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Jungfraujoch/common/IndexingSettings.h
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v1.0.0-rc.172 (#82)
* Fixed `jfjoch_broker` cancelling every data collection with a CUDA "out of memory" error after long operation: GPU memory no longer leaks with each collection.
* Rugnux scales a rotation sweep until the per-frame scales settle instead of for a fixed three rounds, and says so when they did not - merged intensities, and the space group, resolution cut and frame rejection read off them, change accordingly; `--scaling-iterations` is now the cap on that loop (default 100).
* Rugnux places every frame of a marCCD, SMV or miniCBF series at the spindle angle its own header states, so a series with missing frames, or with angles written modulo 360, is no longer read at the wrong geometry or refused.
* Every rotation run writes two diagnostic files beside its reflections: `<prefix>_detector.jpg`, the detector projection with the pixel mask and the detected beam-stop shadow drawn on it, and `<prefix>_plot.txt`, one row per image.

Reviewed-on: #82
Co-authored-by: Filip Leonarski <filip.leonarski@psi.ch>
2026-09-22 06:48:37 +02:00

124 lines
6.7 KiB
C++

// SPDX-FileCopyrightText: 2025 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#pragma once
#include <cstdint>
// Upper bound accepted by IndexingSettings::RefineThreads. Callers deriving a thread count from the
// machine must clamp to it - on a big host -N/2 exceeds it and the setter throws.
constexpr int MAX_REFINE_THREADS = 64;
enum class IndexingAlgorithmEnum {FFBIDX, FFT, FFTW, Auto, None};
// Flex = "let the pipeline decide": try several per-image refinements and keep whichever indexes the
// most spots (CLI -r flex; the legacy -r multi name is still accepted as an alias).
enum class GeomRefinementAlgorithmEnum {None, OrientationOnly, BeamCenter, Flex};
class IndexingSettings {
IndexingAlgorithmEnum algorithm;
int64_t fft_num_vectors = 16*1024;
float fft_max_unit_cell_A = 500.0;
float fft_min_unit_cell_A = 10.0;
float fft_max_angle_deg = 150.0;
float fft_min_angle_deg = 30.0;
float fft_high_resolution_A = 2.0;
float indexing_tolerance = 0.1;
float max_angle_from_ewald_deg = 2.0;
float unit_cell_dist_tolerance_vs_reference = 0.05; // relative
static constexpr float unit_cell_angle_tolerance_deg = 5.0; // degree
public:
// The longest cell the FFT search can be asked to reach, and so the longest it can ever find:
// FFTIndexer sizes its histogram from fft_max_unit_cell_A and the transform's last usable bin IS
// that length. Callers that widen the bound (a given cell, the long-axis rescue) must clamp to
// this rather than let the setter throw - a rescue that recovers an implausible axis must not
// take the whole run down with it.
static constexpr float fft_max_unit_cell_limit_A = 1200.0;
// The other end of the same search: any candidate whose reduced cell has an axis shorter than
// fft_min_unit_cell_A is discarded, and this is the lowest floor the setter accepts. A caller
// lowering the floor to reach a given cell clamps to it rather than let the setter throw.
static constexpr float fft_min_unit_cell_limit_A = 5.0;
private:
int64_t indexing_threads = 4;
// Threads splitting the candidate-cell refinement WITHIN one indexer call. 1 (the default) is the
// right answer whenever indexers already run one per image across all workers; it is raised only
// where few indexer threads exist and cores would otherwise sit idle.
int64_t refine_threads = 1;
// The setter's own floor. A frame that carries fewer spots than this cannot validate a
// lattice, and on a weakly diffracting crystal a bar set above what its frames can reach
// is arithmetic rather than evidence: the true lattice is found, indexes every frame it
// can, and is refused because too few frames could clear a count they never had the spots
// for. The fraction of frames that must validate is the gate that carries the meaning.
//
// It is NOT only the validation bar, and lowering it loosens more than that: the same number
// is the order statistic the candidate scorer ranks cells on, the stopping condition of the
// iterative residual contraction, and the adoption gate of per-frame refinement (see
// PostIndexingRefinement.cpp). Those three want a count that makes a fit trustworthy, which
// is not the same question as whether a frame had spots to spare, and they are coupled here
// only because one constant has always served both.
int64_t viable_cell_min_spots = 6;
int64_t max_extra_lattices = 2;
bool blocking_behavior = true;
bool index_ice_rings = false;
// Refuse the Bravais class the metric was promoted to on a LENGTH equality, and index in the
// class left when that equality is struck out. Not a user setting: rugnux runs one pass with it
// and one without, and keeps the one whose re-integrated held-out positional residual is lower
// (see RunAllPasses). The promotion is decided against a 3 % relative tolerance on a cell the
// spot positions place to ~0.1 %, so on a small cell a genuinely orthorhombic crystal is
// integrated with a = b imposed and nothing downstream can recover from it.
bool lattice_class_demoted = false;
bool enable_rotation_indexing = false;
float rotation_indexing_min_angular_range_deg = 20.0;
float rotation_indexing_angular_stride_deg = 0.5;
GeomRefinementAlgorithmEnum refinement = GeomRefinementAlgorithmEnum::BeamCenter;
public:
IndexingSettings();
IndexingSettings& ViableCellMinSpots(int64_t input);
IndexingSettings& Algorithm(IndexingAlgorithmEnum input);
IndexingSettings& FFT_MaxUnitCell_A(float input);
IndexingSettings& FFT_MinUnitCell_A(float input);
IndexingSettings& FFT_MaxAngle_deg(float input);
IndexingSettings& FFT_MinAngle_deg(float input);
IndexingSettings& FFT_NumVectors(int64_t input);
IndexingSettings& FFT_HighResolution_A(float input);
IndexingSettings& Tolerance(float input);
IndexingSettings& IndexingThreads(int64_t input);
IndexingSettings& RefineThreads(int64_t input);
IndexingSettings& UnitCellDistTolerance(float input);
IndexingSettings& GeomRefinementAlgorithm(GeomRefinementAlgorithmEnum input);
IndexingSettings& IndexIceRings(bool input);
IndexingSettings& RotationIndexing(bool input);
IndexingSettings& RotationIndexingMinAngularRange_deg(float input);
IndexingSettings& RotationIndexingAngularStride_deg(float input);
IndexingSettings& BlockingBehavior(bool input);
IndexingSettings& MaxExtraLattices(int64_t input);
IndexingSettings& LatticeClassDemoted(bool input);
[[nodiscard]] int64_t GetViableCellMinSpots() const;
[[nodiscard]] IndexingAlgorithmEnum GetAlgorithm() const;
[[nodiscard]] GeomRefinementAlgorithmEnum GetGeomRefinementAlgorithm() const;
[[nodiscard]] float GetFFT_MaxUnitCell_A() const;
[[nodiscard]] float GetFFT_MinUnitCell_A() const;
[[nodiscard]] int64_t GetFFT_NumVectors() const;
[[nodiscard]] float GetFFT_HighResolution_A() const;
[[nodiscard]] float GetTolerance() const;
[[nodiscard]] float GetFFT_MinAngle_deg() const;
[[nodiscard]] float GetFFT_MaxAngle_deg() const;
[[nodiscard]] int64_t GetIndexingThreads() const;
[[nodiscard]] int64_t GetRefineThreads() const;
[[nodiscard]] float GetUnitCellDistTolerance() const;
[[nodiscard]] float GetUnitCellAngleTolerance_deg() const;
[[nodiscard]] bool GetIndexIceRings() const;
[[nodiscard]] bool GetRotationIndexing() const;
[[nodiscard]] float GetRotationIndexingMinAngularRange_deg() const;
[[nodiscard]] float GetRotationIndexingAngularStride_deg() const;
[[nodiscard]] bool GetBlockingBehavior() const;
[[nodiscard]] int64_t GetMaxExtraLattices() const;
[[nodiscard]] bool GetLatticeClassDemoted() const;
};