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* `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>
209 lines
8.9 KiB
C++
209 lines
8.9 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 "ReindexAmbiguity.h"
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#include <cmath>
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#include <unordered_map>
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#include <utility>
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#include "gemmi/twin.hpp"
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#include "HKLKey.h"
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namespace {
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constexpr size_t MIN_REFLECTIONS = 20;
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struct BestReindex {
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gemmi::Op op = gemmi::Op::identity();
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bool is_identity = true;
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double score = 0.0;
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double identity_score = 0.0;
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};
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// Among identity (the baseline, scored `identity_score`) and `ops`, return the operator with the
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// highest `score_op(op)`. A non-finite score never wins (too little overlap to decide). Shared by the
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// stills per-image resolver and the rotation post-merge ChooseReindex.
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BestReindex PickBestReindex(double identity_score, const std::vector<gemmi::Op> &ops,
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const std::function<double(const gemmi::Op &)> &score_op) {
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BestReindex best;
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best.identity_score = identity_score;
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best.score = identity_score;
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for (const auto &op : ops) {
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const double sc = score_op(op);
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if (std::isfinite(sc) && (!std::isfinite(best.score) || sc > best.score)) {
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best.score = sc;
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best.op = op;
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best.is_identity = false;
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}
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}
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return best;
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}
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}
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std::vector<gemmi::Op> ReindexAmbiguityOperators(const UnitCell &cell, const gemmi::SpaceGroup &space_group,
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double max_obliquity_deg) {
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return gemmi::find_twin_laws(static_cast<gemmi::UnitCell>(cell), &space_group, max_obliquity_deg,
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/*all_ops=*/false);
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}
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std::vector<MergedReflection> ReindexReflections(const std::vector<MergedReflection> &merged,
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const gemmi::Op &op) {
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std::vector<MergedReflection> out = merged;
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for (auto &r : out) {
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const gemmi::Op::Miller h = op.apply_to_hkl({{static_cast<int>(r.h),
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static_cast<int>(r.k),
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static_cast<int>(r.l)}});
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r.h = h[0];
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r.k = h[1];
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r.l = h[2];
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}
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return out;
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}
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std::vector<MergedReflection> ReindexMergedIntoAsu(const std::vector<MergedReflection> &merged,
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const gemmi::Op &op, const gemmi::SpaceGroup &space_group,
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bool merge_friedel) {
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// merge_friedel=false so the generator reports which side of the Friedel pair the ASU index was
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// reached from; that sign is what the two hands have to follow.
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const HKLKeyGenerator key_gen(/*merge_friedel=*/false, space_group);
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std::vector<MergedReflection> out = merged;
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for (auto &r : out) {
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const gemmi::Op::Miller h = op.apply_to_hkl({{r.h, r.k, r.l}});
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const HKLKey key = key_gen(h[0], h[1], h[2]);
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// The hands follow a CHANGE of hand, not the hand the new index happens to land on. An
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// anomalous merge stores the minus mate at -hkl_asu (Merge.cpp), so a row can already be on
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// the minus side before the operator is applied, while I_plus/I_minus are attached in the
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// plus convention on both mates alike (RotationScaleMerge.cpp keys the lookup at plus=true).
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// Since the operator is rotation-type, op(-x) == -op(x), and the minus mate's key.plus is
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// therefore the negation of the plus mate's - testing key.plus alone swaps exactly the rows
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// that must not move, and leaves the ones that must. With merge_friedel every row is stored
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// at the ASU representative, so was_plus is always true and this reduces to the old test.
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const bool was_plus = key_gen(r.h, r.k, r.l).plus;
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if (was_plus != key.plus) {
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std::swap(r.I_plus, r.I_minus);
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std::swap(r.sigma_plus, r.sigma_minus);
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std::swap(r.F_plus, r.F_minus);
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std::swap(r.sigmaF_plus, r.sigmaF_minus);
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}
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const bool at_asu_index = merge_friedel || key.plus;
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r.h = at_asu_index ? key.h : -key.h;
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r.k = at_asu_index ? key.k : -key.k;
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r.l = at_asu_index ? key.l : -key.l;
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}
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return out;
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}
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ReindexChoice ChooseReindex(const std::vector<MergedReflection> &merged,
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const UnitCell &cell, const gemmi::SpaceGroup &space_group,
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const std::function<double(const std::vector<MergedReflection> &)> &score,
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double max_obliquity_deg) {
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const auto ops = ReindexAmbiguityOperators(cell, space_group, max_obliquity_deg);
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const BestReindex best = PickBestReindex(
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score(merged), ops,
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[&](const gemmi::Op &op) { return score(ReindexReflections(merged, op)); });
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ReindexChoice choice;
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choice.op = best.op;
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choice.is_identity = best.is_identity;
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choice.score = best.score;
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choice.identity_score = best.identity_score;
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choice.n_candidates = 1 + static_cast<int>(ops.size());
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return choice;
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}
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double ReferenceIntensityCC(const std::vector<MergedReflection> &merged,
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const std::vector<MergedReflection> &reference,
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const gemmi::SpaceGroup &space_group) {
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const HKLKeyGenerator key(/*merge_friedel=*/true, space_group);
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std::unordered_map<uint64_t, double> ref;
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ref.reserve(reference.size());
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for (const auto &r : reference)
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if (std::isfinite(r.I))
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ref[key(r).pack()] = r.I;
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double sx = 0, sy = 0, sxx = 0, syy = 0, sxy = 0;
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int n = 0;
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for (const auto &m : merged) {
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if (!std::isfinite(m.I))
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continue;
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const auto it = ref.find(key(m).pack());
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if (it == ref.end())
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continue;
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const double x = m.I, y = it->second;
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sx += x; sy += y; sxx += x * x; syy += y * y; sxy += x * y;
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++n;
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}
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if (n < 10)
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return 0.0;
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const double cov = n * sxy - sx * sy;
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const double vx = n * sxx - sx * sx;
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const double vy = n * syy - sy * sy;
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return (vx > 0 && vy > 0) ? cov / std::sqrt(vx * vy) : 0.0;
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}
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ReindexAmbiguityResolver::ReindexAmbiguityResolver(const DiffractionExperiment &x,
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const std::vector<MergedReflection> &reference)
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: s(x.GetScalingSettings()),
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hkl_key_generator(s.GetMergeFriedel(), x.GetSpaceGroupOrP1()) {
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for (const auto &r : reference)
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reference_data[hkl_key_generator(r)] = r.I;
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if (x.GetUnitCell().has_value() && x.GetGemmiSpaceGroup().has_value())
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ops = ReindexAmbiguityOperators(*x.GetUnitCell(), x.GetSpaceGroupOrP1());
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}
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bool ReindexAmbiguityResolver::Accept(const Reflection &r) const {
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if (r.on_ice_ring) // ice-contaminated intensity would bias the correlation; keep it out
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return false;
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return AcceptReflection(r, s.GetHighResolutionLimit_A(), s.GetLowResolutionLimit_A());
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}
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double ReindexAmbiguityResolver::ReferenceCC(const std::vector<Reflection> &reflections,
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const gemmi::Op &op) const {
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double sx = 0, sy = 0, sxx = 0, syy = 0, sxy = 0;
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size_t n = 0;
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for (const auto &r : reflections) {
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if (!Accept(r) || r.partiality < s.GetMinPartiality())
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continue;
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if (!std::isfinite(r.I) || !std::isfinite(r.sigma) || r.sigma <= 0.0f || r.partiality <= 0.0f)
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continue;
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const gemmi::Op::Miller h = op.apply_to_hkl({{r.h, r.k, r.l}});
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const auto it = reference_data.find(hkl_key_generator(h[0], h[1], h[2]));
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if (it == reference_data.end())
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continue;
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const double x = static_cast<double>(r.I) * r.rlp / r.partiality;
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const double y = it->second;
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if (!std::isfinite(x) || !std::isfinite(y))
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continue;
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sx += x; sy += y; sxx += x * x; syy += y * y; sxy += x * y;
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++n;
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}
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if (n < MIN_REFLECTIONS)
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return NAN;
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const double nd = static_cast<double>(n);
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const double cov = sxy - sx * sy / nd;
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const double vx = sxx - sx * sx / nd;
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const double vy = syy - sy * sy / nd;
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return (vx > 0 && vy > 0) ? cov / std::sqrt(vx * vy) : NAN;
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}
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// Serial stills index each crystal in one of the merohedrally-equivalent hands at random; pick, for this
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// image alone, the reindexing whose intensities correlate best with the external reference and apply it.
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void ReindexAmbiguityResolver::Resolve(std::vector<Reflection> &reflections) const {
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if (ops.empty())
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return;
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const BestReindex best = PickBestReindex(
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ReferenceCC(reflections, gemmi::Op::identity()), ops,
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[&](const gemmi::Op &op) { return ReferenceCC(reflections, op); });
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if (best.is_identity)
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return;
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for (auto &r : reflections) {
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const gemmi::Op::Miller h = best.op.apply_to_hkl({{r.h, r.k, r.l}});
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r.h = h[0]; r.k = h[1]; r.l = h[2];
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}
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}
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