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#include <iostream> |
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#include <fstream> |
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#include <iomanip> |
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#include <Eigen/Jacobi> |
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#include <Eigen/Householder> |
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#include <Eigen/IterativeLinearSolvers> |
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#include <Eigen/LU> |
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#include <unsupported/Eigen/SparseExtra> |
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#include <Eigen/SuperLUSupport> |
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#include <bench/BenchTimer.h> |
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#include <unsupported/Eigen/IterativeSolvers> |
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using namespace std; |
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using namespace Eigen; |
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int main(int argc, char **args) |
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{ |
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SparseMatrix<double, ColMajor> A; |
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typedef SparseMatrix<double, ColMajor>::Index Index; |
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typedef Matrix<double, Dynamic, Dynamic> DenseMatrix; |
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typedef Matrix<double, Dynamic, 1> DenseRhs; |
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VectorXd b, x, tmp; |
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BenchTimer timer,totaltime; |
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ConjugateGradient<SparseMatrix<double, ColMajor>, Lower,IncompleteCholesky<double,Lower> > solver; |
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ifstream matrix_file; |
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string line; |
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int n; |
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if (argc < 2) assert(false && "please, give the matrix market file "); |
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timer.start(); |
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totaltime.start(); |
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loadMarket(A, args[1]); |
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cout << "End charging matrix " << endl; |
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bool iscomplex=false, isvector=false; |
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int sym; |
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getMarketHeader(args[1], sym, iscomplex, isvector); |
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if (iscomplex) { cout<< " Not for complex matrices \n"; return -1; } |
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if (isvector) { cout << "The provided file is not a matrix file\n"; return -1;} |
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if (sym != 0) { |
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SparseMatrix<double, ColMajor> temp; |
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temp = A; |
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A = temp.selfadjointView<Lower>(); |
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} |
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timer.stop(); |
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n = A.cols(); |
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cout<< "Time to load the matrix " << timer.value() <<endl; |
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if (argc > 2) |
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loadMarketVector(b, args[2]); |
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else |
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{ |
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b.resize(n); |
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tmp.resize(n); |
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for (int i = 0; i < n; i++) tmp(i) = i; |
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b = A * tmp ; |
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} |
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cout<< "Starting the factorization "<< endl; |
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timer.reset(); |
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timer.start(); |
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cout<< "Size of Input Matrix "<< b.size()<<"\n\n"; |
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cout<< "Rows and columns "<< A.rows() <<" " <<A.cols() <<"\n"; |
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solver.compute(A); |
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if (solver.info() != Success) { |
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std::cout<< "The solver failed \n"; |
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return -1; |
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} |
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timer.stop(); |
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float time_comp = timer.value(); |
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cout <<" Compute Time " << time_comp<< endl; |
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timer.reset(); |
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timer.start(); |
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x = solver.solve(b); |
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timer.stop(); |
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float time_solve = timer.value(); |
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cout<< " Time to solve " << time_solve << endl; |
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VectorXd tmp2 = b - A*x; |
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double tempNorm = tmp2.norm()/b.norm(); |
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cout << "Relative norm of the computed solution : " << tempNorm <<"\n"; |
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totaltime.stop(); |
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cout << "Total time " << totaltime.value() << "\n"; |
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return 0; |
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} |