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Jungfraujoch/image_analysis/geom_refinement/AssignSpotsToRings.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

350 lines
13 KiB
C++

// SPDX-FileCopyrightText: 2025 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#include "../../common/JFJochMath.h"
#include "AssignSpotsToRings.h"
#include <cstdint>
#include <limits>
#include <vector>
#include <cmath>
#include <tuple>
#include <algorithm>
#include "../../common/CrystalLattice.h"
FindCircleCenterResult FindCircleCenter(const std::vector<SpotToSave> &v, int64_t max_spots) {
if (max_spots <= 0)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Invalid spot limit");
if (v.size() < 3)
return {.total_votes = 0, .votes_for_beam_center = 0, .x = 0.0f, .y = 0.0f};
// Limit to only first 250 spots, given the algorithm is N^3
auto task_size = std::min<size_t>(v.size(), max_spots);
// The vote grid, one bin per pixel over the spots' bounding box (see the header).
int64_t x0 = std::numeric_limits<int64_t>::max(), x1 = std::numeric_limits<int64_t>::min();
int64_t y0 = x0, y1 = x1;
for (size_t i = 0; i < task_size; i++) {
x0 = std::min<int64_t>(x0, std::floor(v[i].x));
x1 = std::max<int64_t>(x1, std::ceil(v[i].x));
y0 = std::min<int64_t>(y0, std::floor(v[i].y));
y1 = std::max<int64_t>(y1, std::ceil(v[i].y));
}
const int64_t width = x1 - x0 + 1;
const int64_t height = y1 - y0 + 1;
if ((width <= 0) || (height <= 0))
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Invalid image size");
// uint32_t, not int64_t: the most votes any bin can take is C(max_spots,3), which for the 500-spot
// limit is 2.1e7 - three orders below what a uint32 holds - and it halves the allocation.
std::vector<uint32_t> vote(width * height, 0);
for (int i = 0; i < task_size; i++) {
for (int j = i+1; j < task_size; j++) {
for (int k = j+1; k < task_size; k++) {
// Calculation via determinants
float a = v[i].x * (v[j].y - v[k].y) - v[i].y * (v[j].x - v[k].x) + v[j].x * v[k].y - v[k].x * v[j].y;
if (std::abs(a) < 1e-10)
continue; // Points are collinear
float x1_sq = v[i].x*v[i].x + v[i].y*v[i].y;
float x2_sq = v[j].x*v[j].x + v[j].y*v[j].y;
float x3_sq = v[k].x*v[k].x + v[k].y*v[k].y;
float bx = x1_sq * (v[j].y - v[k].y) + x2_sq * (v[k].y - v[i].y) + x3_sq * (v[i].y - v[j].y);
float by = x1_sq * (v[k].x - v[j].x) + x2_sq * (v[i].x - v[k].x) + x3_sq * (v[j].x - v[i].x);
const int64_t cx = std::lround(bx / (2.0f * a)) - x0;
const int64_t cy = std::lround(by / (2.0f * a)) - y0;
if ((cx >= 0) && (cx < width) && (cy >= 0) && (cy < height))
vote[cx + cy * width]++;
}
}
}
int64_t total_votes = 0;
int64_t max_votes = 0;
int64_t cx = 0;
int64_t cy = 0;
for (int64_t y = 0; y < height; y++) {
for (int64_t x = 0; x < width; x++) {
total_votes += vote[x + y * width];
if (vote[x + y * width] > max_votes) {
max_votes = vote[x + y * width];
cx = x;
cy = y;
}
}
}
return {
.total_votes = total_votes,
.votes_for_beam_center = max_votes,
.x = static_cast<float>(cx + x0),
.y = static_cast<float>(cy + y0)
};
}
// Very simple 1D DBSCAN on radii (works for rings)
std::vector<std::vector<int>> ClusterSpotsIntoRings(const std::vector<float>& r, float eps, int minPts) {
size_t n = r.size();
std::vector<int> labels(n, -1); // -1 = unvisited, -2 = noise
int cluster_id = 0;
for (int i=0; i<n; i++) {
if (labels[i] != -1) continue; // already visited
// find neighbors within eps in radius
std::vector<int> neighbors;
for (int j=0; j<n; j++) {
if (std::fabs(r[i] - r[j]) <= eps) neighbors.push_back(j);
}
if ((int)neighbors.size() < minPts) {
labels[i] = -2; // noise
continue;
}
// start new cluster
labels[i] = cluster_id;
std::vector<int> seeds = neighbors;
for (size_t k=0; k<seeds.size(); k++) {
int j = seeds[k];
if (labels[j] == -2) labels[j] = cluster_id;
if (labels[j] != -1) continue;
labels[j] = cluster_id;
// expand cluster
std::vector<int> nbrs2;
for (int m=0; m<n; m++) {
if (std::fabs(r[j] - r[m]) <= eps) nbrs2.push_back(m);
}
if ((int)nbrs2.size() >= minPts) {
seeds.insert(seeds.end(), nbrs2.begin(), nbrs2.end());
}
}
cluster_id++;
}
// Collect results
std::vector<std::vector<int>> clusters(cluster_id);
for (int i=0; i<n; i++) {
if (labels[i] >= 0)
clusters[labels[i]].push_back(i);
}
return clusters;
}
float median(std::vector<float> v) {
if (v.empty()) return std::numeric_limits<float>::quiet_NaN();
size_t n = v.size();
std::nth_element(v.begin(), v.begin()+n/2, v.end());
float m = v[n/2];
if (n % 2 == 0) {
auto it = std::max_element(v.begin(), v.begin()+n/2);
m = 0.5f*(m + *it);
}
return m;
}
std::vector<RingClusters> AnalyzeClusters(const std::vector<float>& r, const std::vector<std::vector<int>> &clusters) {
std::vector<RingClusters> ret;
for (const auto & cluster : clusters) {
std::vector<float> cluster_r;
for (const auto &idx : cluster)
cluster_r.push_back(r[idx]);
if (cluster_r.size() < 2) continue;
float m = median(cluster_r);
ret.push_back({cluster, m, -1});
}
// sort by observed radius
if (!ret.empty())
std::sort(ret.begin(), ret.end(), [](const RingClusters& a, const RingClusters& b)
{ return a.R_obs < b.R_obs; });
return ret;
}
namespace {
bool reflection_present(ReflectionCondition condition, int h, int k, int l) {
const bool all_odd = (h % 2 != 0) && (k % 2 != 0) && (l % 2 != 0);
const bool all_even = (h % 2 == 0) && (k % 2 == 0) && (l % 2 == 0);
switch (condition) {
case ReflectionCondition::FaceCentred:
return all_odd || all_even;
case ReflectionCondition::Diamond:
return all_odd || (all_even && ((h + k + l) % 4 == 0));
case ReflectionCondition::All:
default:
return true;
}
}
}
namespace {
// The ring enumeration itself. `present` decides which hkl the lattice actually diffracts into - a
// fixed centring condition for the built-in standards, the space group's own absences for a cell the
// user supplied.
template <typename Present>
std::vector<float> XtalRings(const UnitCell &cell, int hkl_max, Present present) {
CrystalLattice latt(cell);
Coord Astar = latt.Astar();
Coord Bstar = latt.Bstar();
Coord Cstar = latt.Cstar();
std::vector<float> u;
// Both signs of h and k: only for a diagonal metric does |h a* + k b*| equal |h a* - k b*|, so on a
// triclinic cell (silver behenate) the positive octant alone misses more rings than it finds. l stays
// non-negative because hkl and -h-k-l are the same ring.
for (int h = -hkl_max; h <= hkl_max; h++) {
for (int k = -hkl_max; k <= hkl_max; k++) {
for (int l = 0; l <= hkl_max; l++) {
if (h == 0 && k == 0 && l == 0) continue;
if (!present(h, k, l)) continue;
auto p = Astar * h + Bstar * k + Cstar * l;
float Q = 2.0f * PI * p.Length();
u.push_back(Q);
}
}
}
std::sort(u.begin(), u.end());
// Deduplicate (since e.g. (100), (010), (001) all give sqrt(1))
u.erase(std::unique(u.begin(), u.end(),
[](float a, float b){ return std::fabs(a-b) < 1e-6; }),
u.end());
return u;
}
} // namespace
std::vector<float> CalculateXtalRings(const UnitCell &cell, ReflectionCondition condition, int hkl_max) {
return XtalRings(cell, hkl_max, [condition](int h, int k, int l) {
return reflection_present(condition, h, k, l);
});
}
std::vector<float> CalculateXtalRings(const UnitCell &cell, const gemmi::SpaceGroup &sg, int hkl_max) {
const gemmi::GroupOps ops = sg.operations();
return XtalRings(cell, hkl_max, [&ops](int h, int k, int l) {
return !ops.is_systematically_absent(gemmi::Op::Miller{h, k, l});
});
}
std::vector<float> CalculateCubicXtalRings(float a, int hkl_max) {
return CalculateXtalRings(UnitCell(a,a,a,90,90,90), ReflectionCondition::All, hkl_max);
}
float GuessDetectorDistance(const DiffractionGeometry& geom, float ring_radius_pxl, float d_A) {
float sin_theta = geom.GetWavelength_A() / (2 * d_A);
if (sin_theta < 0 || sin_theta > 1)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Geometry makes no sense");
float theta = asinf(sin_theta);
float radius_mm = ring_radius_pxl * geom.GetPixelSize_mm();
float det_dist_mm = radius_mm / tanf(2.0f * theta);
return det_dist_mm;
}
std::vector<RingClusters> GuessInitialGeometry(DiffractionGeometry &geom, const std::vector<SpotToSave> &v, float largest_ring_d_A) {
// Reset rotations. The model assumes these are very small in any case!
geom.PoniRot1_rad(0.0).PoniRot2_rad(0.0).PoniRot3_rad(0.0);
auto center = FindCircleCenter(v);
if (center.votes_for_beam_center < 20)
throw JFJochException(JFJochExceptionCategory::CalibrationError, "Beam center not found");
geom.BeamX_pxl(center.x).BeamY_pxl(center.y);
std::vector<float> radii(v.size());
for (int i = 0; i < v.size(); i++)
radii[i] = std::hypot(v[i].x - center.x, v[i].y - center.y);
auto clusters = ClusterSpotsIntoRings(radii);
if (clusters.empty())
throw JFJochException(JFJochExceptionCategory::CalibrationError, "Couldn't find spot clusters");
auto cluster_annot = AnalyzeClusters(radii, clusters);
float det_distance = GuessDetectorDistance(geom, cluster_annot[0].R_obs, largest_ring_d_A);
geom.DetectorDistance_mm(det_distance);
return cluster_annot;
}
void GuessGeometry(DiffractionGeometry &geom, const std::vector<SpotToSave> &v, const std::vector<float> &ring_q,
bool refine_tilt) {
if (ring_q.empty())
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "No calibrant rings given");
auto cluster_annot = GuessInitialGeometry(geom, v, 2 * PI / ring_q[0]);
std::vector<RingOptimizerInput> optimizer_input;
int ring_idx = 0;
int cluster_idx = 0;
// Walk the observed clusters and the calibrant's rings together, in ascending q. Which of them
// paired up used to be printed to stdout from here; it is diagnostics a caller wants back as data,
// not something a library should write to a terminal.
while (cluster_idx < cluster_annot.size() && ring_idx < ring_q.size()) {
const float obs_q = 2 * PI / geom.PxlToRes(cluster_annot[cluster_idx].R_obs);
if (std::fabs(ring_q[ring_idx] - obs_q)
< RingMatchWindow(ring_q, ring_idx, RING_MATCH_Q_RECIPA)) {
for (const auto &spot: cluster_annot[cluster_idx].spots)
optimizer_input.push_back({v[spot].x, v[spot].y, ring_q[ring_idx]});
ring_idx++;
cluster_idx++;
} else if (ring_q[ring_idx] < obs_q) {
ring_idx++;
} else {
cluster_idx++;
}
}
RingOptimizer optimizer(geom, refine_tilt);
geom = optimizer.Run(optimizer_input);
}
float RingMatchWindow(const std::vector<float> &ring_q, size_t i, float max_window) {
float window = max_window;
if (i > 0)
window = std::min(window, 0.5f * (ring_q[i] - ring_q[i - 1]));
if (i + 1 < ring_q.size())
window = std::min(window, 0.5f * (ring_q[i + 1] - ring_q[i]));
return window;
}
std::vector<RingOptimizerInput> AssignSpotsToRings(const DiffractionGeometry &geom,
const std::vector<SpotToSave> &v,
const std::vector<float> &ring_q) {
std::vector<RingOptimizerInput> optimizer_input;
for (const auto& s: v) {
const float q_obs = 2 * PI / geom.PxlToRes(s.x, s.y);
// The NEAREST ring, then the window - not the first ring within a fixed window. Where two rings
// are closer together than that window, taking the first match assigns both of them to the
// lower-q one and biases the distance it fits.
size_t nearest = 0;
for (size_t i = 1; i < ring_q.size(); i++) {
if (std::fabs(ring_q[i] - q_obs) < std::fabs(ring_q[nearest] - q_obs))
nearest = i;
}
if (!ring_q.empty()
&& std::fabs(ring_q[nearest] - q_obs) < RingMatchWindow(ring_q, nearest, RING_MATCH_Q_RECIPA))
optimizer_input.push_back({s.x, s.y, ring_q[nearest]});
}
return optimizer_input;
}
void OptimizeGeometry(DiffractionGeometry &geom, const std::vector<SpotToSave> &v, const std::vector<float> &ring_q,
bool refine_tilt, RingFitUncertainty *unc) {
RingOptimizer optimizer(geom, refine_tilt);
geom = optimizer.Run(AssignSpotsToRings(geom, v, ring_q), unc);
}