRIEDELS_LAW", experiment.GetScalingSettings().GetMergeFriedel() ? "TRUE" : "FALSE");
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Key(os, "UNIQUE_REFLECTIONS", o.unique_reflections);
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Key(os, "TOTAL_OBSERVATIONS", o.total_observations);
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Key(os, "COMPLETENESS", o.possible_unique_reflections > 0
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? fmt::format("{:.1f}", 100.0 * o.unique_reflections / o.possible_unique_reflections)
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: std::string("nan"));
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Key(os, "MULTIPLICITY", o.unique_reflections > 0
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? fmt::format("{:.2f}", static_cast<double>(o.total_observations) / o.unique_reflections)
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: std::string("nan"));
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Key(os, "I_OVER_SIGMA", fmt::format("{:.2f}", o.mean_i_over_sigma));
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Key(os, "R_MEAS", fmt::format("{:.4f}", o.r_meas));
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Key(os, "CC_HALF", fmt::format("{:.4f}", o.cc_half));
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Key(os, "SIGANO", fmt::format("{:.3f}", o.abs_diff_over_sigma_anomalous));
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Key(os, "WILSON_B", fmt::format("{:.2f}", result.merge_statistics.wilson_b));
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// The error model in XDS's convention, so the numbers are directly comparable with a CORRECT.LP.
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Key(os, "ERROR_MODEL_A", fmt::format("{:.4f}", result.error_model_a));
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Key(os, "ERROR_MODEL_B", fmt::format("{:.4e}", result.error_model_b));
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Key(os, "ISA", fmt::format("{:.2f}", result.error_model_isa));
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if (result.error_model_isa_asymptotic > 0.0)
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Key(os, "ISA_ASYMPTOTIC", fmt::format("{:.2f}", result.error_model_isa_asymptotic));
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Key(os, "REFERENCE_DATA_USED", result.has_reference ? "TRUE" : "FALSE");
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// The shell table straight off the statistics rather than result.merge_statistics_text: that
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// string also carries the twinning analysis and the advisories, which have sections of their own.
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os << "\n ERROR_MODEL_A / ERROR_MODEL_B are in XDS's convention, sigma^2 = a*(sigma0^2 + b*I^2),\n"
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<< " so ISA = 1/sqrt(a*b) means what CORRECT.LP's ISa means. ISA_ASYMPTOTIC, where present,\n"
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<< " is the strong-reflection tier only.\n\n"
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<< result.merge_statistics;
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}
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// --------------------------------------------------------------- 6. TWINNING
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if (merged && result.twinning.l_test_pairs > 0) {
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Section(os, "6. TWINNING");
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Key(os, "TWINNING_SUSPECTED", result.twinning.twinning_suspected ? "TRUE" : "FALSE");
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Key(os, "L_TEST_MEAN_ABS_L", fmt::format("{:.4f}", result.twinning.mean_abs_l));
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Key(os, "L_TEST_MEAN_L_SQUARED", fmt::format("{:.4f}", result.twinning.mean_l_squared));
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Key(os, "SECOND_MOMENT_I", fmt::format("{:.4f}", result.twinning.second_moment));
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Key(os, "ESTIMATED_TWIN_FRACTION", fmt::format("{:.3f}", result.twinning.estimated_twin_fraction));
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os << "\n" << TwinningAnalysisToText(result.twinning) << "\n";
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if (result.twinning.twinning_suspected)
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warnings.emplace_back(fmt::format(
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"Twinning is indicated (<|L|> = {:.3f}, <I^2>/<I>^2 = {:.3f}, estimated twin "
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"fraction {:.2f}) - refine against the merged data with care",
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result.twinning.mean_abs_l, result.twinning.second_moment,
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result.twinning.estimated_twin_fraction));
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}
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// ------------------------------------------------------- 7. RADIATION DAMAGE
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if (!result.radiation_damage_text.empty()) {
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Section(os, "7. RADIATION DAMAGE");
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// A number, or a word saying why there is none: NOT_A_TREND where the per-batch curve was measured
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// but no straight line describes it (damage is progressive, so that curve is not dose), NOT_MEASURED
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// where the monitor could not run at all.
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const double db = result.merge_statistics.radiation_damage_delta_b;
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Key(os, "RADIATION_DAMAGE_RELATIVE_B",
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std::isfinite(db) ? fmt::format("{:.2f}", db)
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: result.merge_statistics.radiation_damage_b_batch.empty() ? std::string("NOT_MEASURED")
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: std::string("NOT_A_TREND"));
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os << "\n" << result.radiation_damage_text << "\n";
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}
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// ------------------------------------------------------ 8. SWEEP QUALITY
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const auto &sq = result.merge_statistics.sweep_quality;
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Section(os, "8. SWEEP QUALITY");
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os << " Stretches of the sweep over which the crystal delivered much less than the rest of the run.\n"
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<< " REASON comes from a closed vocabulary, listed below so a consumer can tell an unknown code\n"
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<< " from a missing one. SEVERITY is the fraction of the run's typical diffracting power missing\n"
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<< " over the range (0 = as good as the run, 1 = nothing at all); SCALE and CC are the range's\n"
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<< " mean per-image scale and CC-to-merge relative to the run median; INDEXED is the fraction of\n"
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<< " the range's frames that were scaled at all. Nothing is excluded on the strength of this.\n\n";
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Key(os, "SWEEP_QUALITY_STATUS", sq.measured ? "COMPUTED" : "NOT_COMPUTED");
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Key(os, "SWEEP_QUALITY_COUNT", sq.ranges.size());
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{
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std::string codes;
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for (int r = 0; r <= static_cast<int>(SweepQualityReason::RadiationDamage); ++r)
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codes += (codes.empty() ? "" : " ")
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+ std::string(SweepQualityReasonCode(static_cast<SweepQualityReason>(r)));
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Key(os, "SWEEP_QUALITY_REASONS", codes);
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}
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if (sq.measured) {
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Key(os, "SWEEP_ROTATION", fmt::format("{:.1f}", sq.sweep_deg));
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Key(os, "FLUX_PEAK_TO_TROUGH", fmt::format("{:.2f}", sq.flux_peak_to_trough));
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Key(os, "SCALE_MODULATION_PEAK_TO_TROUGH", fmt::format("{:.2f}", sq.modulation_peak_to_trough));
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}
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os << "\n"
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<< " FIRST_IMAGE LAST_IMAGE N_IMAGES ROTATION REASON SEVERITY SCALE CC INDEXED\n"
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<< " ----------- ----------- --------- -------- -------------------- -------- ------ ------ --------\n";
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for (const auto &r : sq.ranges) {
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os << fmt::format(" {:11d} {:11d} {:9d} {:8.1f} {:<20} {:8.2f} {:6.2f} {:6.2f} {:8.2f}\n",
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r.first_image, r.last_image, r.last_image - r.first_image + 1, r.rotation_deg,
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SweepQualityReasonCode(r.reason), r.severity, r.mean_relative_scale,
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r.mean_relative_cc, r.indexed_fraction);
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warnings.push_back(fmt::format(
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"Frames {}-{} {} ({:.1f} deg, scale {:.2f} and CC {:.2f} of the run, {:.0f}% scaled)",
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r.first_image, r.last_image, SweepQualityReasonText(r.reason), r.rotation_deg,
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r.mean_relative_scale, r.mean_relative_cc, 100.0 * r.indexed_fraction));
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}
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os << " ----------- ----------- --------- -------- -------------------- -------- ------ ------ --------\n";
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// --------------------------------------------------------------- 9. WARNINGS
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if (result.cancelled)
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warnings.emplace_back(fmt::format("Processing was cancelled after {} images - this report "
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"describes an incomplete run", result.images_processed));
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Section(os, "9. WARNINGS");
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os << " Everything that needs a person's attention, one line each, marked so a script can find\n"
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<< " them with a single grep for \"WARNING:\".\n\n";
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Key(os, "WARNING_COUNT", warnings.size());
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os << "\n";
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for (const auto &w : warnings)
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os << "WARNING: " << w << "\n";
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if (warnings.empty())
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|
os << " (none)\n";
|
|
|
|
os << "\n" << BANNER << "\n END OF REPORT\n" << BANNER << "\n";
|
|
return os.str();
|
|
}
|
|
|
|
void WriteResultReport(const std::string &output_prefix,
|
|
const std::string &input_file,
|
|
const DiffractionExperiment &experiment,
|
|
const ProcessResult &result,
|
|
Logger &logger) {
|
|
if (output_prefix.empty())
|
|
return; // "compute the statistics, persist nothing"
|
|
|
|
const std::string filename = output_prefix + "_report.txt";
|
|
// The report is unconditional, so it must never be the reason a run fails: a run that produced a
|
|
// good .mtz must survive an unwritable path or a full disk. Report the failure and carry on.
|
|
try {
|
|
std::ofstream file(filename);
|
|
file.exceptions(std::ios::failbit | std::ios::badbit);
|
|
file << RenderResultReport(output_prefix, input_file, experiment, result);
|
|
} catch (const std::exception &e) {
|
|
logger.Warning("Could not write the results report {}: {}", filename, e.what());
|
|
}
|
|
}
|