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| | #ifndef EIGEN_PARTIALLU_H |
| | #define EIGEN_PARTIALLU_H |
| |
|
| | namespace Eigen { |
| |
|
| | namespace internal { |
| | template<typename _MatrixType> struct traits<PartialPivLU<_MatrixType> > |
| | : traits<_MatrixType> |
| | { |
| | typedef MatrixXpr XprKind; |
| | typedef SolverStorage StorageKind; |
| | typedef int StorageIndex; |
| | typedef traits<_MatrixType> BaseTraits; |
| | enum { |
| | Flags = BaseTraits::Flags & RowMajorBit, |
| | CoeffReadCost = Dynamic |
| | }; |
| | }; |
| |
|
| | template<typename T,typename Derived> |
| | struct enable_if_ref; |
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|
| | template<typename T,typename Derived> |
| | struct enable_if_ref<Ref<T>,Derived> { |
| | typedef Derived type; |
| | }; |
| |
|
| | } |
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| | |
| | template<typename _MatrixType> class PartialPivLU |
| | : public SolverBase<PartialPivLU<_MatrixType> > |
| | { |
| | public: |
| |
|
| | typedef _MatrixType MatrixType; |
| | typedef SolverBase<PartialPivLU> Base; |
| | friend class SolverBase<PartialPivLU>; |
| |
|
| | EIGEN_GENERIC_PUBLIC_INTERFACE(PartialPivLU) |
| | enum { |
| | MaxRowsAtCompileTime = MatrixType::MaxRowsAtCompileTime, |
| | MaxColsAtCompileTime = MatrixType::MaxColsAtCompileTime |
| | }; |
| | typedef PermutationMatrix<RowsAtCompileTime, MaxRowsAtCompileTime> PermutationType; |
| | typedef Transpositions<RowsAtCompileTime, MaxRowsAtCompileTime> TranspositionType; |
| | typedef typename MatrixType::PlainObject PlainObject; |
| |
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| | |
| | PartialPivLU(); |
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| | |
| | explicit PartialPivLU(Index size); |
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| | |
| | template<typename InputType> |
| | explicit PartialPivLU(const EigenBase<InputType>& matrix); |
| |
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| | |
| | template<typename InputType> |
| | explicit PartialPivLU(EigenBase<InputType>& matrix); |
| |
|
| | template<typename InputType> |
| | PartialPivLU& compute(const EigenBase<InputType>& matrix) { |
| | m_lu = matrix.derived(); |
| | compute(); |
| | return *this; |
| | } |
| |
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| | |
| | inline const MatrixType& matrixLU() const |
| | { |
| | eigen_assert(m_isInitialized && "PartialPivLU is not initialized."); |
| | return m_lu; |
| | } |
| |
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| | |
| | |
| | inline const PermutationType& permutationP() const |
| | { |
| | eigen_assert(m_isInitialized && "PartialPivLU is not initialized."); |
| | return m_p; |
| | } |
| |
|
| | #ifdef EIGEN_PARSED_BY_DOXYGEN |
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| | |
| | template<typename Rhs> |
| | inline const Solve<PartialPivLU, Rhs> |
| | solve(const MatrixBase<Rhs>& b) const; |
| | #endif |
| |
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| | |
| | inline RealScalar rcond() const |
| | { |
| | eigen_assert(m_isInitialized && "PartialPivLU is not initialized."); |
| | return internal::rcond_estimate_helper(m_l1_norm, *this); |
| | } |
| |
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| | |
| | inline const Inverse<PartialPivLU> inverse() const |
| | { |
| | eigen_assert(m_isInitialized && "PartialPivLU is not initialized."); |
| | return Inverse<PartialPivLU>(*this); |
| | } |
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| | Scalar determinant() const; |
| |
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| | MatrixType reconstructedMatrix() const; |
| |
|
| | EIGEN_CONSTEXPR inline Index rows() const EIGEN_NOEXCEPT { return m_lu.rows(); } |
| | EIGEN_CONSTEXPR inline Index cols() const EIGEN_NOEXCEPT { return m_lu.cols(); } |
| |
|
| | #ifndef EIGEN_PARSED_BY_DOXYGEN |
| | template<typename RhsType, typename DstType> |
| | EIGEN_DEVICE_FUNC |
| | void _solve_impl(const RhsType &rhs, DstType &dst) const { |
| | |
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| | |
| | dst = permutationP() * rhs; |
| |
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| | |
| | m_lu.template triangularView<UnitLower>().solveInPlace(dst); |
| |
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| | |
| | m_lu.template triangularView<Upper>().solveInPlace(dst); |
| | } |
| |
|
| | template<bool Conjugate, typename RhsType, typename DstType> |
| | EIGEN_DEVICE_FUNC |
| | void _solve_impl_transposed(const RhsType &rhs, DstType &dst) const { |
| | |
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| | eigen_assert(rhs.rows() == m_lu.cols()); |
| |
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| | |
| | dst = m_lu.template triangularView<Upper>().transpose() |
| | .template conjugateIf<Conjugate>().solve(rhs); |
| | |
| | m_lu.template triangularView<UnitLower>().transpose() |
| | .template conjugateIf<Conjugate>().solveInPlace(dst); |
| | |
| | dst = permutationP().transpose() * dst; |
| | } |
| | #endif |
| |
|
| | protected: |
| |
|
| | static void check_template_parameters() |
| | { |
| | EIGEN_STATIC_ASSERT_NON_INTEGER(Scalar); |
| | } |
| |
|
| | void compute(); |
| |
|
| | MatrixType m_lu; |
| | PermutationType m_p; |
| | TranspositionType m_rowsTranspositions; |
| | RealScalar m_l1_norm; |
| | signed char m_det_p; |
| | bool m_isInitialized; |
| | }; |
| |
|
| | template<typename MatrixType> |
| | PartialPivLU<MatrixType>::PartialPivLU() |
| | : m_lu(), |
| | m_p(), |
| | m_rowsTranspositions(), |
| | m_l1_norm(0), |
| | m_det_p(0), |
| | m_isInitialized(false) |
| | { |
| | } |
| |
|
| | template<typename MatrixType> |
| | PartialPivLU<MatrixType>::PartialPivLU(Index size) |
| | : m_lu(size, size), |
| | m_p(size), |
| | m_rowsTranspositions(size), |
| | m_l1_norm(0), |
| | m_det_p(0), |
| | m_isInitialized(false) |
| | { |
| | } |
| |
|
| | template<typename MatrixType> |
| | template<typename InputType> |
| | PartialPivLU<MatrixType>::PartialPivLU(const EigenBase<InputType>& matrix) |
| | : m_lu(matrix.rows(),matrix.cols()), |
| | m_p(matrix.rows()), |
| | m_rowsTranspositions(matrix.rows()), |
| | m_l1_norm(0), |
| | m_det_p(0), |
| | m_isInitialized(false) |
| | { |
| | compute(matrix.derived()); |
| | } |
| |
|
| | template<typename MatrixType> |
| | template<typename InputType> |
| | PartialPivLU<MatrixType>::PartialPivLU(EigenBase<InputType>& matrix) |
| | : m_lu(matrix.derived()), |
| | m_p(matrix.rows()), |
| | m_rowsTranspositions(matrix.rows()), |
| | m_l1_norm(0), |
| | m_det_p(0), |
| | m_isInitialized(false) |
| | { |
| | compute(); |
| | } |
| |
|
| | namespace internal { |
| |
|
| | |
| | template<typename Scalar, int StorageOrder, typename PivIndex, int SizeAtCompileTime=Dynamic> |
| | struct partial_lu_impl |
| | { |
| | static const int UnBlockedBound = 16; |
| | static const bool UnBlockedAtCompileTime = SizeAtCompileTime!=Dynamic && SizeAtCompileTime<=UnBlockedBound; |
| | static const int ActualSizeAtCompileTime = UnBlockedAtCompileTime ? SizeAtCompileTime : Dynamic; |
| | |
| | static const int RRows = SizeAtCompileTime==2 ? 1 : Dynamic; |
| | static const int RCols = SizeAtCompileTime==2 ? 1 : Dynamic; |
| | typedef Matrix<Scalar, ActualSizeAtCompileTime, ActualSizeAtCompileTime, StorageOrder> MatrixType; |
| | typedef Ref<MatrixType> MatrixTypeRef; |
| | typedef Ref<Matrix<Scalar, Dynamic, Dynamic, StorageOrder> > BlockType; |
| | typedef typename MatrixType::RealScalar RealScalar; |
| |
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| | |
| | static Index unblocked_lu(MatrixTypeRef& lu, PivIndex* row_transpositions, PivIndex& nb_transpositions) |
| | { |
| | typedef scalar_score_coeff_op<Scalar> Scoring; |
| | typedef typename Scoring::result_type Score; |
| | const Index rows = lu.rows(); |
| | const Index cols = lu.cols(); |
| | const Index size = (std::min)(rows,cols); |
| | |
| | |
| | const Index endk = UnBlockedAtCompileTime ? size-1 : size; |
| | nb_transpositions = 0; |
| | Index first_zero_pivot = -1; |
| | for(Index k = 0; k < endk; ++k) |
| | { |
| | int rrows = internal::convert_index<int>(rows-k-1); |
| | int rcols = internal::convert_index<int>(cols-k-1); |
| |
|
| | Index row_of_biggest_in_col; |
| | Score biggest_in_corner |
| | = lu.col(k).tail(rows-k).unaryExpr(Scoring()).maxCoeff(&row_of_biggest_in_col); |
| | row_of_biggest_in_col += k; |
| |
|
| | row_transpositions[k] = PivIndex(row_of_biggest_in_col); |
| |
|
| | if(biggest_in_corner != Score(0)) |
| | { |
| | if(k != row_of_biggest_in_col) |
| | { |
| | lu.row(k).swap(lu.row(row_of_biggest_in_col)); |
| | ++nb_transpositions; |
| | } |
| |
|
| | lu.col(k).tail(fix<RRows>(rrows)) /= lu.coeff(k,k); |
| | } |
| | else if(first_zero_pivot==-1) |
| | { |
| | |
| | |
| | first_zero_pivot = k; |
| | } |
| |
|
| | if(k<rows-1) |
| | lu.bottomRightCorner(fix<RRows>(rrows),fix<RCols>(rcols)).noalias() -= lu.col(k).tail(fix<RRows>(rrows)) * lu.row(k).tail(fix<RCols>(rcols)); |
| | } |
| |
|
| | |
| | if(UnBlockedAtCompileTime) |
| | { |
| | Index k = endk; |
| | row_transpositions[k] = PivIndex(k); |
| | if (Scoring()(lu(k, k)) == Score(0) && first_zero_pivot == -1) |
| | first_zero_pivot = k; |
| | } |
| |
|
| | return first_zero_pivot; |
| | } |
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| | static Index blocked_lu(Index rows, Index cols, Scalar* lu_data, Index luStride, PivIndex* row_transpositions, PivIndex& nb_transpositions, Index maxBlockSize=256) |
| | { |
| | MatrixTypeRef lu = MatrixType::Map(lu_data,rows, cols, OuterStride<>(luStride)); |
| |
|
| | const Index size = (std::min)(rows,cols); |
| |
|
| | |
| | if(UnBlockedAtCompileTime || size<=UnBlockedBound) |
| | { |
| | return unblocked_lu(lu, row_transpositions, nb_transpositions); |
| | } |
| |
|
| | |
| | |
| | Index blockSize; |
| | { |
| | blockSize = size/8; |
| | blockSize = (blockSize/16)*16; |
| | blockSize = (std::min)((std::max)(blockSize,Index(8)), maxBlockSize); |
| | } |
| |
|
| | nb_transpositions = 0; |
| | Index first_zero_pivot = -1; |
| | for(Index k = 0; k < size; k+=blockSize) |
| | { |
| | Index bs = (std::min)(size-k,blockSize); |
| | Index trows = rows - k - bs; |
| | Index tsize = size - k - bs; |
| |
|
| | |
| | |
| | |
| | |
| | BlockType A_0 = lu.block(0,0,rows,k); |
| | BlockType A_2 = lu.block(0,k+bs,rows,tsize); |
| | BlockType A11 = lu.block(k,k,bs,bs); |
| | BlockType A12 = lu.block(k,k+bs,bs,tsize); |
| | BlockType A21 = lu.block(k+bs,k,trows,bs); |
| | BlockType A22 = lu.block(k+bs,k+bs,trows,tsize); |
| |
|
| | PivIndex nb_transpositions_in_panel; |
| | |
| | |
| | Index ret = blocked_lu(trows+bs, bs, &lu.coeffRef(k,k), luStride, |
| | row_transpositions+k, nb_transpositions_in_panel, 16); |
| | if(ret>=0 && first_zero_pivot==-1) |
| | first_zero_pivot = k+ret; |
| |
|
| | nb_transpositions += nb_transpositions_in_panel; |
| | |
| | for(Index i=k; i<k+bs; ++i) |
| | { |
| | Index piv = (row_transpositions[i] += internal::convert_index<PivIndex>(k)); |
| | A_0.row(i).swap(A_0.row(piv)); |
| | } |
| |
|
| | if(trows) |
| | { |
| | |
| | for(Index i=k;i<k+bs; ++i) |
| | A_2.row(i).swap(A_2.row(row_transpositions[i])); |
| |
|
| | |
| | A11.template triangularView<UnitLower>().solveInPlace(A12); |
| |
|
| | A22.noalias() -= A21 * A12; |
| | } |
| | } |
| | return first_zero_pivot; |
| | } |
| | }; |
| |
|
| | |
| | |
| | template<typename MatrixType, typename TranspositionType> |
| | void partial_lu_inplace(MatrixType& lu, TranspositionType& row_transpositions, typename TranspositionType::StorageIndex& nb_transpositions) |
| | { |
| | |
| | if (lu.rows() == 0 || lu.cols() == 0) { |
| | nb_transpositions = 0; |
| | return; |
| | } |
| | eigen_assert(lu.cols() == row_transpositions.size()); |
| | eigen_assert(row_transpositions.size() < 2 || (&row_transpositions.coeffRef(1)-&row_transpositions.coeffRef(0)) == 1); |
| |
|
| | partial_lu_impl |
| | < typename MatrixType::Scalar, MatrixType::Flags&RowMajorBit?RowMajor:ColMajor, |
| | typename TranspositionType::StorageIndex, |
| | EIGEN_SIZE_MIN_PREFER_FIXED(MatrixType::RowsAtCompileTime,MatrixType::ColsAtCompileTime)> |
| | ::blocked_lu(lu.rows(), lu.cols(), &lu.coeffRef(0,0), lu.outerStride(), &row_transpositions.coeffRef(0), nb_transpositions); |
| | } |
| |
|
| | } |
| |
|
| | template<typename MatrixType> |
| | void PartialPivLU<MatrixType>::compute() |
| | { |
| | check_template_parameters(); |
| |
|
| | |
| | eigen_assert(m_lu.rows()<NumTraits<int>::highest()); |
| |
|
| | if(m_lu.cols()>0) |
| | m_l1_norm = m_lu.cwiseAbs().colwise().sum().maxCoeff(); |
| | else |
| | m_l1_norm = RealScalar(0); |
| |
|
| | eigen_assert(m_lu.rows() == m_lu.cols() && "PartialPivLU is only for square (and moreover invertible) matrices"); |
| | const Index size = m_lu.rows(); |
| |
|
| | m_rowsTranspositions.resize(size); |
| |
|
| | typename TranspositionType::StorageIndex nb_transpositions; |
| | internal::partial_lu_inplace(m_lu, m_rowsTranspositions, nb_transpositions); |
| | m_det_p = (nb_transpositions%2) ? -1 : 1; |
| |
|
| | m_p = m_rowsTranspositions; |
| |
|
| | m_isInitialized = true; |
| | } |
| |
|
| | template<typename MatrixType> |
| | typename PartialPivLU<MatrixType>::Scalar PartialPivLU<MatrixType>::determinant() const |
| | { |
| | eigen_assert(m_isInitialized && "PartialPivLU is not initialized."); |
| | return Scalar(m_det_p) * m_lu.diagonal().prod(); |
| | } |
| |
|
| | |
| | |
| | |
| | template<typename MatrixType> |
| | MatrixType PartialPivLU<MatrixType>::reconstructedMatrix() const |
| | { |
| | eigen_assert(m_isInitialized && "LU is not initialized."); |
| | |
| | MatrixType res = m_lu.template triangularView<UnitLower>().toDenseMatrix() |
| | * m_lu.template triangularView<Upper>(); |
| |
|
| | |
| | res = m_p.inverse() * res; |
| |
|
| | return res; |
| | } |
| |
|
| | |
| |
|
| | namespace internal { |
| |
|
| | |
| | template<typename DstXprType, typename MatrixType> |
| | struct Assignment<DstXprType, Inverse<PartialPivLU<MatrixType> >, internal::assign_op<typename DstXprType::Scalar,typename PartialPivLU<MatrixType>::Scalar>, Dense2Dense> |
| | { |
| | typedef PartialPivLU<MatrixType> LuType; |
| | typedef Inverse<LuType> SrcXprType; |
| | static void run(DstXprType &dst, const SrcXprType &src, const internal::assign_op<typename DstXprType::Scalar,typename LuType::Scalar> &) |
| | { |
| | dst = src.nestedExpression().solve(MatrixType::Identity(src.rows(), src.cols())); |
| | } |
| | }; |
| | } |
| |
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| | |
| | |
| | template<typename Derived> |
| | inline const PartialPivLU<typename MatrixBase<Derived>::PlainObject> |
| | MatrixBase<Derived>::partialPivLu() const |
| | { |
| | return PartialPivLU<PlainObject>(eval()); |
| | } |
| |
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| | |
| | |
| | |
| | template<typename Derived> |
| | inline const PartialPivLU<typename MatrixBase<Derived>::PlainObject> |
| | MatrixBase<Derived>::lu() const |
| | { |
| | return PartialPivLU<PlainObject>(eval()); |
| | } |
| |
|
| | } |
| |
|
| | #endif |
| |
|