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Jungfraujoch/image_analysis/indexing/IndexerThreadPool.cpp
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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

312 lines
13 KiB
C++

// SPDX-FileCopyrightText: 2025 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#include "IndexerThreadPool.h"
#include "../common/CUDAWrapper.h"
#include "../common/Logger.h"
#ifdef JFJOCH_USE_CUDA
#include "FFBIDXIndexer.h"
#include "FFTIndexerGPU.h"
#endif
#ifdef JFJOCH_USE_FFTW
#include "FFTIndexerCPU.h"
#endif
void WarmUpCuFFT() {
#ifdef JFJOCH_USE_CUDA
if (get_gpu_count() == 0)
return;
cufftHandle plan = 0;
if (cufftPlan1d(&plan, 1024, CUFFT_C2C, 1) == CUFFT_SUCCESS)
cufftDestroy(plan);
#endif
}
// The indexer for one RESOLVED algorithm, or nullptr if this build/host cannot serve it.
static std::unique_ptr<Indexer> MakeIndexer(IndexingAlgorithmEnum algorithm, const IndexingSettings &settings) {
#ifdef JFJOCH_USE_CUDA
if (get_gpu_count() > 0) {
if (algorithm == IndexingAlgorithmEnum::FFT)
return std::make_unique<FFTIndexerGPU>(settings);
if (algorithm == IndexingAlgorithmEnum::FFBIDX)
return std::make_unique<FFBIDXIndexer>();
}
#endif
#ifdef JFJOCH_USE_FFTW
if (algorithm == IndexingAlgorithmEnum::FFTW)
return std::make_unique<FFTIndexerCPU>(settings);
#endif
return nullptr;
}
IndexerThread::IndexerThread(const IndexingSettings &settings, int threadid, IndexerConstruction construction)
: settings_(settings), construction_(construction) {
std::unique_lock<std::mutex> lock(m);
state = TaskState::STARTING;
worker_thread = std::thread(&IndexerThread::Worker, this, threadid);
c_running.wait(lock, [this] { return state != TaskState::STARTING; });
if (state == TaskState::ERROR) {
worker_thread.join();
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
"Indexer thread initialization failed");
}
}
void IndexerThread::Worker(int threadid) {
try {
pin_gpu();
} catch (const std::exception &e) {
spdlog::error("Failed to pin to GPU {}", e.what());
} catch (...) {
// GPU pinning errors are not critical and should be ignored for the time being.
}
std::unique_ptr<Indexer> fft_indexer, ffbidx_indexer, fftw_indexer;
// Preconstruct: build every indexer the requested algorithm could resolve to before the pool
// reports ready, so no cuFFT planning happens once frames are flowing, and a failure is fatal
// for the pool instead of being met frame by frame. OnFirstUse skips this and builds in the
// dispatch below.
if (construction_ == IndexerConstruction::Preconstruct) {
try {
const auto requested = settings_.GetAlgorithm();
if (requested == IndexingAlgorithmEnum::Auto || requested == IndexingAlgorithmEnum::FFT)
fft_indexer = MakeIndexer(IndexingAlgorithmEnum::FFT, settings_);
if (requested == IndexingAlgorithmEnum::Auto || requested == IndexingAlgorithmEnum::FFBIDX)
ffbidx_indexer = MakeIndexer(IndexingAlgorithmEnum::FFBIDX, settings_);
if ((requested == IndexingAlgorithmEnum::Auto && get_gpu_count() == 0)
|| requested == IndexingAlgorithmEnum::FFTW)
fftw_indexer = MakeIndexer(IndexingAlgorithmEnum::FFTW, settings_);
} catch (const std::exception &e) {
spdlog::error("Failed to initialize indexer: {}", e.what());
{
std::unique_lock<std::mutex> lock(m);
state = TaskState::ERROR;
}
c_running.notify_all();
return;
} catch (...) {
spdlog::error("Failed to initialize indexer");
{
std::unique_lock<std::mutex> lock(m);
state = TaskState::ERROR;
}
c_running.notify_all();
return;
}
}
{
std::unique_lock<std::mutex> lock(m);
state = TaskState::IDLE;
}
c_running.notify_all();
while (true) {
std::unique_ptr<TaskInput> input;
// Look for task + handle stop
{
std::unique_lock<std::mutex> lock(m);
c_start.wait(lock, [this] { return stop || state == TaskState::READY; });
if (stop && (state != TaskState::READY))
return;
state = TaskState::RUNNING;
input = std::move(task_input);
}
if (input) {
std::unique_ptr<IndexerResult> tmp_result;
try {
auto algorithm = input->experiment.GetIndexingAlgorithm();
std::unique_ptr<Indexer> *slot = nullptr;
switch (algorithm) {
case IndexingAlgorithmEnum::FFT: slot = &fft_indexer; break;
case IndexingAlgorithmEnum::FFBIDX: slot = &ffbidx_indexer; break;
case IndexingAlgorithmEnum::FFTW: slot = &fftw_indexer; break;
default: break;
}
// A preconstructing worker already holds it; an OnFirstUse worker builds it here,
// on the first frame that resolves to this algorithm.
if (slot && !*slot)
*slot = MakeIndexer(algorithm, settings_);
if (!slot || !*slot) {
// Algorithm is already resolved here (never Auto/None - see
// IndexerThreadPool::Run, which also checked this host can serve it). Reaching
// this means the resolved algorithm has no matching indexer in this build -
// fail loudly instead of silently not indexing.
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
"Internal error: no indexer available for the resolved "
"indexing algorithm");
}
Indexer &indexer = **slot;
indexer.Setup(input->experiment);
tmp_result = std::make_unique<IndexerResult>(indexer.Run(input->recip, input->severity_only));
} catch (std::exception &e) {
// Hand the failure back as a result carrying the reason. A nullptr here was
// indistinguishable from a worker that was never dispatched, and both then read
// downstream as "this frame did not index".
spdlog::error("Indexer thread {} failed: {}", threadid, e.what());
tmp_result = std::make_unique<IndexerResult>(IndexerResult{
.lattice = {}, .indexing_time_s = 0, .executed = false, .error = e.what()});
// This thread goes on to the next frame, so a CUDA error left behind here would be
// reported by the first cudaGetLastError() of every frame that follows - one failed
// attempt would read as an indexer that never works again.
cuda_clear_error();
}
{
std::unique_lock<std::mutex> lock(m);
state = TaskState::COMPLETED;
result = std::move(tmp_result);
}
c_done.notify_all();
}
}
}
void IndexerThread::Finalize() {
{
std::unique_lock<std::mutex> lock(m);
stop = true;
}
c_start.notify_all();
if (worker_thread.joinable())
worker_thread.join();
}
std::unique_ptr<IndexerResult> IndexerThread::Run(const DiffractionExperiment &experiment,
const std::vector<Coord> &recip, bool severity_only) {
std::unique_ptr<IndexerResult> tmp_result;
{
std::unique_lock<std::mutex> lock(m);
if (stop)
return nullptr;
if (state != TaskState::IDLE)
return nullptr;
task_input = std::make_unique<TaskInput>(std::cref(experiment), std::cref(recip), severity_only);
state = TaskState::READY;
}
c_start.notify_one();
{
std::unique_lock<std::mutex> lock(m);
c_done.wait(lock, [this] { return state == TaskState::COMPLETED; });
tmp_result = std::move(result);
state = TaskState::IDLE;
}
return tmp_result;
}
IndexerThread::~IndexerThread() {
Finalize();
}
IndexerThreadPool::IndexerThreadPool(const IndexingSettings &settings, IndexerConstruction construction)
: worker_busy(settings.GetIndexingThreads(), 0),
worker_free_count(settings.GetIndexingThreads()),
viable_cell_min_spots(settings.GetViableCellMinSpots()),
blocking(settings.GetBlockingBehavior()) {
for (size_t i = 0; i < settings.GetIndexingThreads(); ++i)
tasks.emplace_back(std::make_unique<IndexerThread>(std::cref(settings), i, construction));
}
int IndexerThreadPool::GetFreeWorker() {
std::unique_lock<std::mutex> lock(m);
if (tasks.size() == 0)
return -1;
if (blocking)
c.wait(lock, [this] { return worker_free_count > 0; });
for (int i = 0; i < tasks.size(); i++) {
if (worker_busy[i] == 0) {
worker_busy[i] = 1;
worker_free_count--;
return i;
}
}
return -1;
}
IndexerResult IndexerThreadPool::Run(const DiffractionExperiment &experiment, const std::vector<Coord> &recip,
bool severity_only) {
const auto algorithm = experiment.GetIndexingAlgorithm();
if (algorithm == IndexingAlgorithmEnum::None)
return IndexerResult{.lattice = {}, .indexing_time_s = 0, .executed = false};
// GetIndexingAlgorithm() must already have resolved Auto to a concrete algorithm;
// the pool has no policy to resolve it, so Auto here is an upstream contract bug.
if (algorithm == IndexingAlgorithmEnum::Auto)
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
"Internal error: indexing algorithm must be resolved (not Auto) "
"before reaching the indexer pool");
// The workers built their indexers from the raw requested algorithm, but the algorithm actually
// dispatched is the RESOLVED one (rotation, for instance, always resolves to the GPU FFT indexer
// when a GPU is present, ignoring the request). If the resolution lands on an algorithm this host
// did not build an indexer for, fail here with an explanation instead of the opaque "no indexer
// available for the resolved algorithm" from deep inside a worker.
const auto requested = experiment.GetIndexingSettings().GetAlgorithm();
const bool have_gpu = get_gpu_count() > 0;
#ifdef JFJOCH_USE_FFTW
constexpr bool fftw_built = true;
#else
constexpr bool fftw_built = false;
#endif
const bool servable =
(algorithm == IndexingAlgorithmEnum::FFT && have_gpu &&
(requested == IndexingAlgorithmEnum::Auto || requested == IndexingAlgorithmEnum::FFT)) ||
(algorithm == IndexingAlgorithmEnum::FFBIDX && have_gpu &&
(requested == IndexingAlgorithmEnum::Auto || requested == IndexingAlgorithmEnum::FFBIDX)) ||
(algorithm == IndexingAlgorithmEnum::FFTW && fftw_built &&
((requested == IndexingAlgorithmEnum::Auto && !have_gpu) || requested == IndexingAlgorithmEnum::FFTW));
if (!servable) {
std::string msg;
if (requested == IndexingAlgorithmEnum::FFTW && have_gpu)
msg = "FFTW is the CPU indexer and is not available on a node with a GPU. Rotation indexing "
"always uses the GPU FFT indexer here; select FFT or Auto, or run FFTW on a CPU-only node.";
else if (algorithm == IndexingAlgorithmEnum::FFT && !have_gpu)
msg = "FFT is the GPU indexer but no GPU is available. Select FFTW or Auto for CPU indexing.";
else if (algorithm == IndexingAlgorithmEnum::FFBIDX && !have_gpu)
msg = "FFBIDX is a GPU indexer but no GPU is available. Select FFTW or Auto for CPU indexing.";
else if (algorithm == IndexingAlgorithmEnum::FFTW)
msg = "FFTW (CPU) indexing was requested but this build has no FFTW indexer.";
else
msg = "the requested indexing algorithm resolved to one with no indexer available on this host.";
throw JFJochException(JFJochExceptionCategory::InputParameterInvalid,
"Cannot index: " + msg);
}
// Check if there is available worker
const int task = GetFreeWorker();
std::unique_ptr<IndexerResult> result;
if (task >= 0) {
try {
result = tasks[task]->Run(experiment, recip, severity_only);
} catch (const std::exception &e) {
spdlog::error("Indexer thread failed: {}", e.what());
result = std::make_unique<IndexerResult>(IndexerResult{
.lattice = {}, .indexing_time_s = 0, .executed = false, .error = e.what()});
}
{
std::unique_lock<std::mutex> lock(m);
worker_busy[task] = 0;
worker_free_count++;
}
c.notify_one();
}
if (result)
return *result;
// No free worker, or the pool is stopping: indexing was not attempted. Distinct from both a
// frame that did not index and an indexer that failed, and left without an error for that reason.
return IndexerResult{.lattice = {}, .indexing_time_s = 0};
}