fft_max_unit_cell_A was both the default and an enforced check_max, so 500 A was the longest basis vector the FFT could ever return: FFTIndexer sizes its projected histogram from that value and the transform's last usable bin IS that length. Of the PDB's 206950 X-ray entries, 1091 (0.53%) have an axis longer than that and were unindexable by construction. The accepted range now goes to 1200 A, which leaves 8. The DEFAULT is unchanged at 500 - the histogram is sized from the value in use, so nothing pays for the wider range unless a caller asks for it. The peak picker's running-mean background was truncated at the ends of the spectrum rather than slid inward, so a peak within bg_half (~15 A) of either end - which is exactly where the longest cells sit - was judged on a one-sided background, biasing its prominence by however much the spectrum sloped there. Keep the window a constant width and slide it. Both bounds stay monotonically non-decreasing in j, so the GPU kernel's running sum is still valid. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
244 lines
7.9 KiB
C++
244 lines
7.9 KiB
C++
// SPDX-FileCopyrightText: 2025 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 "IndexingSettings.h"
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#include "JFJochException.h"
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#include "CUDAWrapper.h"
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#include <cmath>
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#define check_max(param, val, max) if ((val) > (max)) throw JFJochException(JFJochExceptionCategory::InputParameterAboveMax, param)
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#define check_min(param, val, min) if ((val) < (min)) throw JFJochException(JFJochExceptionCategory::InputParameterBelowMin, param)
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#define check_finite(param, val) if (!std::isfinite(val)) throw JFJochException(JFJochExceptionCategory::InputParameterInvalid, param)
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IndexingSettings::IndexingSettings() {
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if (get_gpu_count() > 0)
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algorithm = IndexingAlgorithmEnum::FFBIDX;
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else
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algorithm = IndexingAlgorithmEnum::None;
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}
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IndexingSettings &IndexingSettings::ViableCellMinSpots(int64_t input) {
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check_min("ViableCellMinSpots", input, 6);
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viable_cell_min_spots = input;
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return *this;
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}
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int64_t IndexingSettings::GetViableCellMinSpots() const {
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return viable_cell_min_spots;
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}
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IndexingSettings &IndexingSettings::Algorithm(IndexingAlgorithmEnum input) {
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switch (input) {
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case IndexingAlgorithmEnum::Auto:
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case IndexingAlgorithmEnum::FFBIDX:
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case IndexingAlgorithmEnum::FFT:
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case IndexingAlgorithmEnum::FFTW:
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case IndexingAlgorithmEnum::None:
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algorithm = input;
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break;
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default:
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throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
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"Invalid value for indexing algorithm enum parameter");
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}
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return *this;
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}
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// The accepted range, not the default (which stays 500 A - see IndexingSettings.h). The FFT can
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// only recover a basis vector up to this length, so the ceiling is exactly the longest cell the
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// indexer can ever find; at 500 it excluded 1091 of the PDB's 206950 X-ray entries (0.53%) outright.
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// 1200 A leaves 8. Nothing pays for the wider range: the histogram is sized from the VALUE in use,
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// and only a caller that asks for more - a given cell that needs it, or the long-axis rescue - gets
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// a longer transform.
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IndexingSettings &IndexingSettings::FFT_MaxUnitCell_A(float input) {
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check_finite("FFT indexing max unit cell (A)", input);
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check_min("FFT indexing max unit cell (A)", input, 50);
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check_max("FFT indexing max unit cell (A)", input, fft_max_unit_cell_limit_A);
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fft_max_unit_cell_A = input;
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return *this;
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}
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IndexingSettings &IndexingSettings::FFT_MinUnitCell_A(float input) {
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check_finite("FFT indexing min unit cell (A)", input);
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check_min("FFT indexing min unit cell (A)", input, 5);
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check_max("FFT indexing min unit cell (A)", input, 40);
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fft_min_unit_cell_A = input;
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return *this;
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}
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IndexingSettings & IndexingSettings::FFT_MaxAngle_deg(float input) {
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check_finite("FFT indexing max angle (deg)", input);
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check_min("FFT indexing max angle (deg)", input, 0);
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check_max("FFT indexing max angle (deg)", input, 180);
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fft_max_angle_deg = input;
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return *this;
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}
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IndexingSettings & IndexingSettings::FFT_MinAngle_deg(float input) {
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check_finite("FFT indexing min angle (deg)", input);
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check_min("FFT indexing min angle (deg)", input, 0);
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check_max("FFT indexing min angle (deg)", input, 180);
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fft_min_angle_deg = input;
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return *this;
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}
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float IndexingSettings::GetFFT_MinAngle_deg() const {
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return fft_min_angle_deg;
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}
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float IndexingSettings::GetFFT_MaxAngle_deg() const {
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return fft_max_angle_deg;
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}
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IndexingSettings &IndexingSettings::FFT_NumVectors(int64_t input) {
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check_min("FFT indexing number of search vectors", input, 128);
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fft_num_vectors = input;
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return *this;
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}
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IndexingSettings &IndexingSettings::FFT_HighResolution_A(float input) {
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check_finite("FFT indexing high resolution (A)", input);
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check_min("FFT indexing high resolution (A)", input, 0.5);
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check_max("FFT indexing high resolution (A)", input, 6.0);
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fft_high_resolution_A = input;
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return *this;
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}
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IndexingAlgorithmEnum IndexingSettings::GetAlgorithm() const {
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return algorithm;
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}
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float IndexingSettings::GetFFT_MaxUnitCell_A() const {
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return fft_max_unit_cell_A;
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}
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float IndexingSettings::GetFFT_MinUnitCell_A() const {
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return fft_min_unit_cell_A;
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}
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int64_t IndexingSettings::GetFFT_NumVectors() const {
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return fft_num_vectors;
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}
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float IndexingSettings::GetFFT_HighResolution_A() const {
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return fft_high_resolution_A;
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}
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IndexingSettings &IndexingSettings::Tolerance(float input) {
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check_min("Indexing tolerance", input, 0.0);
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check_max("Indexing tolerance", input, 0.5);
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indexing_tolerance = input;
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return *this;
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}
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float IndexingSettings::GetTolerance() const {
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return indexing_tolerance;
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}
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int64_t IndexingSettings::GetIndexingThreads() const {
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return indexing_threads;
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}
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IndexingSettings &IndexingSettings::IndexingThreads(int64_t input) {
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check_min("Indexing thread count", input, 1);
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check_max("Indexing thread count", input, 64);
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indexing_threads = input;
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return *this;
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}
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int64_t IndexingSettings::GetRefineThreads() const {
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return refine_threads;
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}
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IndexingSettings &IndexingSettings::RefineThreads(int64_t input) {
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check_min("Candidate-cell refinement thread count", input, 1);
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check_max("Candidate-cell refinement thread count", input, MAX_REFINE_THREADS);
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refine_threads = input;
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return *this;
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}
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IndexingSettings &IndexingSettings::UnitCellDistTolerance(float input) {
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check_min("Relative unit cell distance tolerance vs. reference", input, 0.0001);
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check_max("Relative unit cell distance tolerance vs. reference", input, 0.2001);
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unit_cell_dist_tolerance_vs_reference = input;
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return *this;
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}
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float IndexingSettings::GetUnitCellDistTolerance() const {
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return unit_cell_dist_tolerance_vs_reference;
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}
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float IndexingSettings::GetUnitCellAngleTolerance_deg() const {
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return unit_cell_angle_tolerance_deg;
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}
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GeomRefinementAlgorithmEnum IndexingSettings::GetGeomRefinementAlgorithm() const {
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return refinement;
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}
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IndexingSettings &IndexingSettings::GeomRefinementAlgorithm(GeomRefinementAlgorithmEnum input) {
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refinement = input;
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return *this;
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}
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IndexingSettings & IndexingSettings::IndexIceRings(bool input) {
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index_ice_rings = input;
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return *this;
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}
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IndexingSettings & IndexingSettings::RotationIndexing(bool input) {
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enable_rotation_indexing = input;
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return*this;
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}
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IndexingSettings & IndexingSettings::RotationIndexingMinAngularRange_deg(float input) {
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check_finite("Rotation indexing minimum angular range (deg.)", input);
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check_min("Rotation indexing minimum angular range (deg.)", input, 1.0);
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rotation_indexing_min_angular_range_deg = input;
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return *this;
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}
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IndexingSettings & IndexingSettings::RotationIndexingAngularStride_deg(float input) {
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check_finite("Rotation indexing angular stride (deg.)", input);
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check_min("Rotation indexing angular stride (deg.)", input, 0.0);
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rotation_indexing_angular_stride_deg = input;
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return *this;
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}
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bool IndexingSettings::GetRotationIndexing() const {
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return enable_rotation_indexing;
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}
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float IndexingSettings::GetRotationIndexingMinAngularRange_deg() const {
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return rotation_indexing_min_angular_range_deg;
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}
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float IndexingSettings::GetRotationIndexingAngularStride_deg() const {
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return rotation_indexing_angular_stride_deg;
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}
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bool IndexingSettings::GetIndexIceRings() const {
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return index_ice_rings;
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}
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bool IndexingSettings::GetBlockingBehavior() const {
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return blocking_behavior;
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}
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IndexingSettings &IndexingSettings::BlockingBehavior(bool input) {
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blocking_behavior = input;
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return *this;
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}
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int64_t IndexingSettings::GetMaxExtraLattices() const {
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return max_extra_lattices;
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}
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IndexingSettings &IndexingSettings::MaxExtraLattices(int64_t input) {
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check_min("Max extra lattices", input, 0);
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check_max("Max extra lattices", input, 10);
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max_extra_lattices = input;
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return *this;
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}
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