"RotationIndexer judges a tilt no mounting can have on the spots" (the cheapest of the four, ~3.5 s on FFTW) joins the portable set, and RotationIndexerTest.cpp is compiled into jfjoch_portable_test. The three rotation-indexer setups now ask for Auto instead of naming FFT under CUDA and FFTW otherwise: for rotation indexing DiffractionExperiment::GetIndexingAlgorithm resolves FFT/FFTW on get_gpu_count() whatever was requested, so this changes nothing on either build, and states what a run without a GPU relies on. Checked on a CUDA build with CUDA_VISIBLE_DEVICES="": all 45 [portable] cases pass (Auto falls back to FFTW - the rotation case takes 3.8 s against 1.4 s with the GPU visible - and the 4-frame rugnux wedge runs on the CPU path). No change to the indexer selection was needed. The FFTIndexer* unit tests are not added: none goes through Auto - each names FFT (and FFTW) explicitly, and the explicit FFT request fails with "cudaHostRegister failed" when no GPU is visible, as it should. Co-Authored-By: Claude Opus 5.5 (1M context) <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01D1G8gJVAy6gp1K5Dz3NE5C
280 lines
13 KiB
C++
280 lines
13 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 <catch2/catch_all.hpp>
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#include <iostream>
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#include "../image_analysis/rotation_indexer/RotationIndexer.h"
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#include "../image_analysis/bragg_prediction/BraggPrediction.h"
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TEST_CASE("RotationIndexer") {
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DiffractionExperiment exp_i;
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exp_i.IncidentEnergy_keV(WVL_1A_IN_KEV)
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.BeamX_pxl(1000)
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.BeamY_pxl(1000)
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.PoniRot1_rad(0.01)
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.PoniRot2_rad(0.02)
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.DetectorDistance_mm(200)
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.ImagesPerTrigger(50);
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IndexingSettings settings;
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settings.Algorithm(IndexingAlgorithmEnum::Auto); // rotation: FFT with a GPU, FFTW without
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settings.RotationIndexing(true).RotationIndexingAngularStride_deg(1.0).RotationIndexingMinAngularRange_deg(30.0);
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exp_i.ImportIndexingSettings(settings);
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// Base lattice (non-pathological)
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CrystalLattice latt_base(40, 50, 80, 90, 90, 90);
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latt_base = latt_base.Multiply(RotMatrix(2.0, Coord(sqrt(3)/3,sqrt(3)/3,sqrt(3)/3)));
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// Rotation axis: around X with 1 deg per image
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GoniometerAxis axis("omega", 0.0f, 1.0f, Coord(1,0,0), std::nullopt);
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exp_i.Goniometer(axis);
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BraggPredictionSettings prediction_settings{
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.high_res_A = 1.3,
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.ewald_dist_cutoff = 0.002
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};
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IndexerThreadPool indexer_thread_pool(exp_i.GetIndexingSettings());
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RotationIndexer indexer(exp_i, indexer_thread_pool);
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BraggPrediction prediction;
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int cnt = 0;
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// Predict reflections for images at 0-30 deg.
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for (int img = 0; img < 50; ++img) {
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std::vector<SpotToSave> spots;
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// For a rotated image, per-image lattice is obtained as Multiply(rot.transpose())
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const float angle_deg = axis.GetAngle_deg(img) + axis.GetWedge_deg() / 2.0f;
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const RotMatrix rot = axis.GetTransformationAngle(angle_deg);
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const CrystalLattice latt_img = latt_base.Multiply(rot.transpose());
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const auto n = prediction.Calc(exp_i, latt_img, prediction_settings);
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for (int i = 0; i < n; ++i) {
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const auto& r = prediction.GetReflections().at(i);
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SpotToSave s{};
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s.x = r.predicted_x;
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s.y = r.predicted_y;
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s.image = img; // provide image index for rotation-aware refinement
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s.intensity = 1.0f; // minimal positive value
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s.phi = angle_deg;
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s.ice_ring = false;
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s.indexed = true;
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spots.push_back(s);
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}
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indexer.ProcessImage(img, spots);
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if (img == 30)
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indexer.RunIndexing();
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auto result = indexer.GetLattice();
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if (result.has_value())
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cnt++;
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}
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CHECK(cnt == 20);
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// An indexer that ran records no error; only one that threw does. A caller reporting "no lattice"
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// to the user tells the two apart on this.
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CHECK_FALSE(indexer.GetIndexerError().has_value());
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auto ret = indexer.GetLattice();
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REQUIRE(ret.has_value());
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auto uc = ret->lattice.GetUnitCell();
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auto uc_ref = latt_base.GetUnitCell();
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REQUIRE(std::fabs(uc.a - uc_ref.a) < 0.1);
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REQUIRE(std::fabs(uc.b - uc_ref.b) < 0.1);
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REQUIRE(std::fabs(uc.c - uc_ref.c) < 0.1);
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REQUIRE(std::fabs(uc.alpha - uc_ref.alpha) < 0.1);
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REQUIRE(std::fabs(uc.beta - uc_ref.beta) < 0.1);
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REQUIRE(std::fabs(uc.gamma - uc_ref.gamma) < 0.1);
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CHECK(ret->search_result.centering == 'P');
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CHECK(ret->search_result.system == gemmi::CrystalSystem::Orthorhombic);
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}
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// RefineConstrained is what a caller reaches for when it has ADOPTED a symmetry the indexing never
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// refined under - the intensities confirm a two-fold the spot positions never offered - and so holds
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// a cell whose metric is still the free fit's. Give it such a cell: the lattice this crystal indexes
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// on, sheared so that alpha is a degree off, which is what that situation looks like. The constraint
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// has to take it back to a cell the group can describe, and the spots have to be happier for it.
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TEST_CASE("RotationIndexer::RefineConstrained puts a free metric back on its class") {
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DiffractionExperiment exp_i;
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exp_i.IncidentEnergy_keV(WVL_1A_IN_KEV)
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.BeamX_pxl(1000)
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.BeamY_pxl(1000)
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.DetectorDistance_mm(200)
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.ImagesPerTrigger(50);
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IndexingSettings settings;
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settings.Algorithm(IndexingAlgorithmEnum::Auto); // rotation: FFT with a GPU, FFTW without
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settings.RotationIndexing(true).RotationIndexingAngularStride_deg(1.0).RotationIndexingMinAngularRange_deg(30.0);
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exp_i.ImportIndexingSettings(settings);
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const CrystalLattice latt_base =
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CrystalLattice(40, 50, 80, 90, 105, 90).Multiply(RotMatrix(2.0, Coord(sqrt(3)/3, sqrt(3)/3, sqrt(3)/3)));
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GoniometerAxis axis("omega", 0.0f, 1.0f, Coord(1, 0, 0), std::nullopt);
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exp_i.Goniometer(axis);
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BraggPredictionSettings prediction_settings{ .high_res_A = 1.3, .ewald_dist_cutoff = 0.002 };
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IndexerThreadPool indexer_thread_pool(exp_i.GetIndexingSettings());
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RotationIndexer indexer(exp_i, indexer_thread_pool);
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BraggPrediction prediction;
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for (int img = 0; img < 50; ++img) {
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std::vector<SpotToSave> spots;
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const float angle_deg = axis.GetAngle_deg(img) + axis.GetWedge_deg() / 2.0f;
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const CrystalLattice latt_img = latt_base.Multiply(axis.GetTransformationAngle(angle_deg).transpose());
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const auto n = prediction.Calc(exp_i, latt_img, prediction_settings);
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for (int i = 0; i < n; ++i) {
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const auto &r = prediction.GetReflections().at(i);
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SpotToSave s{};
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s.x = r.predicted_x;
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s.y = r.predicted_y;
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s.image = img;
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s.intensity = 1.0f;
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s.phi = angle_deg;
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s.ice_ring = false;
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s.indexed = true;
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spots.push_back(s);
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}
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indexer.ProcessImage(img, spots);
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if (img == 30)
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indexer.RunIndexing();
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}
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REQUIRE(indexer.GetLattice().has_value());
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// Shear c along b: the orientation and two of the axes are untouched, and alpha - which the class
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// fixes at 90 - moves by about a degree. A free refinement that has walked into a class leaves
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// exactly this, a cell the group cannot describe standing in the group's own setting.
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const CrystalLattice sheared(latt_base.Vec0(), latt_base.Vec1(),
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latt_base.Vec2() + latt_base.Vec1() * 0.02f);
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CHECK(std::fabs(sheared.GetUnitCell().alpha - 90.0) > 0.5);
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const auto refit = indexer.RefineConstrained(sheared, gemmi::CrystalSystem::Monoclinic);
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REQUIRE(refit.has_value());
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const auto uc = refit->lattice.GetUnitCell();
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CHECK(uc.alpha == Catch::Approx(90.0).margin(1e-3));
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CHECK(uc.gamma == Catch::Approx(90.0).margin(1e-3));
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// ...and it is the cell the crystal has, not merely a cell obeying the constraint.
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CHECK(uc.a == Catch::Approx(40.0).margin(0.2));
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CHECK(uc.b == Catch::Approx(50.0).margin(0.2));
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CHECK(uc.c == Catch::Approx(80.0).margin(0.2));
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CHECK(uc.beta == Catch::Approx(105.0).margin(0.2));
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// The spots decide whether a caller keeps it, so the fractions have to be the real comparison:
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// the sheared cell indexes worse than the one the constraint brings back.
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CHECK(refit->indexed_fraction > refit->indexed_fraction_before);
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CHECK(refit->indexed_fraction > 0.5f);
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}
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// Index a synthetic sweep recorded on a detector tilted by true_tilt_deg beyond the tilt the indexer
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// is handed, with reflections to res_A.
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static std::optional<RotationIndexerResult> IndexOnTiltedDetector(double true_tilt_deg, float res_A) {
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constexpr double header_rot2_rad = 0.02;
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DiffractionExperiment exp_header;
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exp_header.IncidentEnergy_keV(WVL_1A_IN_KEV)
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.BeamX_pxl(1000)
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.BeamY_pxl(1000)
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.PoniRot1_rad(0.01)
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.PoniRot2_rad(header_rot2_rad)
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.DetectorDistance_mm(200)
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.ImagesPerTrigger(50);
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IndexingSettings settings;
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settings.Algorithm(IndexingAlgorithmEnum::Auto); // rotation: FFT with a GPU, FFTW without
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settings.RotationIndexing(true).RotationIndexingAngularStride_deg(1.0).RotationIndexingMinAngularRange_deg(30.0);
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exp_header.ImportIndexingSettings(settings);
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GoniometerAxis axis("omega", 0.0f, 1.0f, Coord(1, 0, 0), std::nullopt);
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exp_header.Goniometer(axis);
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// The detector the spots were actually recorded on.
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DiffractionExperiment exp_true = exp_header;
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exp_true.PoniRot2_rad(header_rot2_rad + true_tilt_deg * PI / 180.0);
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const CrystalLattice latt_base =
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CrystalLattice(40, 50, 80, 90, 90, 90).Multiply(RotMatrix(2.0, Coord(sqrt(3)/3, sqrt(3)/3, sqrt(3)/3)));
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BraggPredictionSettings prediction_settings{ .high_res_A = res_A, .ewald_dist_cutoff = 0.002 };
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IndexerThreadPool indexer_thread_pool(exp_header.GetIndexingSettings());
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RotationIndexer indexer(exp_header, indexer_thread_pool);
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BraggPrediction prediction;
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for (int img = 0; img < 50; ++img) {
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std::vector<SpotToSave> spots;
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const float angle_deg = axis.GetAngle_deg(img) + axis.GetWedge_deg() / 2.0f;
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const CrystalLattice latt_img = latt_base.Multiply(axis.GetTransformationAngle(angle_deg).transpose());
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const auto n = prediction.Calc(exp_true, latt_img, prediction_settings);
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for (int i = 0; i < n; ++i) {
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const auto &r = prediction.GetReflections().at(i);
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SpotToSave s{};
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s.x = r.predicted_x;
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s.y = r.predicted_y;
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s.image = img;
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s.intensity = 1.0f;
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s.phi = angle_deg;
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s.ice_ring = false;
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s.indexed = true;
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spots.push_back(s);
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}
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indexer.ProcessImage(img, spots);
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if (img == 30)
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indexer.RunIndexing();
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}
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// Round-trip through ForceResult - how a canonical pass takes over the result of the scheme
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// indexer that found the lattice, and what the report then reads - so what comes back is what a
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// run sees, the tilt walk included.
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const auto found = indexer.GetLattice();
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if (!found)
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return {};
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RotationIndexer forced(exp_header, indexer_thread_pool);
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forced.ForceResult(*found);
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return forced.GetLattice();
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}
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// The detector tilt is refined freely, and a fit that walks it further from where it started than a
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// mounted detector can be off square by (ROT_TILT_PRIOR_DEG) is refused and made again with the tilt
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// held. The prior must not touch a tilt a mounting can have: on a detector tilted half a degree
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// beyond the tilt the indexer is handed, with reflections to 2.5 A, the fit finds it, keeps it and
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// reports no refusal.
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TEST_CASE("RotationIndexer keeps a tilt a mounting can have") {
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const auto ret = IndexOnTiltedDetector(0.5, 2.5f);
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REQUIRE(ret.has_value());
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CHECK_FALSE(ret->tilt_walk.has_value());
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CHECK((ret->geom.GetPoniRot2_rad() - 0.02) * 180.0 / PI == Catch::Approx(0.5).margin(0.05));
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CHECK(ret->geom.GetPoniRot1_rad() == Catch::Approx(0.01).margin(1e-3));
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const auto uc = ret->lattice.GetUnitCell();
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CHECK(uc.a == Catch::Approx(40.0).margin(0.3));
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CHECK(uc.b == Catch::Approx(50.0).margin(0.3));
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CHECK(uc.c == Catch::Approx(80.0).margin(0.5));
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}
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// The other side of the prior, and the unidentifiability that makes it necessary: the same detector
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// tilted 1.5 deg beyond the handed tilt, but with reflections only to 6 A, where the keystone the
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// fit could read the tilt off is a fraction of a pixel. The free fit does not find 1.5 deg - it runs
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// away to about 4 deg (measured 3.9; at 8 A it reaches 37), because at that 2theta reach the tilt is
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// a whole-pattern shift the beam centre imitates and nothing pins its size. That walk is past the
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// prior, so the lattice is refined again with the tilt held and the two are judged on the spots they
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// index; the result records the walk, both counts, the verdict, and a geometry that matches it. The
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// lattice is not checked: a 1.5 deg detector error on 6 A data already puts the FFT on a different
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// cell before any fit.
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TEST_CASE("RotationIndexer judges a tilt no mounting can have on the spots", "[portable]") {
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const auto ret = IndexOnTiltedDetector(1.5, 6.0f);
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REQUIRE(ret.has_value());
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REQUIRE(ret->tilt_walk.has_value());
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const auto &tw = *ret->tilt_walk;
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CHECK(std::hypot(tw.tilt_rad[0] - 0.01, tw.tilt_rad[1] - 0.02) * 180.0 / PI > 1.0);
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CHECK(tw.spots_walked > 0.0f);
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CHECK(tw.spots_held > 0.0f);
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CHECK(tw.refused == !(tw.spots_walked > tw.spots_held + std::sqrt(tw.spots_held)));
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if (tw.refused) {
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CHECK(ret->geom.GetPoniRot1_rad() == Catch::Approx(0.01).margin(1e-7));
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CHECK(ret->geom.GetPoniRot2_rad() == Catch::Approx(0.02).margin(1e-7));
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} else {
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CHECK(ret->geom.GetPoniRot1_rad() == Catch::Approx(tw.tilt_rad[0]).margin(1e-7));
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CHECK(ret->geom.GetPoniRot2_rad() == Catch::Approx(tw.tilt_rad[1]).margin(1e-7));
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}
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}
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