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Jungfraujoch/tests/ReindexAmbiguityTest.cpp
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v1.0.0-rc.166 (#76)
* `rugnux --mode calibration` writes `<prefix>.json` beside the `.poni`, whose `dataset_settings` member is a `jfjoch_broker` `dataset_settings` body as it stands.
* `rugnux` and `jfjoch_viewer` read PILATUS miniCBF sweeps natively, without conversion.
* Masters written by other facilities open, including Eiger 1.x and third-party NXmx variants.
* `rugnux` measures the beam centre on every run, and indexes with it when the file's value indexes nothing.
* A detector swung out on a 2theta arm is placed where the file says it stands, and the calibration can hold the tilt fixed.
* `rugnux` writes the unmerged MTZ by default, and a P1 merge beside it, so a wrong space group can be re-merged without reprocessing.
* Significant improvements to symmetry handling in `rugnux`: the lattice, the point group, the setting and the systematic absences.
* The `rugnux` report gives the resolution the CC1/2 fit reached, beside the range the reflections were written to.
* The `rugnux` report gives the twinning statistics measured before the space group was decided, beside the ones measured after.
* The `rugnux` report gives the strong-direction diffraction limit, and warns when CC1/2 is not monotone with resolution.
* `rugnux` ranks screw axes on the evidence their absences carry, rather than on how many control reflections a candidate happens to have.
* Twinning is no longer reported when the L-test contradicts it.
* The `rugnux` report gives the detector tilt, the measured tilt and the direct beam beside the beam centre, and a post-refined beam centre is judged against the run's own measurement rather than the file's.
* `--no-refine-tilt` holds the detector tilt at the value in the file, instead of zeroing it, when the calibration starts from the spots.
* The `jfjoch_viewer` grid scan view draws the cells in the proportion of the scan steps, so the map has the shape of the scanned area.

Reviewed-on: #76
Co-authored-by: Filip Leonarski <filip.leonarski@psi.ch>
2026-09-02 21:17:31 +02:00

195 lines
8.9 KiB
C++

// SPDX-FileCopyrightText: 2026 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#include <catch2/catch_all.hpp>
#include <unordered_map>
#include <unordered_set>
#include <vector>
#include "../image_analysis/scale_merge/HKLKey.h"
#include "../image_analysis/scale_merge/ReindexAmbiguity.h"
namespace {
const gemmi::SpaceGroup &SG(int number) { return *gemmi::find_spacegroup_by_number(number); }
UnitCell Tetragonal() { return UnitCell{78.0f, 78.0f, 37.0f, 90.0f, 90.0f, 90.0f}; }
// A reference set: one distinct intensity per Laue-ASU reflection, so that reflections related by
// a twin law (which are NOT Laue-equivalent in P4) carry different intensities.
std::vector<MergedReflection> DistinctReference(int space_group_number) {
const HKLKeyGenerator key(true, *gemmi::find_spacegroup_by_number(space_group_number));
std::vector<MergedReflection> v;
std::unordered_set<uint64_t> seen;
for (int h = -8; h <= 8; ++h)
for (int k = -8; k <= 8; ++k)
for (int l = 0; l <= 8; ++l) {
if (h == 0 && k == 0 && l == 0) continue;
const uint64_t kk = key(h, k, l).pack();
if (!seen.insert(kk).second) continue; // one row per ASU reflection
MergedReflection r;
r.h = h; r.k = k; r.l = l;
r.I = static_cast<float>(100 + kk % 9973); // distinct, spread
r.sigma = 1.0f;
r.d = 60.0f / (1 + h * h + k * k + l * l);
v.push_back(r);
}
return v;
}
}
TEST_CASE("Reindex: holohedral crystal has no indexing ambiguity", "[reindex]") {
// P4(3)2(1)2 (422, holohedral for the tetragonal lattice) -> no twin laws.
CHECK(ReindexAmbiguityOperators(Tetragonal(), SG(96)).empty());
// P422 likewise.
CHECK(ReindexAmbiguityOperators(Tetragonal(), SG(89)).empty());
}
TEST_CASE("Reindex: merohedral crystal exposes the ambiguity operators", "[reindex]") {
// P4 (point group 4) in a tetragonal lattice (422) -> a non-trivial reindexing coset.
CHECK_FALSE(ReindexAmbiguityOperators(Tetragonal(), SG(75)).empty());
}
TEST_CASE("Reindex: reference agreement recovers a misindexed dataset", "[reindex]") {
const int sg = 75; // P4
const auto reference = DistinctReference(sg);
const auto laws = ReindexAmbiguityOperators(Tetragonal(), SG(sg));
REQUIRE_FALSE(laws.empty());
// Deliberately mis-index the data by one twin law.
const auto data = ReindexReflections(reference, laws.front());
const auto choice = ChooseReindex(
data, Tetragonal(), SG(sg),
[&](const std::vector<MergedReflection> &m) { return ReferenceIntensityCC(m, reference, SG(sg)); });
CHECK_FALSE(choice.is_identity); // a reindex was needed
CHECK(choice.score > 0.99); // the winner realigns with the reference
CHECK(choice.identity_score < 0.9); // leaving it mis-indexed correlates poorly
CHECK(choice.n_candidates >= 2);
}
TEST_CASE("Reindex: a correctly indexed dataset keeps identity", "[reindex]") {
const int sg = 75;
const auto reference = DistinctReference(sg);
const auto choice = ChooseReindex(
reference, Tetragonal(), SG(sg),
[&](const std::vector<MergedReflection> &m) { return ReferenceIntensityCC(m, reference, SG(sg)); });
CHECK(choice.is_identity);
CHECK(choice.score > 0.99);
}
TEST_CASE("Reindex into the ASU: a twin law permutes the reflections without losing any", "[reindex]") {
const int sg = 75; // P4
const auto reference = DistinctReference(sg);
const auto laws = ReindexAmbiguityOperators(Tetragonal(), SG(sg));
REQUIRE_FALSE(laws.empty());
// Mis-index by a twin law, then reindex back into the ASU: the labels must land where an export
// needs them, and the reflection the label carries must be the one the reference has there.
const auto misindexed = ReindexReflections(reference, laws.front());
const auto fixed = ReindexMergedIntoAsu(misindexed, laws.front(), SG(sg), /*merge_friedel=*/true);
REQUIRE(fixed.size() == reference.size());
const HKLKeyGenerator key(true, *gemmi::find_spacegroup_by_number(sg));
std::unordered_map<uint64_t, float> ref_by_key;
for (const auto &r : reference)
ref_by_key[key(r).pack()] = r.I;
std::unordered_set<uint64_t> seen;
for (const auto &r : fixed) {
const HKLKey k = key(r);
CHECK(k.h == r.h); // already at its own ASU index
CHECK(k.k == r.k);
CHECK(k.l == r.l);
CHECK(seen.insert(k.pack()).second); // no two reflections land on one label
const auto it = ref_by_key.find(k.pack());
REQUIRE(it != ref_by_key.end());
CHECK(it->second == r.I);
}
}
TEST_CASE("Reindex into the ASU: the change of hand swaps the Bijvoet halves", "[reindex]") {
// The change of hand is the inversion, so it leaves the Laue-ASU label alone and moves the
// anomalous signal instead - which is the whole of what adopting a model's hand does to intensities.
const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_number(96); // P4(3)2(1)2
REQUIRE(sg != nullptr);
const HKLKeyGenerator key(true, *sg);
const HKLKey asu = key(3, 1, 2);
MergedReflection r;
r.h = asu.h; r.k = asu.k; r.l = asu.l;
r.I = 100.0f; r.sigma = 1.0f; r.d = 10.0f;
r.I_plus = 110.0f; r.sigma_plus = 2.0f; r.I_minus = 90.0f; r.sigma_minus = 3.0f;
r.F_plus = 10.5f; r.F_minus = 9.5f;
const auto merged = ReindexMergedIntoAsu({r}, sg->change_of_hand_op(), SG(96), /*merge_friedel=*/true);
REQUIRE(merged.size() == 1);
CHECK(merged[0].h == asu.h);
CHECK(merged[0].k == asu.k);
CHECK(merged[0].l == asu.l);
CHECK(merged[0].I == 100.0f);
CHECK(merged[0].I_plus == 90.0f);
CHECK(merged[0].I_minus == 110.0f);
CHECK(merged[0].sigma_plus == 3.0f);
CHECK(merged[0].sigma_minus == 2.0f);
CHECK(merged[0].F_plus == 9.5f);
CHECK(merged[0].F_minus == 10.5f);
// With the mates kept apart the merge stores the minus hand at -hkl, so the row moves there.
const auto anom = ReindexMergedIntoAsu({r}, sg->change_of_hand_op(), SG(96), /*merge_friedel=*/false);
REQUIRE(anom.size() == 1);
CHECK(anom[0].h == -asu.h);
CHECK(anom[0].k == -asu.k);
CHECK(anom[0].l == -asu.l);
CHECK(anom[0].I == 100.0f);
}
TEST_CASE("Reindex into the ASU: both mates of an anomalous pair follow the same hand", "[reindex]") {
// With the mates kept apart, the merge stores the plus mate at +hkl_asu and the minus mate at
// -hkl_asu, while I_plus/I_minus are attached in the plus convention on BOTH rows alike. An
// alternative-indexing operator is rotation-type, so op(-x) == -op(x): whatever it does to one
// mate's hand it does to the other's, and the two rows must still agree afterwards about which
// intensity is which. Deciding the swap from the hand the new index lands on instead of from the
// CHANGE of hand moves exactly one of the two, and the pair ends up self-contradictory.
const gemmi::SpaceGroup *sg = gemmi::find_spacegroup_by_number(75); // P4, Laue 4/m
REQUIRE(sg != nullptr);
const HKLKeyGenerator key_gen(/*merge_friedel=*/false, *sg);
const HKLKey asu = key_gen(3, 1, 2);
REQUIRE(asu.plus);
// The alternative indexing of a P4 lattice: 4/mmm holds it, 4/m does not.
const gemmi::Op op = gemmi::parse_triplet("k,h,-l");
MergedReflection plus;
plus.h = asu.h; plus.k = asu.k; plus.l = asu.l;
plus.I = 100.0f; plus.sigma = 1.0f; plus.d = 10.0f;
plus.I_plus = 110.0f; plus.sigma_plus = 2.0f; plus.I_minus = 90.0f; plus.sigma_minus = 3.0f;
plus.F_plus = 10.5f; plus.F_minus = 9.5f;
MergedReflection minus = plus; // same anomalous split, stored at -hkl_asu
minus.h = -asu.h; minus.k = -asu.k; minus.l = -asu.l;
const auto out = ReindexMergedIntoAsu({plus, minus}, op, SG(75), /*merge_friedel=*/false);
REQUIRE(out.size() == 2);
// The two rows are still one pair: same Laue label up to the Friedel sign, opposite hands.
CHECK(out[0].h == -out[1].h);
CHECK(out[0].k == -out[1].k);
CHECK(out[0].l == -out[1].l);
// ... and they still tell the same story about which hand carries which intensity.
CHECK(out[0].I_plus == out[1].I_plus);
CHECK(out[0].I_minus == out[1].I_minus);
CHECK(out[0].sigma_plus == out[1].sigma_plus);
CHECK(out[0].sigma_minus == out[1].sigma_minus);
CHECK(out[0].F_plus == out[1].F_plus);
CHECK(out[0].F_minus == out[1].F_minus);
// And the swap did have to happen: "k,h,-l" takes (3,1,2) to (1,3,-2), whose Laue class has its
// ASU representative at l > 0, so the row that was the plus mate of its pair is the minus mate of
// the new one. The intensity now standing at the plus index is the one that was at -hkl before.
CHECK(out[0].I_plus == 90.0f);
CHECK(out[0].I_minus == 110.0f);
}