mirror of
https://github.com/ceres-solver/ceres-solver.git
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80fce72bfd
Starting with SuiteSparse version 7.4.0 CHOLMOD has support for single
precision matrices. This allows us to have single precision and mixed
precision solves when using the SUITE_SPARSE backend.
This CL also fixes sparse_cholesky_test which was completely broken for
single precision testing.
Sample performance on my Mac.
/usr/bin/time -l ./bin/bundle_adjuster --input=../../Downloads/problem-3068-310854-pre.txt
<SNIP>
Cost:
Initial 9.099334e+07
Final 4.161838e+06
Change 8.683150e+07
Minimizer iterations 6
Successful steps 4
Unsuccessful steps 2
Time (in seconds):
Preprocessor 2.528222
Residual only evaluation 0.142804 (5)
Jacobian & residual evaluation 0.424014 (4)
Linear solver 54.083396 (5)
Minimizer 54.895752
Postprocessor 0.024564
Total 57.448539
Termination: NO_CONVERGENCE (Maximum number of iterations reached. Number of iterations: 5.)
59.04 real 341.24 user 5.49 sys
5776375808 maximum resident set size
<SNIP>
616329634071 instructions retired
929475980510 cycles elapsed
5375034560 peak memory footprint
/usr/bin/time -l ./bin/bundle_adjuster --input=../../Downloads/problem-3068-310854-pre.txt -mixed_precision_solves
<SNIP>
Cost:
Initial 9.099334e+07
Final 4.148930e+06
Change 8.684441e+07
Minimizer iterations 6
Successful steps 4
Unsuccessful steps 2
Time (in seconds):
Preprocessor 2.580217
Residual only evaluation 0.144098 (5)
Jacobian & residual evaluation 0.396723 (4)
Linear solver 23.636074 (5)
Minimizer 24.427163
Postprocessor 0.023790
Total 27.031170
Termination: NO_CONVERGENCE (Maximum number of iterations reached. Number of iterations: 5.)
28.58 real 128.53 user 2.37 sys
4818386944 maximum resident set size
<SNIP>
395186936091 instructions retired
368802808856 cycles elapsed
4327029824 peak memory footprint
Change-Id: I1f137b0dd12da8da7f9ced338dd8f20f4bbdf99d
168 lines
6.1 KiB
C++
168 lines
6.1 KiB
C++
// Ceres Solver - A fast non-linear least squares minimizer
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// Copyright 2023 Google Inc. All rights reserved.
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// http://ceres-solver.org/
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//
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions are met:
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//
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// * Redistributions of source code must retain the above copyright notice,
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// this list of conditions and the following disclaimer.
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// * Redistributions in binary form must reproduce the above copyright notice,
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// this list of conditions and the following disclaimer in the documentation
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// and/or other materials provided with the distribution.
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// * Neither the name of Google Inc. nor the names of its contributors may be
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// used to endorse or promote products derived from this software without
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// specific prior written permission.
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
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// AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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// IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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// ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
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// LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
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// CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
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// SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
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// INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
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// CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
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// ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
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// POSSIBILITY OF SUCH DAMAGE.
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//
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// Author: sameeragarwal@google.com (Sameer Agarwal)
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#include "ceres/sparse_cholesky.h"
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#include <memory>
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#include <utility>
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#include "absl/log/check.h"
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#include "absl/log/log.h"
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#include "ceres/accelerate_sparse.h"
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#include "ceres/cuda_sparse_cholesky.h"
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#include "ceres/eigensparse.h"
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#include "ceres/iterative_refiner.h"
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#include "ceres/suitesparse.h"
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namespace ceres::internal {
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std::unique_ptr<SparseCholesky> SparseCholesky::Create(
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const LinearSolver::Options& options) {
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std::unique_ptr<SparseCholesky> sparse_cholesky;
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switch (options.sparse_linear_algebra_library_type) {
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case SUITE_SPARSE:
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#ifndef CERES_NO_SUITESPARSE
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if (options.use_mixed_precision_solves) {
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sparse_cholesky =
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FloatSuiteSparseCholesky::Create(options.ordering_type);
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} else {
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sparse_cholesky = SuiteSparseCholesky::Create(options.ordering_type);
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}
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break;
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#else
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LOG(FATAL) << "Ceres was compiled without support for SuiteSparse.";
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#endif
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case EIGEN_SPARSE:
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#ifdef CERES_USE_EIGEN_SPARSE
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if (options.use_mixed_precision_solves) {
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sparse_cholesky =
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FloatEigenSparseCholesky::Create(options.ordering_type);
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} else {
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sparse_cholesky = EigenSparseCholesky::Create(options.ordering_type);
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}
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break;
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#else
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LOG(FATAL) << "Ceres was compiled without support for "
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<< "Eigen's sparse Cholesky factorization routines.";
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#endif
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case ACCELERATE_SPARSE:
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#ifndef CERES_NO_ACCELERATE_SPARSE
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if (options.use_mixed_precision_solves) {
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sparse_cholesky =
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AppleAccelerateCholesky<float>::Create(options.ordering_type);
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} else {
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sparse_cholesky =
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AppleAccelerateCholesky<double>::Create(options.ordering_type);
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}
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break;
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#else
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LOG(FATAL) << "Ceres was compiled without support for Apple's Accelerate "
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<< "framework solvers.";
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#endif
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case CUDA_SPARSE:
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#ifndef CERES_NO_CUDSS
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if (options.use_mixed_precision_solves) {
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sparse_cholesky = CudaSparseCholesky<float>::Create(
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options.context, options.ordering_type);
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} else {
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sparse_cholesky = CudaSparseCholesky<double>::Create(
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options.context, options.ordering_type);
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}
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break;
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#else // CERES_NO_CUDSS
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LOG(FATAL) << "Ceres was compiled without support for cuDSS.";
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#endif // CERES_NO_CUDSS
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default:
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LOG(FATAL) << "Unknown sparse linear algebra library type : "
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<< SparseLinearAlgebraLibraryTypeToString(
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options.sparse_linear_algebra_library_type);
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}
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if (options.max_num_refinement_iterations > 0) {
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auto refiner = std::make_unique<SparseIterativeRefiner>(
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options.max_num_refinement_iterations);
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sparse_cholesky = std::make_unique<RefinedSparseCholesky>(
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std::move(sparse_cholesky), std::move(refiner));
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}
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return sparse_cholesky;
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}
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SparseCholesky::~SparseCholesky() = default;
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LinearSolverTerminationType SparseCholesky::FactorAndSolve(
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CompressedRowSparseMatrix* lhs,
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const double* rhs,
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double* solution,
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std::string* message) {
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LinearSolverTerminationType termination_type = Factorize(lhs, message);
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if (termination_type == LinearSolverTerminationType::SUCCESS) {
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termination_type = Solve(rhs, solution, message);
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}
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return termination_type;
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}
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RefinedSparseCholesky::RefinedSparseCholesky(
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std::unique_ptr<SparseCholesky> sparse_cholesky,
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std::unique_ptr<SparseIterativeRefiner> iterative_refiner)
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: sparse_cholesky_(std::move(sparse_cholesky)),
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iterative_refiner_(std::move(iterative_refiner)) {}
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RefinedSparseCholesky::~RefinedSparseCholesky() = default;
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CompressedRowSparseMatrix::StorageType RefinedSparseCholesky::StorageType()
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const {
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return sparse_cholesky_->StorageType();
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}
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LinearSolverTerminationType RefinedSparseCholesky::Factorize(
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CompressedRowSparseMatrix* lhs, std::string* message) {
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lhs_ = lhs;
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return sparse_cholesky_->Factorize(lhs, message);
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}
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LinearSolverTerminationType RefinedSparseCholesky::Solve(const double* rhs,
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double* solution,
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std::string* message) {
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CHECK(lhs_ != nullptr);
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auto termination_type = sparse_cholesky_->Solve(rhs, solution, message);
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if (termination_type != LinearSolverTerminationType::SUCCESS) {
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return termination_type;
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}
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iterative_refiner_->Refine(*lhs_, rhs, sparse_cholesky_.get(), solution);
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return LinearSolverTerminationType::SUCCESS;
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}
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} // namespace ceres::internal
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