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* `rugnux --model` reports CC(model, data) - the correlation of the merged intensities with the placed, scaled model - by resolution shell, on the same shells as CC1/2, with the reflection count and a significance for each. * `rugnux --model` fits the model's scale, anisotropic B and bulk-solvent parameters on the working reflections only, so the R-free it reports is measured against a model no free reflection helped scale. * The bulk-solvent parameters of `rugnux --model` are searched over their physically meaningful range instead of being fitted without bounds, so a model is never scaled with a solvent term that has silently switched itself off. * The rigid-body placement of `rugnux --model` uses the same bounded bulk solvent as the reported fit, so a model is no longer placed against a target carrying a solvent term with no physical meaning. * `rugnux --model` puts the model into the data's own description of the lattice before placing it, so a model whose cell is written on other axes - I-centred where the run indexed C-centred, a different unique axis, a permuted orthorhombic cell - is placed rather than scored where it was read; `MODEL_CHANGE_OF_BASIS=` and `MODEL_SETTING_AS_READ=` report it when it happens. * The rugnux results report opens with a summary - `VERDICT=` (`OK`, `WARNINGS`, `UNUSABLE`, `FAILED`), `VERDICT_TEXT=`, `PATHOLOGY_FLAGS=` with one closed-vocabulary code per condition that warned, and the `WARNING:` lines, which used to close the file - and the sections after it are renumbered 1-5 with no gaps. * `rugnux --developer` writes the full results report - the pipeline-internal keys and the long explanations the default report now leaves out - and `--finalist-ledger` adds the evidence for every space group the search considered, not only the one it adopted. * The results report warns when the merged data carry no usable signal and when too little of reciprocal space was measured inside the fitted resolution, and omits `FITTED_RESOLUTION` where the CC1/2 curve it is fitted on never falls off. * rugnux detects translational pseudo-symmetry and reports it under the `PSEUDO_TRANSLATION` flag as `TNCS_DETECTED=` and the `TNCS_*` keys - a translation the merged data are exactly invariant under is reported as `UNDECLARED_LATTICE_TRANSLATION=` under `LATTICE_TRANSLATION` instead - and a detected pseudo-translation can no longer buy a false screw axis in the space-group search or hide a twin from the L-test (`L_TEST_VS_TNCS=`). * The space-group search determines glide planes from zonal systematic absences, so a non-Sohncke space group such as P 2_1/c or Pbca is named where the run previously stopped at its Sohncke subgroup; `SOHNCKE_SPACE_GROUP=` carries the best Sohncke group beside it on every run that searched, and a centre of symmetry is never claimed. * Where the cell metric carries more rotational symmetry than the Bravais class the indexer named, the extra rotations are put to the intensities and the space-group search is asked again on the metric's own cell - adopted only where the intensities confirm the higher symmetry - so a lattice that is nearly but not exactly hexagonal, or whose reduction landed in a sub-cell, still reaches its true point group. * Systematic-absence calls rest on the evidence rather than on counts: a screw axis whose absent class the data show extinct is no longer refused because a handful of reflections in it read as present, and `SPACE_GROUP_ALTERNATIVES=` no longer drops a candidate that differs only on a zone the sweep never measured. * A reference correlation measured on too few reflections is refused instead of scored zero, so a run given a reference MTZ is no longer reindexed on an operator that mapped almost everything outside the reference's coverage. * A frame counts as indexed from 6 spots on its lattice rather than 9, so a weakly diffracting crystal whose frames cannot carry 9 is no longer refused the lattice it fits; `--min-indexed-spots` overrides it. * `-C` accepts a known cell in any equivalent description - conventional or primitive, centred or not - instead of only the reduced primitive form, so a centred cell given the way it is published no longer makes the run report that it found no lattice. * Each reflection is corrected for the sensor's quantum efficiency at the angle it meets the detector (attenuation lengths from the NIST tables, which also fixes the spot-width parallax term on CdTe) and for the attenuation of the flight path between the sample and its pixel; `--flight-path air|helium|vacuum` declares the medium - default air, since no file states it - and the report says what was assumed and what it was worth. The unmerged MTZ records the factors in new `QE` and `FLIGHT` columns beside `LP`, so raw counts are `I / LP * QE * FLIGHT`, and `_process.h5` in new optional `qe` and `flight` datasets. * Rotation geometry post-refinement fits the crystal and the detector at once, against the observed spot positions and the observed rocking angles together, so the refined distance depends far less on how wrong the file's distance was. * A coarsely sliced sweep integrates correctly: partials are joined into one rocking event by angle rather than by frame count, so two crossings of the Ewald sphere are no longer summed into one full, and at 0.5 degrees per image or coarser the per-frame geometry refinement accepts a spot whose miss the exposure's own rotation accounts for. * `rugnux --mode scale` reports the detector tilt and direct beam of the geometry it re-scaled at, instead of zeros that read as a flat detector, and no longer warns that no image was indexed on a run whose lattice came from its input file. * Every rotation run that determined a space group and merged reports what the mounting cost: `SPINDLE_LOST_UNIQUE_FRACTION=` is the fraction (0-1) of unique reflections the mounting made unmeasurable under the measured point group, also written to the master as `/entry/MX/spindleLostUniqueFraction` and what the mounting warning fires on; `SPINDLE_SYMMETRY_AXIS_ANGLE_DEG=` / `SPINDLE_SYMMETRY_AXIS_ORDER=` describe the mounting in the `--developer` report. * Stills and grid scans carry a per-image `spindle_blind_fraction` - how much of a rotation sweep's blind cone this orientation would make unrecoverable, 0.5 and above calling for a second orientation - through the CBOR stream, HDF5 (`/entry/MX/spindleBlindFraction`), the plot and scan-result APIs, and the viewer and frontend plots; an absent value means the frame could not be assessed and is not a 0. * The results report's `REPORT_VERSION` is 7. Reviewed-on: #77 Co-authored-by: Filip Leonarski <filip.leonarski@psi.ch>
210 lines
11 KiB
C++
210 lines
11 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 <catch2/catch_all.hpp>
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#include <cmath>
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#include <vector>
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#include "../image_analysis/scale_merge/AnisotropyAnalysis.h"
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#include "gemmi/symmetry.hpp"
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#include "gemmi/unitcell.hpp"
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namespace {
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gemmi::UnitCell Cell(double a, double b, double c, double al, double be, double ga) {
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gemmi::UnitCell out;
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out.set(a, b, c, al, be, ga);
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return out;
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}
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// A synthetic merge: Wilson-distributed intensities with an isotropic fall-off and a known
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// deviatoric anisotropy on top, over every hkl inside the resolution limit. The "structure
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// factor" is a hash of the index, so the set is reproduced bit for bit.
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std::vector<MergedReflection> SyntheticMerge(const gemmi::UnitCell &cell, const gemmi::SpaceGroup *sg,
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double d_min, double b_iso,
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const gemmi::SMat33<double> &b_dev) {
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const gemmi::GroupOps ops = sg->operations();
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const gemmi::ReciprocalAsu asu(sg);
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std::vector<MergedReflection> out;
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const int hmax = static_cast<int>(cell.a / d_min) + 1;
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const int kmax = static_cast<int>(cell.b / d_min) + 1;
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const int lmax = static_cast<int>(cell.c / d_min) + 1;
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for (int h = -hmax; h <= hmax; ++h)
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for (int k = -kmax; k <= kmax; ++k)
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for (int l = -lmax; l <= lmax; ++l) {
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const gemmi::Op::Miller hkl{{h, k, l}};
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if ((h == 0 && k == 0 && l == 0) || !asu.is_in(hkl) || ops.is_systematically_absent(hkl))
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continue;
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const double d2 = cell.calculate_1_d2(hkl);
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if (d2 <= 0 || 1.0 / std::sqrt(d2) < d_min)
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continue;
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// Wilson draw from a hash of the index: deterministic, and spanning a realistic range.
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const uint32_t seed = static_cast<uint32_t>(h * 73856093 ^ k * 19349663 ^ l * 83492791);
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const double u = ((seed * 2654435761u) >> 8) / static_cast<double>(1 << 24);
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const double wilson = -std::log(std::max(1e-6, u));
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// The tensor is applied in the Cartesian frame, s = F^T h.
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const gemmi::Vec3 s = cell.frac.mat.left_multiply(gemmi::Vec3(h, k, l));
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const double aniso = -0.5 * b_dev.r_u_r(s);
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MergedReflection r;
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r.h = h; r.k = k; r.l = l;
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r.d = static_cast<float>(1.0 / std::sqrt(d2));
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r.I = static_cast<float>(1000.0 * wilson * std::exp(-0.5 * b_iso * d2 + aniso));
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r.sigma = static_cast<float>(0.02 * std::fabs(r.I) + 1.0);
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out.push_back(r);
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}
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return out;
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}
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}
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// The number of free deviatoric anisotropy parameters is fixed by the Laue class alone. This is the
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// self-test of the constraint basis: 5 / 3 / 2 / 1 / 1 / 0 for triclinic / monoclinic / orthorhombic /
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// tetragonal / trigonal-hexagonal / cubic, and nothing else is possible.
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TEST_CASE("Anisotropy free-parameter count", "[anisotropy]") {
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struct Case {
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const char *space_group;
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gemmi::UnitCell cell;
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int free_directions;
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};
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const std::vector<Case> cases{
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{"P 1", Cell(51, 62, 73, 84.0, 95.0, 103.0), 5},
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{"P 1 21 1", Cell(51, 62, 73, 90.0, 95.0, 90.0), 3},
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{"C 1 2 1", Cell(91, 62, 73, 90.0, 105.0, 90.0), 3},
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{"P 21 21 21", Cell(51, 62, 73, 90.0, 90.0, 90.0), 2},
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{"I 2 2 2", Cell(51, 62, 73, 90.0, 90.0, 90.0), 2},
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{"P 43 21 2", Cell(79, 79, 38, 90.0, 90.0, 90.0), 1}, // lysozyme, the field's test specimen
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{"P 31 2 1", Cell(62, 62, 91, 90.0, 90.0, 120.0), 1},
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{"R 3 :H", Cell(78, 78, 33, 90.0, 90.0, 120.0), 1},
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{"P 63", Cell(62, 62, 91, 90.0, 90.0, 120.0), 1},
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{"I 2 3", Cell(78, 78, 78, 90.0, 90.0, 90.0), 0},
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{"F 4 3 2", Cell(78, 78, 78, 90.0, 90.0, 90.0), 0},
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};
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for (const auto &c : cases) {
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const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_name(c.space_group);
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REQUIRE(sg != nullptr);
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std::vector<MergedReflection> merged(1);
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merged[0].h = 1; merged[0].k = 0; merged[0].l = 0;
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merged[0].I = 1.0f; merged[0].sigma = 1.0f; merged[0].d = 10.0f;
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const auto result = AnalyzeAnisotropy(merged, {}, c.cell, sg);
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INFO(c.space_group);
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CHECK(result.n_free_parameters == c.free_directions);
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}
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}
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// A refined cell need not obey its space group's metric constraints exactly, and rugnux writes the
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// unconstrained refined cell. An angle a hundredth of a degree off 90 must not create an extra
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// anisotropy direction.
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TEST_CASE("Anisotropy free-parameter count with an off-metric refined cell", "[anisotropy]") {
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std::vector<MergedReflection> merged(1);
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merged[0].h = 1; merged[0].k = 0; merged[0].l = 0;
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merged[0].I = 1.0f; merged[0].sigma = 1.0f; merged[0].d = 10.0f;
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CHECK(AnalyzeAnisotropy(merged, {}, Cell(51, 62, 73, 90.02, 105.0, 89.97),
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gemmi::find_spacegroup_by_name("C 1 2 1")).n_free_parameters == 3);
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CHECK(AnalyzeAnisotropy(merged, {}, Cell(51.0, 62.0, 73.0, 89.98, 90.03, 90.01),
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gemmi::find_spacegroup_by_name("I 2 2 2")).n_free_parameters == 2);
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CHECK(AnalyzeAnisotropy(merged, {}, Cell(78.01, 77.99, 78.02, 90.01, 89.99, 90.0),
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gemmi::find_spacegroup_by_name("I 2 3")).n_free_parameters == 0);
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}
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// A cubic crystal has no free deviatoric parameter, so its deltaB is exactly zero by symmetry - not
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// small, not measured, zero - and the verdict is a statement about symmetry rather than about data.
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TEST_CASE("Anisotropy is exactly zero in a cubic Laue class", "[anisotropy]") {
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const gemmi::UnitCell cell = Cell(78, 78, 78, 90, 90, 90);
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const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_name("I 2 3");
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const auto merged = SyntheticMerge(cell, sg, 2.5, 20.0, {8.0, -4.0, -4.0, 0.0, 0.0, 0.0});
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REQUIRE(merged.size() > 1000);
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const auto result = AnalyzeAnisotropy(merged, {}, cell, sg);
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CHECK(result.n_free_parameters == 0);
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CHECK(result.delta_b == 0.0);
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CHECK(result.verdict == AnisotropyVerdict::NotDetected);
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}
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// The tensor itself: put a known deviatoric B into a tetragonal merge and read it back. The
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// tetragonal Laue class leaves one free direction, along c*, and its magnitude is what deltaB means.
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TEST_CASE("Anisotropy tensor is recovered from a synthetic merge", "[anisotropy]") {
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const gemmi::UnitCell cell = Cell(79, 79, 38, 90, 90, 90);
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const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_name("P 43 21 2");
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// Uniaxial about c, deltaB = B_zz - B_xx = 15 A^2.
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const gemmi::SMat33<double> b_dev{-5.0, -5.0, 10.0, 0.0, 0.0, 0.0};
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const auto merged = SyntheticMerge(cell, sg, 2.0, 20.0, b_dev);
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REQUIRE(merged.size() > 2000);
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const auto result = AnalyzeAnisotropy(merged, {}, cell, sg);
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REQUIRE(result.n_free_parameters == 1);
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REQUIRE(result.n_cells > 0);
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CHECK(result.delta_b == Catch::Approx(15.0).margin(1.5));
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// c* is the weak direction here, so the largest principal value points along z.
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CHECK(std::fabs(result.eigenvector[0][2]) == Catch::Approx(1.0).margin(0.05));
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// A pure Debye-Waller fall-off is a straight line through the origin in s^2.
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CHECK(result.shape == AnisotropyShape::Linear);
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// With no unmerged observations the systematic-error scale cannot be measured, and the verdict
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// says so rather than falling back on a counting-statistics error bar.
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CHECK(result.verdict == AnisotropyVerdict::CannotDetermine);
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CHECK_FALSE(result.refusal.empty());
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}
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// An isotropic merge must not produce a tensor, whatever the Laue class allows.
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TEST_CASE("Anisotropy of an isotropic synthetic merge is small", "[anisotropy]") {
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const gemmi::UnitCell cell = Cell(79, 79, 38, 90, 90, 90);
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const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_name("P 43 21 2");
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const auto merged = SyntheticMerge(cell, sg, 2.0, 20.0, {0.0, 0.0, 0.0, 0.0, 0.0, 0.0});
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REQUIRE(merged.size() > 2000);
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const auto result = AnalyzeAnisotropy(merged, {}, cell, sg);
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REQUIRE(result.n_cells > 0);
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CHECK(std::fabs(result.delta_b) < 1.0);
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}
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namespace {
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// One partial of reflection (h,k,l) on image `frame`, with the fields ScaledObservations reads.
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Reflection Partial(int h, int k, int l, float frame, float I, float partiality) {
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Reflection r{};
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r.h = h; r.k = k; r.l = l;
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r.image_number = frame;
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r.d = 3.0f;
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r.I = I;
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r.sigma = 10.0f;
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r.prescaling_corr = 1.0f;
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r.partiality = partiality;
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return r;
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}
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}
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// ScaledObservations assembles rotation partials into fulls, and - because the floor downstream only
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// ever reads a sample of the unique reflections - it may hand back a sample of them rather than all.
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// This pins the assembly on a run far below the sampling cap, where the sample is everything: the
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// partials of one reflection over consecutive frames become one full on the merge's own scale, a gap
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// wider than the combine's splits the run in two, an event that caught too little of its rocking
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// curve is dropped, and an image with no fitted scale contributes nothing.
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TEST_CASE("Rotation partials are assembled into scaled fulls", "[anisotropy]") {
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const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_name("P 43 21 2");
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std::vector<IntegrationOutcome> outcomes(8);
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for (auto &o : outcomes)
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o.image_scale_g = 2.0f;
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// (1,2,3) is measured over frames 0-2, then again over frames 6-7 after a four-frame gap.
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outcomes[0].reflections.push_back(Partial(1, 2, 3, 0.0f, 100.0f, 0.25f));
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outcomes[1].reflections.push_back(Partial(1, 2, 3, 1.0f, 300.0f, 0.50f));
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outcomes[2].reflections.push_back(Partial(1, 2, 3, 2.0f, 100.0f, 0.25f));
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outcomes[6].reflections.push_back(Partial(1, 2, 3, 6.0f, 200.0f, 0.40f));
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outcomes[7].reflections.push_back(Partial(1, 2, 3, 7.0f, 300.0f, 0.60f));
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// A second reflection whose two partials sum to less than min_partiality: not a measurement.
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outcomes[3].reflections.push_back(Partial(4, 5, 6, 3.0f, 50.0f, 0.10f));
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outcomes[4].reflections.push_back(Partial(4, 5, 6, 4.0f, 50.0f, 0.15f));
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// A third on an image with no fitted per-image scale.
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outcomes[5].image_scale_g.reset();
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outcomes[5].reflections.push_back(Partial(7, 8, 9, 5.0f, 500.0f, 1.00f));
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const auto obs = ScaledObservations(outcomes, /*rotation=*/true, sg);
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REQUIRE(obs.size() == 2);
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for (const auto &o : obs) {
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CHECK(o.h == 1);
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CHECK(o.k == 2);
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CHECK(o.l == 3);
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}
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// Both events are complete, so their partialities sum to 1 and the divisor leaves them alone;
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// what is left is the summed intensity over the per-image scale.
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CHECK(obs[0].I == Catch::Approx(250.0)); // (100 + 300 + 100) / 2
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CHECK(obs[1].I == Catch::Approx(250.0)); // (200 + 300) / 2
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// A still is a whole measurement of its reflection, so there is nothing to assemble and nothing
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// to sample: each partial stands or falls on its own partiality, and only two clear the floor.
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const auto stills = ScaledObservations(outcomes, /*rotation=*/false, sg);
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CHECK(stills.size() == 2);
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}
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