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Jungfraujoch/common/DiffractionGeometry.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

312 lines
9.4 KiB
C++

// SPDX-FileCopyrightText: 2025 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#include "JFJochMath.h"
#include <algorithm>
#include <cmath>
#include "DiffractionGeometry.h"
#include "RawToConvertedGeometry.h"
RotMatrix PoniRotMatrix(float rot1, float rot2, float rot3) {
return RotMatrix(-rot3, {0,0,1})
* RotMatrix(-rot2, {1,0,0})
* RotMatrix(rot1, {0,1,0});
}
void PoniAnglesFromMatrix(const RotMatrix &rot_matrix, float &rot1, float &rot2, float &rot3) {
const Coord fast = rot_matrix.Column(0);
const Coord slow = rot_matrix.Column(1);
const Coord normal = rot_matrix.Column(2);
rot2 = asinf(std::clamp(-slow.z, -1.0f, 1.0f));
if (fabsf(cosf(rot2)) < 1e-6f) {
// Gimbal lock: only rot1 +- rot3 is determined, so put it all into rot1.
rot1 = atan2f(normal.x, fast.x);
rot3 = 0.0f;
} else {
rot1 = atan2f(-fast.z, normal.z);
rot3 = atan2f(slow.x, slow.y);
}
}
Coord DiffractionGeometry::LabCoord(float x, float y) const {
Coord detectorCoord = {(x - beam_x_pxl) * pixel_size_mm ,
(y - beam_y_pxl) * pixel_size_mm ,
det_distance_mm};
return det_matrix * detectorCoord;
}
std::pair<float, float> DiffractionGeometry::GetDirectBeam_pxl() const {
return RecipToDetector({0,0,0});
}
Coord DiffractionGeometry::GetScatteringVector() const {
return {0, 0, 1.0f / wavelength_A};
}
Coord DiffractionGeometry::DetectorToRecip(float x, float y) const {
return LabCoord(x, y).Normalize() / wavelength_A - GetScatteringVector();
}
std::pair<float, float> DiffractionGeometry::RecipToDetector(const Coord &recip) const {
auto S_unrotated = recip + GetScatteringVector();
auto S = det_matrix.transpose() * S_unrotated;
if (S.z <= 0)
return {NAN, NAN};
float coeff = det_distance_mm / (S.z * pixel_size_mm);
float x = beam_x_pxl + S.x * coeff;
float y = beam_y_pxl + S.y * coeff;
return {x, y};
}
float DiffractionGeometry::TwoTheta_rad(float x, float y) const {
auto lab = LabCoord(x, y);
float r = sqrtf(lab.x * lab.x + lab.y * lab.y);
return atan2f(r, lab.z);
}
float DiffractionGeometry::Phi_rad(float x, float y) const {
auto lab = LabCoord(x, y);
auto v = atan2f(lab.y, lab.x);
if (v < 0)
v += 2.0f * PI;
return v;
}
float DiffractionGeometry::PxlToRes(float x, float y) const {
float two_theta = TwoTheta_rad(x, y);
return wavelength_A / (2.0f * sinf(two_theta/2.0f));
}
float DiffractionGeometry::PxlToQ(float x, float y) const {
return 2.0f * PI / PxlToRes(x,y);
}
float DiffractionGeometry::PxlToRes(float dist_pxl) const {
// This is agnostic to detector rotation!!!
if (dist_pxl == 0)
return INFINITY;
float tan_2theta = dist_pxl * pixel_size_mm / det_distance_mm;
float theta = atanf(tan_2theta) / 2.0;
float d_A = wavelength_A / (2.0f * sinf(theta));
return d_A;
}
float DiffractionGeometry::ResToPxl(float d_A) const {
if (d_A == 0)
return INFINITY;
float sin_theta = wavelength_A / (2 * d_A);
float theta = asinf(sin_theta);
float tan_2theta = tanf(2 * theta);
return tan_2theta * det_distance_mm / pixel_size_mm;
}
float DiffractionGeometry::DistFromEwaldSphere(const Coord &recip) const {
auto S = recip + GetScatteringVector();
return S.Length() - (1.0f/wavelength_A);
}
float DiffractionGeometry::CalcAzIntSolidAngleCorr(float x, float y) const {
// The solid angle of a flat pixel depends on the incidence angle to the detector
// normal, cos(alpha) = det_distance / |detector-frame position|. This is evaluated
// in the detector's own frame, so it is invariant under detector tilt (rot1/rot2/rot3),
// matching PyFAI solidAngleArray and MAX IV azint. It reduces to cos^3(2*theta) only
// for an untilted detector.
float u = (x - beam_x_pxl) * pixel_size_mm;
float v = (y - beam_y_pxl) * pixel_size_mm;
float cos_alpha = det_distance_mm / sqrtf(u * u + v * v + det_distance_mm * det_distance_mm);
return cos_alpha * cos_alpha * cos_alpha;
}
float DiffractionGeometry::CalcAzIntPolarizationCorr(float x, float y, float coeff) const {
auto cos_2theta = cosf(TwoTheta_rad(x, y));
float cos_2theta_2 = cos_2theta * cos_2theta;
float cos_2phi = cosf(2.0f * Phi_rad(x, y));
return 0.5f * (1.0f + cos_2theta_2 - coeff * cos_2phi * (1.0f - cos_2theta_2));
}
float DiffractionGeometry::GetBeamX_pxl() const {
return beam_x_pxl;
}
float DiffractionGeometry::GetBeamY_pxl() const {
return beam_y_pxl;
}
float DiffractionGeometry::GetDetectorDistance_mm() const {
return det_distance_mm;
}
float DiffractionGeometry::GetPixelSize_mm() const {
return pixel_size_mm;
}
float DiffractionGeometry::GetWavelength_A() const {
return wavelength_A;
}
DiffractionGeometry &DiffractionGeometry::BeamX_pxl(float input) {
beam_x_pxl = input;
return *this;
}
DiffractionGeometry &DiffractionGeometry::BeamY_pxl(float input) {
beam_y_pxl = input;
return *this;
}
DiffractionGeometry &DiffractionGeometry::DetectorDistance_mm(float input) {
if (input < 1.0)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Det distance must be above 1.0 mm ");
det_distance_mm = input;
return *this;
}
DiffractionGeometry &DiffractionGeometry::PixelSize_mm(float input) {
if (input <= 0.0)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Pixel size must be positive number");
pixel_size_mm = input;
return *this;
}
DiffractionGeometry &DiffractionGeometry::Wavelength_A(float input) {
if (input <= 0.0)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Wavelength must be positive number");
wavelength_A = input;
return *this;
}
float DiffractionGeometry::AngleFromEwaldSphere_deg(const Coord &p0) const {
// https://journals.iucr.org/d/issues/2014/08/00/dz5332/index.html
Coord S0 = GetScatteringVector();
const float epsilon = 1e-5f;
float S0_sq = S0 * S0;
float p0_sq = p0 * p0;
float S0_p0 = S0 * p0;
float val = S0_sq * p0_sq - S0_p0 * S0_p0;
if (fabsf(val) < epsilon)
return NAN;
float A = std::sqrt((S0_sq - 1.0f/4.0f * p0_sq) * p0_sq / val);
float B = (A * S0_p0 + p0_sq / 2.0f) / S0_sq;
Coord p_star = A * p0 - B * S0;
return angle_deg(p_star, p0);
}
void DiffractionGeometry::UpdateDetectorMatrix() {
det_matrix = PoniRotMatrix(poni_rot_1, poni_rot_2, poni_rot_3) * orientation.Matrix();
}
DiffractionGeometry &DiffractionGeometry::PoniRot1_rad(float input) {
poni_rot_1 = input;
UpdateDetectorMatrix();
return *this;
}
DiffractionGeometry &DiffractionGeometry::PoniRot2_rad(float input) {
poni_rot_2 = input;
UpdateDetectorMatrix();
return *this;
}
DiffractionGeometry &DiffractionGeometry::PoniRot3_rad(float input) {
poni_rot_3 = input;
UpdateDetectorMatrix();
return *this;
}
float DiffractionGeometry::GetPoniRot1_rad() const {
return poni_rot_1;
}
float DiffractionGeometry::GetPoniRot2_rad() const {
return poni_rot_2;
}
float DiffractionGeometry::GetPoniRot3_rad() const {
return poni_rot_3;
}
DiffractionGeometry &DiffractionGeometry::Orientation(const DetectorOrientation &input) {
orientation = input;
UpdateDetectorMatrix();
return *this;
}
DetectorOrientation DiffractionGeometry::GetOrientation() const {
return orientation;
}
DiffractionGeometry &DiffractionGeometry::DetectorAxes(const Coord &fast, const Coord &slow) {
const Coord f = fast.Normalize();
const Coord s = slow.Normalize();
// The normal is not free: it is the sample->PONI direction, and whether it is +fast x slow or
// -fast x slow is exactly whether the stored image is mirrored, which the orientation already says.
const Coord n = orientation.IsMirrorY() ? -(f % s) : (f % s);
PoniAnglesFromMatrix(RotMatrix(f, s, n) * orientation.Matrix().transpose(),
poni_rot_1, poni_rot_2, poni_rot_3);
UpdateDetectorMatrix();
return *this;
}
Coord DiffractionGeometry::GetFastAxis() const {
return det_matrix.Column(0);
}
Coord DiffractionGeometry::GetSlowAxis() const {
return det_matrix.Column(1);
}
Coord DiffractionGeometry::GetNormalAxis() const {
return det_matrix.Column(2);
}
std::pair<float, float> DiffractionGeometry::ResPhiToPxl(float d_A, float phi_rad) const {
// Guard invalid inputs
if (wavelength_A <= 0.0f || d_A <= wavelength_A / 2.0f)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, "Resolution to high for a given wavelength");
float sin_theta = wavelength_A / (2.0f * d_A);
float theta = asinf(sin_theta);
float k = 1.0f / wavelength_A;
float s2t = sinf(2.0f * theta);
float c2t = cosf(2.0f * theta);
float cphi = cosf(phi_rad);
float sphi = sinf(phi_rad);
return RecipToDetector(Coord{ k * s2t * cphi,k * s2t * sphi,k * (c2t - 1.0f)});
}
Coord DiffractionGeometry::ProjectToEwaldSphere(const Coord &p0) const {
Coord S0 = GetScatteringVector();
Coord S = p0 + S0;
S = S.Normalize() / wavelength_A;
return S - S0;
}
const RotMatrix &DiffractionGeometry::GetDetectorMatrix() const {
return det_matrix;
}
std::optional<GoniometerAxis> DiffractionGeometry::GetRotation() const {
return axis;
}
DiffractionGeometry &DiffractionGeometry::Rotation(const std::optional<GoniometerAxis> &input) {
axis = input;
return *this;
}