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File suitesparse.spec of Package suitesparse
# # spec file for package suitesparse # # Copyright (c) 2024 SUSE LLC # # All modifications and additions to the file contributed by third parties # remain the property of their copyright owners, unless otherwise agreed # upon. The license for this file, and modifications and additions to the # file, is the same license as for the pristine package itself (unless the # license for the pristine package is not an Open Source License, in which # case the license is the MIT License). An "Open Source License" is a # license that conforms to the Open Source Definition (Version 1.9) # published by the Open Source Initiative. # Please submit bugfixes or comments via https://bugs.opensuse.org/ # %ifarch %{arm} aarch64 %define _lto_cflags %{nil} %endif %ifarch m68k %bcond_with openblas %else %bcond_without openblas %endif Name: suitesparse Summary: A collection of sparse matrix libraries License: BSD-3-Clause AND GPL-2.0-or-later AND LGPL-2.1-or-later Version: 7.8.3 Release: 0 Group: Development/Libraries/C and C++ URL: https://people.engr.tamu.edu/davis/suitesparse.html Source0: https://github.com/DrTimothyAldenDavis/SuiteSparse/archive/v%{version}.tar.gz#/SuiteSparse-%{version}.tar.gz Source1: https://sparse.tamu.edu/files/ssstats.csv # Add our manually written for-convenience python script that lists all other sources # This script is basically a modification of the runTests script # https://github.com/DrTimothyAldenDavis/SuiteSparse/blob/dev/Mongoose/Tests/runTests Source2: list-mongoose-test-sources.py Source3: README-suse-maintenance.md # Sources needed for tests, numbered starting from 100 Source100: https://sparse.tamu.edu/MM/HB/1138_bus.tar.gz Source101: https://sparse.tamu.edu/MM/HB/494_bus.tar.gz Source102: https://sparse.tamu.edu/MM/HB/662_bus.tar.gz Source103: https://sparse.tamu.edu/MM/HB/685_bus.tar.gz Source104: https://sparse.tamu.edu/MM/HB/arc130.tar.gz Source105: https://sparse.tamu.edu/MM/HB/ash292.tar.gz Source106: https://sparse.tamu.edu/MM/HB/ash85.tar.gz Source107: https://sparse.tamu.edu/MM/HB/bcspwr01.tar.gz Source108: https://sparse.tamu.edu/MM/HB/bcspwr02.tar.gz Source109: https://sparse.tamu.edu/MM/HB/bcspwr03.tar.gz Source110: https://sparse.tamu.edu/MM/HB/bcspwr09.tar.gz Source111: https://sparse.tamu.edu/MM/HB/bcsstk17.tar.gz Source112: https://sparse.tamu.edu/MM/HB/bcsstm02.tar.gz Source113: https://sparse.tamu.edu/MM/HB/jagmesh7.tar.gz Source114: https://sparse.tamu.edu/MM/HB/lnsp3937.tar.gz Source115: https://sparse.tamu.edu/MM/HB/lshp3466.tar.gz Source116: https://sparse.tamu.edu/MM/HB/sherman1.tar.gz Source117: https://sparse.tamu.edu/MM/HB/sstmodel.tar.gz Source118: https://sparse.tamu.edu/MM/Boeing/crystm01.tar.gz Source119: https://sparse.tamu.edu/MM/Boeing/msc04515.tar.gz Source120: https://sparse.tamu.edu/MM/Gset/G42.tar.gz Source121: https://sparse.tamu.edu/MM/Nasa/nasa4704.tar.gz Source122: https://sparse.tamu.edu/MM/Andrianov/fxm3_6.tar.gz Source123: https://sparse.tamu.edu/MM/Andrianov/net25.tar.gz Source124: https://sparse.tamu.edu/MM/Oberwolfach/LF10000.tar.gz Source125: https://sparse.tamu.edu/MM/Pajek/Erdos992.tar.gz Source126: https://sparse.tamu.edu/MM/Pajek/USpowerGrid.tar.gz Source127: https://sparse.tamu.edu/MM/Pajek/yeast.tar.gz Source128: https://sparse.tamu.edu/MM/Schenk_IBMNA/c-38.tar.gz Source129: https://sparse.tamu.edu/MM/Schenk_IBMNA/c-43.tar.gz Source130: https://sparse.tamu.edu/MM/Gleich/minnesota.tar.gz Source131: https://sparse.tamu.edu/MM/Newman/netscience.tar.gz Source132: https://sparse.tamu.edu/MM/AG-Monien/netz4504.tar.gz Source133: https://sparse.tamu.edu/MM/DIMACS10/delaunay_n13.tar.gz Source134: https://sparse.tamu.edu/MM/DIMACS10/tx2010.tar.gz # This patch is to keep our test sources since upstream has to likely update # their sources for tests. This is not a fix for upstream but to adapt with # how open build service works since it disallows network connections during # the build. Patch1: keep-mongoose-test-sources.patch BuildRequires: cmake >= 3.22 BuildRequires: fdupes BuildRequires: gcc >= 4.9 BuildRequires: gcc-c++ >= 4.9 BuildRequires: gcc-fortran BuildRequires: gmp-devel BuildRequires: lapack-devel BuildRequires: make BuildRequires: memory-constraints BuildRequires: metis-devel BuildRequires: mpfr-devel BuildRequires: tbb-devel BuildRequires: valgrind %if %{with openblas} BuildRequires: openblas-devel %else BuildRequires: blas-devel %endif %define amd_sover 3 %define btf_sover 2 %define camd_sover 3 %define ccolamd_sover 3 %define cholmod_sover 5 %define colamd_sover 3 %define config_sover 7 %define csparse_sover 4 %define cxsparse_sover 4 %define graphblas_sover 9 %define klu_sover 2 %define ldl_sover 3 %define lagraph_sover 1 %define lagraphx_sover 1 %define paru_sover 1 %define mongoose_sover 3 %define suitesparse_mongoose_sover 3 %define rbio_sover 4 %define sliplu_sover 1 %define spex_sover 3 %define spqr_sover 4 %define umfpack_sover 6 %define klu_cholmod_sover 2 %define amdlib libamd%{amd_sover} %define btflib libbtf%{btf_sover} %define camdlib libcamd%{camd_sover} %define ccolamdlib libccolamd%{ccolamd_sover} %define cholmodlib libcholmod%{cholmod_sover} %define colamdlib libcolamd%{colamd_sover} %define configlib libsuitesparseconfig%{config_sover} %define csparselib libcsparse%{csparse_sover} %define cxsparselib libcxsparse%{cxsparse_sover} %define graphblaslib libgraphblas%{graphblas_sover} %define suitesparse_mongooselib libsuitesparse_mongoose%{suitesparse_mongoose_sover} %define parulib libparu%{paru_sover} %define lagraphlib liblagraph%{lagraph_sover} %define lagraphxlib liblagraphx%{lagraphx_sover} %define klulib libklu%{klu_sover} %define ldllib libldl%{ldl_sover} %define mongooselib libmongoose%{mongoose_sover} %define rbiolib librbio%{rbio_sover} %define spexlib libspex%{spex_sover} %define spqrlib libspqr%{spqr_sover} %define umfpacklib libumfpack%{umfpack_sover} %define klu_cholmodlib libklu_cholmod%{klu_cholmod_sover} %{?suse_build_hwcaps_libs} %description suitesparse is a collection of libraries for computations involving sparse matrices. %package devel Summary: Development headers for SuiteSparse License: BSD-3-Clause AND GPL-2.0-or-later AND LGPL-2.1-or-later Group: Development/Libraries/C and C++ Requires: %{amdlib} = %{version} Requires: %{btflib} = %{version} Requires: %{camdlib} = %{version} Requires: %{ccolamdlib} = %{version} Requires: %{cholmodlib} = %{version} Requires: %{colamdlib} = %{version} Requires: %{configlib} = %{version} Requires: %{configlib} = %{version} Requires: %{cxsparselib} = %{version} Requires: %{graphblaslib} = %{version} Requires: %{klu_cholmodlib} = %{version} Requires: %{klu_cholmodlib} = %{version} Requires: %{klulib} = %{version} Requires: %{lagraphlib} = %{version} Requires: %{lagraphxlib} = %{version} Requires: %{ldllib} = %{version} Requires: %{parulib} = %{version} Requires: %{rbiolib} = %{version} Requires: %{spexlib} = %{version} Requires: %{spqrlib} = %{version} Requires: %{suitesparse_mongooselib} = %{version} Requires: %{umfpacklib} = %{version} Requires: gcc-c++ >= 4.9 Requires: metis-devel %if %{with openblas} Requires: openblas-devel %else Requires: blas-devel %endif Requires: tbb-devel %description devel suitesparse is a collection of libraries for computations involving sparse matrices. The suitesparse-devel package contains files needed for developing applications which use the suitesparse libraries. %package -n %{amdlib} Summary: Symmetric Approximate Minimum Degree License: BSD-3-Clause Group: System/Libraries %description -n %{amdlib} AMD is a set of routines for ordering a sparse matrix prior to Cholesky factorization (or for LU factorization with diagonal pivoting). There are versions in both C and Fortran. A MATLAB interface is provided. Note that this software has nothing to do with AMD the company. AMD is part of the SuiteSparse sparse matrix suite. %package -n libamd-doc Summary: Documentation for libamd License: BSD-3-Clause Group: Documentation/Other BuildArch: noarch %description -n libamd-doc Documentation for libamd. %package -n %{btflib} Summary: Permutation to Block Triangular Form License: LGPL-2.1-or-later Group: System/Libraries %description -n %{btflib} BTF permutes an unsymmetric matrix (square or rectangular) into its block upper triangular form (more precisely, it computes a Dulmage- Mendelsohn decomposition). BTF is part of the SuiteSparse sparse matrix suite. %package -n %{camdlib} Summary: Symmetric Approximate Minimum Degree License: BSD-3-Clause Group: System/Libraries %description -n %{camdlib} CAMD is a set of routines for ordering a sparse matrix prior to Cholesky factorization (or for LU factorization with diagonal pivoting). There are versions in both C and Fortran. A MATLAB interface is provided. CAMD is part of the SuiteSparse sparse matrix suite. %package -n libcamd-doc Summary: Documentation for libcamd License: BSD-3-Clause Group: Documentation/Other BuildArch: noarch %description -n libcamd-doc Documentation for libcam. %package -n %{ccolamdlib} Summary: Constrained Column Approximate Minimum Degree License: BSD-3-Clause Group: System/Libraries %description -n %{ccolamdlib} CCOLAMD computes an column approximate minimum degree ordering algorithm, (like COLAMD), but it can also be given a set of ordering constraints. CCOLAMD is required by the CHOLMOD package. CCOLAMD is part of the SuiteSparse sparse matrix suite. %package -n %{cholmodlib} Summary: Supernodal Sparse Cholesky Factorization and Update/Downdate License: GPL-2.0-only AND LGPL-2.1-only Group: System/Libraries #bnc746867 cholmod from suitesparse should be GPL-2.0 and/or LGPL-2.0 licensed %description -n %{cholmodlib} CHOLMOD is a set of ANSI C routines for sparse Cholesky factorization and update/downdate. A MATLAB interface is provided. The performance of CHOLMOD was compared with 10 other codes in a paper by Nick Gould, Yifan Hu, and Jennifer Scott. see also their raw data. Comparing BCSLIB-EXT, CHOLMOD, MA57, MUMPS, Oblio, PARDISO, SPOOLES, SPRSBLKLLT, TAUCS, UMFPACK, and WSMP, on 87 large symmetric positive definite matrices, they found CHOLMOD to be fastest for 42 of the 87 matrices. Its run time is either fastest or within 10%% of the fastest for 73 out of 87 matrices. Considering just the larger matrices, it is either the fastest or within 10%% of the fastest for 40 out of 42 matrices. It uses the least amount of memory (or within 10%% of the least) for 35 of the 42 larger matrices. Jennifer Scott and Yifan Hu also discuss the design considerations for a sparse direct code. CHOLMOD is part of the SuiteSparse sparse matrix suite. %package -n %{colamdlib} Summary: Column Approximate Minimum Degree License: BSD-3-Clause Group: System/Libraries %description -n %{colamdlib} The COLAMD column approximate minimum degree ordering algorithm computes a permutation vector P such that the LU factorization of A (:,P) tends to be sparser than that of A. The Cholesky factorization of (A (:,P))'*(A (:,P)) will also tend to be sparser than that of A'*A. SYMAMD is a symmetric minimum degree ordering method based on COLAMD, available as a MATLAB-callable function. It constructs a matrix M such that M'*M has the same pattern as A, and then uses COLAMD to compute a column ordering of M. Colamd and symamd tend to be faster and generate better orderings than their MATLAB counterparts, colmmd and symmmd. COLAMD is part of the SuiteSparse sparse matrix suite. %package -n %{cxsparselib} Summary: An extended version of CSparse License: LGPL-2.1-or-later Group: System/Libraries %description -n %{cxsparselib} CXSparse is an extended version of CSparse, with support for double or complex matrices, with int or long integers. CXSparse is part of the SuiteSparse sparse matrix suite. %package -n %{graphblaslib} Summary: An implementation of the GraphBLAS standard License: Apache-2.0 Group: System/Libraries %description -n %{graphblaslib} GraphBLAS is an full implementation of the GraphBLAS standard, which defines a set of sparse matrix operations on an extended algebra of semirings using an almost unlimited variety of operators and types. When applied to sparse adjacency matrices, these algebraic operations are equivalent to computations on graphs. GraphBLAS provides a powerful and expressive framework for creating graph algorithms based on the elegant mathematics of sparse matrix operations on a semiring. GraphBLAS is part of the SuiteSparse sparse matrix suite. %package -n %{klulib} Summary: Sparse LU Factorization, for Circuit Simulation License: LGPL-2.1-or-later Group: System/Libraries %description -n %{klulib} KLU is a sparse LU factorization algorithm well-suited for use in circuit simulation. It was highlighted in the May 2007 issue of SIAM News, Sparse Matrix Algorithm Drives SPICE Performance Gains. It is the "fast sparse-matrix solver" mentioned in the article. KLU is part of the SuiteSparse sparse matrix suite. %package -n libklu-doc Summary: Documentation for libklu License: LGPL-2.1-or-later Group: Documentation/Other BuildArch: noarch %description -n libklu-doc Documentation for libklu. %package -n %{ldllib} Summary: A Simple LDL^T Factorization License: LGPL-2.1-or-later Group: System/Libraries %description -n %{ldllib} LDL is a set of concise routines for factorizing symmetric positive- definite sparse matrices, with some applicability to symmetric indefinite matrices. Its primary purpose is to illustrate much of the basic theory of sparse matrix algorithms in as concise a code as possible, including an elegant new method of sparse symmetric factorization that computes the factorization row-by-row but stores it column-by-column. The entire symbolic and numeric factorization consists of a total of only 49 lines of code. The package is written in C, and includes a MATLAB interface. LDL is part of the SuiteSparse sparse matrix suite. %package -n libldl-doc Summary: Documentation for libldl License: LGPL-2.1-or-later Group: Documentation/Other BuildArch: noarch %description -n libldl-doc Documentation for libldl. %package -n %{rbiolib} Summary: MATLAB Toolbox for Reading/Writing Sparse Matrices License: GPL-2.0-or-later Group: System/Libraries %description -n %{rbiolib} RBio is a MATLAB toolbox for reading/writing sparse matrices in the Rutherford/Boeing format, and for reading/writing problems in the UF Sparse Matrix Collection from/to a set of files in a directory. Version 2.0+ is written in C. RBio is part of the SuiteSparse sparse matrix suite. %package -n %{spexlib} Summary: SPEX, A SParse EXact Algebra Factorizations License: GPL-2.0-or-later AND LGPL-3.0-or-later Group: System/Libraries %description -n %{spexlib} SPEX is software package used to solve a sparse systems of linear equations and replaces SLIP LU. SPEX Util is a software package containing utility and auxiliary functions for the SPEX factorizations. Additionally, SPEX Util provides a wrapper class for the GNU Multiple Precision Arithmetic (GMP) and GNU Multiple Precision Floating Point Reliable (MPFR) libraries that prevent memory leaks and improve the overall stability of these external libraries. SPEX Util is written in ANSI C. SPEX operates on matrices stored in any of the following 15 combinations of matrix formats and entry data-types SPEX and SPEX Utils are part of the SuiteSparse sparse matrix suite. %package -n libspex-doc Summary: SPEX, A SParse EXact Algebra Factorizations License: GPL-2.0-or-later AND LGPL-3.0-or-later Group: Documentation/Other BuildArch: noarch %description -n libspex-doc Documentation for libspex. SPEX is software package used to solve a sparse systems of linear equations and replaces SLIP LU. SPEX Util is a software package containing utility and auxiliary functions for the SPEX factorizations. Additionally, SPEX Util provides a wrapper class for the GNU Multiple Precision Arithmetic (GMP) and GNU Multiple Precision Floating Point Reliable (MPFR) libraries that prevent memory leaks and improve the overall stability of these external libraries. SPEX Util is written in ANSI C. %package -n %{spqrlib} Summary: Multifrontal Sparse QR License: GPL-2.0-or-later Group: System/Libraries %description -n %{spqrlib} SuiteSparseQR is an implementation of the multifrontal sparse QR factorization method. Parallelism is exploited both in the BLAS and across different frontal matrices using Intel's Threading Building Blocks, a shared-memory programming model for modern multicore architectures. It can obtain a substantial fraction of the theoretical peak performance of a multicore computer. The package is written in C++ with user interfaces for MATLAB, C, and C++. SuiteSparseQR is part of the SuiteSparse sparse matrix suite. %package -n %{umfpacklib} Summary: Sparse Multifrontal LU Factorization License: GPL-2.0-or-later Group: System/Libraries %description -n %{umfpacklib} UMFPACK is a set of routines for solving unsymmetric sparse linear systems, Ax=b, using the Unsymmetric MultiFrontal method. Written in ANSI/ISO C, with a MATLAB (Version 6.0 and later) interface. Appears as a built-in routine (for lu, backslash, and forward slash) in M ATLAB. Includes a MATLAB interface, a C-callable interface, and a Fortran-callable interface. Note that "UMFPACK" is pronounced in two syllables, "Umph Pack". It is not "You Em Ef Pack". UMFPACK is part of the SuiteSparse sparse matrix suite. %package -n libumfpack-doc Summary: Documentation for libumfpack License: GPL-2.0-or-later Group: Documentation/Other BuildArch: noarch %description -n libumfpack-doc Documentation for libumfpack. %package -n %{klu_cholmodlib} Summary: Helpers for GPU accelerated runtimes License: GPL-2.0-or-later Group: System/Libraries %description -n %{klu_cholmodlib} This package provides the helper functions for the GPU for SuiteSparse.. KLU x CHOLMOD is part of the SuiteSparse sparse matrix suite. %package -n %{lagraphlib} Summary: Community effort collection of algorithms on top of GraphBLAS License: GPL-2.0-or-later Group: System/Libraries %description -n %{lagraphlib} This package provides a collection of graph algorithms built on top of GraphBLAS. LAGraph is part of the SuiteSparse sparse matrix suite. %package -n %{lagraphxlib} Summary: Community effort collection of algorithms on top of GraphBLAS License: GPL-2.0-or-later Group: System/Libraries %description -n %{lagraphxlib} This package provides an extended collection of graph algorithms built on top of GraphBLAS. LAGraphX is part of the SuiteSparse sparse matrix suite. %package -n %{suitesparse_mongooselib} Summary: Graph partitioning library License: GPL-3.0-only Group: System/Libraries %description -n %{suitesparse_mongooselib} Mongoose is a graph partitioning library. Currently, Mongoose only supports edge partitioning. mongoose is part of the SuiteSparse sparse matrix suite. %package -n libsuitesparse_mongoose-doc Summary: Documentation for libsuitesparse_mongoose License: GPL-3.0-only Group: Documentation/Other BuildArch: noarch %description -n libsuitesparse_mongoose-doc Documentation for libsuitesparse_mongoose. Mongoose is a graph partitioning library. Currently, Mongoose only supports edge partitioning. mongoose is part of the SuiteSparse sparse matrix suite. %package -n suitesparse_mongoose Summary: Binary executable for suitesparse mongoose License: GPL-3.0-only %description -n suitesparse_mongoose Binary executable for suitesparse_mongoose. Mongoose is a graph partitioning library. Currently, Mongoose only supports edge partitioning. mongoose is part of the SuiteSparse sparse matrix suite. %package -n %{parulib} Summary: Multifrontal sparse LU factorization methods License: GPL-3.0-only Group: System/Libraries %description -n %{parulib} ParU is an implementation of the multifrontal sparse LU factorization method. Parallelis is exploited both in the BLAS and across different frontal matrices using OpenMP tasking and shared-memory programming model for modern multicore architectures. ParU is part of the SuiteSparse sparse matrix suite. %package -n %{configlib} Summary: Common configurations for all packages in SuiteSparse License: GPL-2.0-or-later Group: System/Libraries %description -n %{configlib} SuiteSparse_config is required by a number of sparse matrix packages, including SuiteSparseQR, AMD, COLAMD, CCOLAMD, CHOLMOD, KLU, BTF, LDL, CXSparse, RBio, and UMFPACK. It is not required by CSparse, which is a stand-alone packages. Mongoose uses SuiteSparse_config, if available but works also without it. SuiteSparse_config contains a configuration file for "make" (SuiteSparse_config.mk) and an include file (SuiteSparse_config.h). Also included in SuiteSparse_config is a replacement for the BLAS/LAPACK xerbla routine that does not print a warning message (helpful if you don't want to link the entire Fortran I/O library into a C application). SuiteSparse_config is part of the SuiteSparse sparse matrix suite. %prep %autosetup -p1 -n SuiteSparse-%{version} mv SPQR/Doc/README.txt SPQR/Doc/README_2.txt # bnc#751746 rm CHOLMOD/Doc/IA3_2014_Workshop_Rennich_Stosic_Davis_preprint.pdf rm KLU/Doc/palamadai_e.pdf rm MATLAB_Tools/Factorize/Doc/factorize_article.pdf rm SPQR/Doc/algo_spqr.pdf rm SPQR/Doc/qrgpu_paper.pdf rm SPQR/Doc/spqr.pdf cp %{SOURCE1} Mongoose/Tests/ %(for src in "$(seq 100 134)"; do tar xvf %{SOURCE$src} --strip-components=1 -C Mongoose/Matrix; tar xvf %{SOURCE$src} --strip-components=1 -C Mongoose/Tests/Matrix; end) %build %limit_build -m 1500 %if %{with openblas} export BLAS=-lopenblas %else export BLAS=-lblas %endif %ifarch %{arm} aarch64 %define build_ldflags -latomic -lm %else %define build_ldflags -lm # Better performance with -flto unset MALLOC_CHECK_ unset MALLOC_PERTURB_ %endif # GraphBlas demos: avoid writing to root dir export GRAPHBLAS_CACHE_PATH=$(mktemp -d GraphBlas_JIT_cache_XXX) # export CMAKE_OPTIONS='-DCMAKE_INSTALL_PREFIX:PATH=%{_prefix} \ %if %{with openblas} -DBLA_VENDOR=OpenBLAS \ %endif -DCMAKE_INSTALL_BINDIR:PATH=%{_bindir} \ -DCMAKE_INSTALL_SBINDIR:PATH=%{_sbindir} \ -DCMAKE_INSTALL_LIBEXECDIR:PATH=%{_libexecdir} \ -DCMAKE_INSTALL_SYSCONFDIR:PATH=%{_sysconfdir} \ -DCMAKE_INSTALL_SHAREDSTATEDIR:PATH=%{_sharedstatedir} \ -DCMAKE_INSTALL_LOCALSTATEDIR:PATH=%{_localstatedir} \ -DCMAKE_INSTALL_RUNSTATEDIR:PATH=%{_rundir} \ -DCMAKE_INSTALL_LIBDIR:PATH=%{_libdir} \ -DCMAKE_INSTALL_INCLUDEDIR:PATH=%{_includedir} \ -DCMAKE_INSTALL_DATAROOTDIR:PATH=%{_datadir} \ -DCMAKE_SKIP_INSTALL_RPATH:BOOL=ON \ -DINCLUDE_INSTALL_DIR:PATH=%{_includedir} \ -DLIB_INSTALL_DIR:PATH=%{_libdir} \ -DSYSCONF_INSTALL_DIR:PATH=%{_sysconfdir} \ -DSHARE_INSTALL_PREFIX:PATH=%{_datadir} \ -DCMAKE_BUILD_TYPE=RelWithDebInfo \ -DCMAKE_C_FLAGS="${CFLAGS:-%optflags}" \ -DCMAKE_CXX_FLAGS="${CXXFLAGS:-%optflags}" \ -DCMAKE_Fortran_FLAGS="${FFLAGS:-%optflags%{?_fmoddir: -I%_fmoddir}}" \ -DCMAKE_EXE_LINKER_FLAGS="%{?build_ldflags} -Wl,--as-needed -Wl,-z,now" \ -DCMAKE_MODULE_LINKER_FLAGS="%{?build_ldflags} -Wl,--as-needed" \ -DCMAKE_SHARED_LINKER_FLAGS="%{?build_ldflags} -Wl,--as-needed -Wl,-z,now" \ %if "%{?_lib}" == "lib64" -DLIB_SUFFIX=64 \ %endif -DCMAKE_VERBOSE_MAKEFILE:BOOL=ON \ -DBUILD_SHARED_LIBS:BOOL=ON \ -DBUILD_STATIC_LIBS:BOOL=OFF \ -DCMAKE_COLOR_MAKEFILE:BOOL=OFF \ -DCMAKE_INSTALL_DO_STRIP:BOOL=OFF \ -DCMAKE_MODULES_INSTALL_DIR=%{_libdir}/cmake/%{name} \ -DSUITESPARSE_DEMOS=ON \ -DBUILD_TESTING=ON' export JOBS="%(echo %{?_smp_mflags} | cut -c 3-)" %make_build library %install %make_install %fdupes %{buildroot}%{_datadir} %fdupes %{buildroot}%{_libdir} %check # GraphBlas demos: avoid writing to root dir export GRAPHBLAS_CACHE_PATH=$(mktemp -d GraphBlas_JIT_cache_XXX) # # Demos also include checks. These runs demos and their respective test suites. export JOBS="%(echo %{?_smp_mflags} | cut -c 3-)" %make_build demos %post -n %{amdlib} -p /sbin/ldconfig %postun -n %{amdlib} -p /sbin/ldconfig %post -n %{btflib} -p /sbin/ldconfig %postun -n %{btflib} -p /sbin/ldconfig %post -n %{camdlib} -p /sbin/ldconfig %postun -n %{camdlib} -p /sbin/ldconfig %post -n %{ccolamdlib} -p /sbin/ldconfig %postun -n %{ccolamdlib} -p /sbin/ldconfig %post -n %{cholmodlib} -p /sbin/ldconfig %postun -n %{cholmodlib} -p /sbin/ldconfig %post -n %{colamdlib} -p /sbin/ldconfig %postun -n %{colamdlib} -p /sbin/ldconfig %post -n %{cxsparselib} -p /sbin/ldconfig %postun -n %{cxsparselib} -p /sbin/ldconfig %post -n %{graphblaslib} -p /sbin/ldconfig %postun -n %{graphblaslib} -p /sbin/ldconfig %post -n %{klulib} -p /sbin/ldconfig %postun -n %{klulib} -p /sbin/ldconfig %post -n %{ldllib} -p /sbin/ldconfig %postun -n %{ldllib} -p /sbin/ldconfig %post -n %{suitesparse_mongooselib} -p /sbin/ldconfig %postun -n %{suitesparse_mongooselib} -p /sbin/ldconfig %post -n %{rbiolib} -p /sbin/ldconfig %postun -n %{rbiolib} -p /sbin/ldconfig %post -n %{spexlib} -p /sbin/ldconfig %postun -n %{spexlib} -p /sbin/ldconfig %post -n %{spqrlib} -p /sbin/ldconfig %postun -n %{spqrlib} -p /sbin/ldconfig %post -n %{umfpacklib} -p /sbin/ldconfig %postun -n %{umfpacklib} -p /sbin/ldconfig %post -n %{lagraphlib} -p /sbin/ldconfig %postun -n %{lagraphlib} -p /sbin/ldconfig %post -n %{lagraphxlib} -p /sbin/ldconfig %postun -n %{lagraphxlib} -p /sbin/ldconfig %post -n %{parulib} -p /sbin/ldconfig %postun -n %{parulib} -p /sbin/ldconfig %post -n %{klu_cholmodlib} -p /sbin/ldconfig %postun -n %{klu_cholmodlib} -p /sbin/ldconfig %post -n %{configlib} -p /sbin/ldconfig %postun -n %{configlib} -p /sbin/ldconfig %files devel %doc ChangeLog README.md %license LICENSE.txt %{_includedir}/* %{_libdir}/pkgconfig/*.pc %{_libdir}/*.so %{_libdir}/cmake/* %files -n %{amdlib} %doc AMD/README.txt %doc AMD/Doc/ChangeLog %license AMD/Doc/License.txt %{_libdir}/libamd.so.* %files -n libamd-doc %doc AMD/Doc/AMD_UserGuide.pdf %files -n %{btflib} %doc BTF/README.txt %doc BTF/Doc/ChangeLog %license BTF/Doc/License.txt BTF/Doc/lesser.txt %{_libdir}/libbtf.so.* %files -n %{camdlib} %doc CAMD/README.txt %doc CAMD/Doc/ChangeLog %license CAMD/Doc/License.txt %{_libdir}/libcamd.so.* %files -n libcamd-doc %doc CAMD/Doc/CAMD_UserGuide.pdf %files -n %{ccolamdlib} %doc CCOLAMD/README.txt %doc CCOLAMD/Doc/ChangeLog %license CCOLAMD/Doc/License.txt %{_libdir}/libccolamd.so.* %files -n %{cholmodlib} %doc CHOLMOD/README.txt %doc CHOLMOD/Doc/CHOLMOD_UserGuide.pdf %license CHOLMOD/Doc/ChangeLog CHOLMOD/Doc/License.txt %license CHOLMOD/Cholesky/lesser.txt %license CHOLMOD/MatrixOps/gpl.txt %{_libdir}/libcholmod.so.* %files -n %{colamdlib} %doc COLAMD/README.txt %doc COLAMD/Doc/ChangeLog %license COLAMD/Doc/License.txt %{_libdir}/libcolamd.so.* %files -n %{cxsparselib} %doc CXSparse/README.txt %doc CXSparse/Doc/ChangeLog %license CXSparse/Doc/License.txt CXSparse/Doc/lesser.txt %{_libdir}/libcxsparse.so.* %files -n %{graphblaslib} %doc GraphBLAS/README.md %doc GraphBLAS/Doc/GraphBLAS_UserGuide.pdf %license GraphBLAS/Doc/ChangeLog GraphBLAS/LICENSE %{_libdir}/libgraphblas.so.* %files -n %{klulib} %doc KLU/README.txt %doc KLU/Doc/ChangeLog %license KLU/Doc/License.txt KLU/Doc/lesser.txt %{_libdir}/libklu.so.* %files -n libklu-doc %doc KLU/Doc/KLU_UserGuide.pdf %files -n %{ldllib} %doc LDL/README.txt %doc LDL/Doc/ChangeLog %license LDL/Doc/License.txt LDL/Doc/lesser.txt %{_libdir}/libldl.so.* %files -n libldl-doc %doc LDL/Doc/ldl_userguide.pdf %files -n %{suitesparse_mongooselib} %doc Mongoose/README.md %license Mongoose/Doc/License.txt %{_libdir}/libsuitesparse_mongoose.so.* %files -n libsuitesparse_mongoose-doc %doc Mongoose/Doc/Mongoose_UserGuide.pdf %files -n suitesparse_mongoose %{_bindir}/suitesparse_mongoose %files -n %{rbiolib} %doc RBio/README.txt %doc RBio/Doc/ChangeLog %license RBio/Doc/License.txt RBio/Doc/gpl.txt %{_libdir}/librbio.so.* %files -n %{spexlib} %license SPEX/LICENSE.txt %license SPEX/SPEX_Utilities/License/license.txt SPEX/SPEX_Utilities/License/GPLv2.txt %license SPEX/SPEX_Utilities/License/lesserv3.txt SPEX/SPEX_Utilities/License/CONTRIBUTOR-LICENSE.txt %{_libdir}/libspex.so.* %{_libdir}/libspexpython.so.* %files -n libspex-doc %doc SPEX/README.md %doc SPEX/Doc/SPEX_UserGuide.pdf %files -n %{spqrlib} %doc SPQR/README.txt %doc SPQR/Doc/spqr_user_guide.pdf SPQR/Doc/ChangeLog SPQR/Doc/README_2.txt %license SPQR/Doc/License.txt SPQR/Doc/gpl.txt %{_libdir}/libspqr.so.* %files -n %{umfpacklib} %license UMFPACK/Doc/License.txt UMFPACK/Doc/gpl.txt %{_libdir}/libumfpack.so.* %files -n libumfpack-doc %doc UMFPACK/README.txt %doc UMFPACK/Doc/UMFPACK_QuickStart.pdf UMFPACK/Doc/UMFPACK_UserGuide.pdf UMFPACK/Doc/ChangeLog %files -n %{lagraphlib} %doc LAGraph/README.md LAGraph/Acknowledgments.txt %license LAGraph/LICENSE %{_libdir}/liblagraph.so.* %files -n %{lagraphxlib} %doc LAGraph/README.md LAGraph/Acknowledgments.txt %license LAGraph/LICENSE %{_libdir}/liblagraphx.so.* %files -n %{parulib} %doc ParU/README.md %license ParU/LICENSE.txt %{_libdir}/libparu.so.* %files -n %{klu_cholmodlib} %doc KLU/README.txt %doc KLU/Doc/ChangeLog %license KLU/Doc/License.txt KLU/Doc/lesser.txt %{_libdir}/libklu_cholmod.so.* %files -n %{configlib} %doc SuiteSparse_config/README.txt %license LICENSE.txt %{_libdir}/libsuitesparseconfig.so.* %changelog
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