544 lines
16 KiB
C++
544 lines
16 KiB
C++
/* -*- C++ -*- ------------------------------------------------------------
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Copyright (c) 2007 Jesse Anders and Demian Nave http://cmldev.net/
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The Configurable Math Library (CML) is distributed under the terms of the
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Boost Software License, v1.0 (see cml/LICENSE for details).
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*-----------------------------------------------------------------------*/
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/** @file
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* @brief
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*/
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#ifndef external_matrix_h
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#define external_matrix_h
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#include <cml/core/external_2D.h>
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#include <cml/matrix/matrix_expr.h>
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#include <cml/matrix/class_ops.h>
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#include <cml/matrix/matrix_unroller.h>
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#include <cml/matrix/dynamic.h>
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namespace cml {
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/** Fixed-size, external-memory matrix. */
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template<typename Element, int Rows, int Cols,
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typename BasisOrient, typename Layout>
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class matrix<Element,external<Rows,Cols>,BasisOrient,Layout>
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: public external_2D<Element,Rows,Cols,Layout>
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{
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public:
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/* Shorthand for the generator: */
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typedef external<Rows,Cols> generator_type;
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/* Shorthand for the array type: */
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typedef external_2D<Element,Rows,Cols,Layout> array_type;
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/* Shorthand for the type of this matrix: */
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typedef matrix<Element,generator_type,BasisOrient,Layout> matrix_type;
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/* For integration into the expression template code: */
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typedef matrix_type expr_type;
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/* For integration into the expression template code: */
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typedef matrix<Element,fixed<Rows,Cols>,BasisOrient,Layout> temporary_type;
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/* Note: this ensures that an external matrix is copied into the proper
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* temporary; external<> temporaries are not allowed.
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*/
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/* Standard: */
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typedef typename array_type::value_type value_type;
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typedef typename array_type::reference reference;
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typedef typename array_type::const_reference const_reference;
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typedef matrix_type& expr_reference;
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typedef const matrix_type& expr_const_reference;
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/* For matching by basis: */
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typedef BasisOrient basis_orient;
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/* For matching by memory layout: */
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typedef typename array_type::layout layout;
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/* For matching by storage type if necessary: */
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typedef typename array_type::memory_tag memory_tag;
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/* For matching by size type if necessary: */
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typedef typename array_type::size_tag size_tag;
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/* For matching by resizability: */
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typedef typename array_type::resizing_tag resizing_tag;
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/* For matching by result-type: */
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typedef cml::et::matrix_result_tag result_tag;
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/* For matching by assignability: */
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typedef cml::et::assignable_tag assignable_tag;
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/* To simplify the matrix transpose operator: */
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typedef matrix<
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typename cml::remove_const<Element>::type,
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typename array_type::transposed_type::generator_type,
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BasisOrient,
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Layout
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> transposed_type;
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/* To simplify the matrix row and column operators: */
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typedef vector<
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Element,
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typename array_type::row_array_type::generator_type
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> row_vector_type;
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typedef vector<
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Element,
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typename array_type::col_array_type::generator_type
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> col_vector_type;
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public:
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/** Set this matrix to zero. */
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matrix_type& zero() {
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typedef cml::et::OpAssign<Element,Element> OpT;
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cml::et::UnrollAssignment<OpT>(*this,Element(0));
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return *this;
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}
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/** Set this matrix to the identity.
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*
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* This only makes sense for a square matrix, but no error will be
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* signaled if the matrix is not square.
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*/
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matrix_type& identity() {
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for(size_t i = 0; i < this->rows(); ++ i) {
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for(size_t j = 0; j < this->cols(); ++ j) {
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(*this)(i,j) = value_type((i == j)?1:0);
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}
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}
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return *this;
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}
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/** Set this matrix to its transpose.
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*
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* This only makes sense for a square matrix, but no error will be
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* signaled if the matrix is not square.
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*/
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matrix_type& transpose() {
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/* transpose() returns a temporary: */
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*this = transpose(*this);
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return *this;
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}
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/** Set this matrix to its inverse.
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*
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* This only makes sense for a square matrix, but no error will be
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* signaled if the matrix is not square.
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*/
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matrix_type& inverse() {
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/* inverse() returns a temporary: */
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*this = cml::inverse(*this);
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return *this;
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}
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/* NOTE: minimize() and maximize() no longer supported (Jesse) */
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#if 0
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/** Pairwise minimum of this matrix with another. */
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template<typename E, class AT, typename L>
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void minimize(const matrix<E,AT,basis_orient,L>& v) {
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/* XXX This should probably use ScalarPromote: */
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for (size_t i = 0; i < this->rows(); ++i) {
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for (size_t j = 0; j < this->cols(); ++j) {
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(*this)(i,j) = std::min((*this)(i,j),v(i,j));
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}
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}
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}
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/** Pairwise maximum of this matrix with another. */
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template<typename E, class AT, typename L>
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void maximize(const matrix<E,AT,basis_orient,L>& v) {
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/* XXX This should probably use ScalarPromote: */
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for (size_t i = 0; i < this->rows(); ++i) {
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for (size_t j = 0; j < this->cols(); ++j) {
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(*this)(i,j) = std::max((*this)(i,j),v(i,j));
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}
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}
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}
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#endif
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/* Set each element to a random number in the range [min,max] */
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void random(ELEMENT_ARG_TYPE min, ELEMENT_ARG_TYPE max) {
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for(size_t i = 0; i < this->rows(); ++i) {
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for(size_t j = 0; j < this->cols(); ++j) {
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(*this)(i,j) = random_real(min,max);
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}
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}
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}
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public:
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/** Constructor for fixed-size external matrices.
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*
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* The array must be given as a pointer to Element*, not a
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* multi-dimensional array. The caller owns the pointer, and is
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* responsible for doing any necessary memory management.
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*
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* @param ptr specify the external pointer.
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*
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* @throws same as the ArrayType constructor.
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*/
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explicit matrix(value_type ptr[Rows][Cols]) : array_type(ptr) {}
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/** Constructor for fixed-size external matrices.
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*
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* The array must be given as a pointer to Element*, not a
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* multi-dimensional array. The caller owns the pointer, and is
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* responsible for doing any necessary memory management.
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*
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* @param ptr specify the external pointer.
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*
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* @throws same as the ArrayType constructor.
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*/
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explicit matrix(value_type* ptr) : array_type(ptr) {}
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public:
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/** Return the matrix size as a pair. */
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matrix_size size() const {
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return matrix_size(this->rows(),this->cols());
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}
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/** Return element j of basis vector i. */
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value_type basis_element(size_t i, size_t j) const {
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return basis_element(i,j,basis_orient());
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}
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/** Set the given basis element. */
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void set_basis_element(size_t i, size_t j, ELEMENT_ARG_TYPE s) {
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set_basis_element(i,j,s,basis_orient());
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}
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/** Set the matrix row from the given vector. */
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void set_row(size_t i, const row_vector_type& row) {
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for(size_t j = 0; j < this->cols(); ++ j) (*this)(i,j) = row[j];
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}
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/** Set the matrix column from the given vector. */
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void set_col(size_t j, const col_vector_type& col) {
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for(size_t i = 0; i < this->rows(); ++ i) (*this)(i,j) = col[i];
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}
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public:
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CML_ASSIGN_MAT_22
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CML_ASSIGN_MAT_33
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CML_ASSIGN_MAT_44
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/* Define class operators for external matrices. Note: external matrices
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* cannot be copy-constructed, but they can be assigned to:
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*/
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CML_MAT_ASSIGN_FROM_MATTYPE
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CML_MAT_ASSIGN_FROM_MAT(=, et::OpAssign)
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CML_MAT_ASSIGN_FROM_MAT(+=, et::OpAddAssign)
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CML_MAT_ASSIGN_FROM_MAT(-=, et::OpSubAssign)
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CML_MAT_ASSIGN_FROM_MATXPR(=, et::OpAssign)
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CML_MAT_ASSIGN_FROM_MATXPR(+=, et::OpAddAssign)
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CML_MAT_ASSIGN_FROM_MATXPR(-=, et::OpSubAssign)
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CML_MAT_ASSIGN_FROM_SCALAR(*=, et::OpMulAssign)
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CML_MAT_ASSIGN_FROM_SCALAR(/=, et::OpDivAssign)
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CML_ACCUMULATED_MATRIX_MULT(const matrix_type&)
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template<typename E, class AT, typename BO, typename L>
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CML_ACCUMULATED_MATRIX_MULT(const TEMPLATED_MATRIX_MACRO&)
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template<class XprT>
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CML_ACCUMULATED_MATRIX_MULT(MATXPR_ARG_TYPE)
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protected:
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value_type basis_element(size_t i, size_t j, row_basis) const {
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return (*this)(i,j);
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}
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value_type basis_element(size_t i, size_t j, col_basis) const {
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return (*this)(j,i);
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}
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void set_basis_element(size_t i, size_t j, ELEMENT_ARG_TYPE s, row_basis) {
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(*this)(i,j) = s;
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}
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void set_basis_element(size_t i, size_t j, ELEMENT_ARG_TYPE s, col_basis) {
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(*this)(j,i) = s;
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}
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public:
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/* Braces should only be used for testing: */
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#if defined(CML_ENABLE_MATRIX_BRACES)
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CML_MATRIX_BRACE_OPERATORS
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#endif
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};
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/** Dynamic-size, external-memory matrix. */
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template<typename Element, typename BasisOrient, typename Layout>
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class matrix<Element,external<-1,-1>,BasisOrient,Layout>
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: public external_2D<Element,-1,-1,Layout>
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{
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public:
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/* Shorthand for the generator: */
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typedef external<> generator_type;
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/* Shorthand for the array type: */
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typedef external_2D<Element,-1,-1,Layout> array_type;
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/* Shorthand for the type of this matrix: */
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typedef matrix<Element,generator_type,BasisOrient,Layout> matrix_type;
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/* For integration into the expression template code: */
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typedef matrix_type expr_type;
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/* For integration into the expression template code: */
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typedef matrix<Element,dynamic<>,BasisOrient,Layout> temporary_type;
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/* Note: this ensures that an external matrix is copied into the proper
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* temporary; external<> temporaries are not allowed.
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*/
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/* Standard: */
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typedef typename array_type::value_type value_type;
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typedef typename array_type::reference reference;
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typedef typename array_type::const_reference const_reference;
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typedef matrix_type& expr_reference;
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typedef const matrix_type& expr_const_reference;
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/* For matching by basis: */
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typedef BasisOrient basis_orient;
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/* For matching by memory layout: */
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typedef typename array_type::layout layout;
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/* For matching by storage type if necessary: */
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typedef typename array_type::memory_tag memory_tag;
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/* For matching by size type if necessary: */
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typedef typename array_type::size_tag size_tag;
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/* For matching by resizability: */
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typedef typename array_type::resizing_tag resizing_tag;
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/* For matching by result-type: */
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typedef cml::et::matrix_result_tag result_tag;
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/* For matching by assignability: */
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typedef cml::et::assignable_tag assignable_tag;
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/* To simplify the matrix transpose operator: */
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typedef matrix<
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Element,
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typename array_type::transposed_type::generator_type,
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BasisOrient,
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Layout
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> transposed_type;
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/* To simplify the matrix row and column operators: */
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typedef vector<
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Element,
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typename array_type::row_array_type::generator_type
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> row_vector_type;
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typedef vector<
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Element,
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typename array_type::col_array_type::generator_type
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> col_vector_type;
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public:
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/** Set this matrix to zero. */
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matrix_type& zero() {
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typedef cml::et::OpAssign<Element,Element> OpT;
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cml::et::UnrollAssignment<OpT>(*this,Element(0));
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return *this;
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}
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/** Set this matrix to the identity.
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*
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* This only makes sense for a square matrix, but no error will be
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* signaled if the matrix is not square.
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*/
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matrix_type& identity() {
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for(size_t i = 0; i < this->rows(); ++ i) {
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for(size_t j = 0; j < this->cols(); ++ j) {
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(*this)(i,j) = value_type((i == j)?1:0);
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}
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}
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return *this;
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}
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/** Set this matrix to its transpose.
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*
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* This only makes sense for a square matrix, but no error will be
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* signaled if the matrix is not square.
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*/
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matrix_type& transpose() {
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/* transpose() returns a temporary: */
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*this = cml::transpose(*this);
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return *this;
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}
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/** Set this matrix to its inverse.
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*
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* This only makes sense for a square matrix, but no error will be
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* signaled if the matrix is not square.
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*/
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matrix_type& inverse() {
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/* inverse() returns a temporary: */
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*this = inverse(*this);
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return *this;
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}
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/** Pairwise minimum of this matrix with another. */
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template<typename E, class AT, typename L>
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void minimize(const matrix<E,AT,basis_orient,L>& v) {
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/* XXX This should probably use ScalarPromote: */
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for (size_t i = 0; i < this->rows(); ++i) {
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for (size_t j = 0; j < this->cols(); ++j) {
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(*this)[i] = std::min((*this)(i,j),v(i,j));
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}
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}
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}
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/** Pairwise maximum of this matrix with another. */
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template<typename E, class AT, class BO, typename L>
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void maximize(const matrix<E,AT,basis_orient,L>& v) {
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/* XXX This should probably use ScalarPromote: */
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for (size_t i = 0; i < this->rows(); ++i) {
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for (size_t j = 0; j < this->cols(); ++j) {
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(*this)[i] = std::max((*this)(i,j),v(i,j));
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}
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}
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}
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/* Set each element to a random number in the range [min,max] */
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void random(ELEMENT_ARG_TYPE min, ELEMENT_ARG_TYPE max) {
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for(size_t i = 0; i < this->rows(); ++i) {
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for(size_t j = 0; j < this->cols(); ++j) {
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(*this)(i,j) = cml::random_real(min,max);
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}
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}
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}
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public:
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/** Constructor for fixed-size external matrices.
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*
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* The array must be given as a pointer to Element*, not a
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* multi-dimensional array. The caller owns the pointer, and is
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* responsible for doing any necessary memory management.
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*
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* @param ptr specify the external pointer.
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* @param rows the number of rows in the C array.
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* @param cols the number of columns in the C array.
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*
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* @throws same as the ArrayType constructor.
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*/
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explicit matrix(value_type* const ptr, size_t rows, size_t cols)
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: array_type(ptr,rows,cols) {}
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public:
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/** Return the matrix size as a pair. */
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matrix_size size() const {
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return matrix_size(this->rows(),this->cols());
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}
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/** Return element j of basis vector i. */
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value_type basis_element(size_t i, size_t j) const {
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return basis_element(i,j,basis_orient());
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}
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/** Set the given basis element. */
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void set_basis_element(size_t i, size_t j, ELEMENT_ARG_TYPE s) {
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set_basis_element(i,j,s,basis_orient());
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}
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public:
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CML_ASSIGN_MAT_22
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CML_ASSIGN_MAT_33
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CML_ASSIGN_MAT_44
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/* Define class operators for external matrices. Note: external matrices
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* cannot be copy-constructed, but they can be assigned to:
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*/
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CML_MAT_ASSIGN_FROM_MATTYPE
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CML_MAT_ASSIGN_FROM_MAT(=, et::OpAssign)
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CML_MAT_ASSIGN_FROM_MAT(+=, et::OpAddAssign)
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CML_MAT_ASSIGN_FROM_MAT(-=, et::OpSubAssign)
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CML_MAT_ASSIGN_FROM_MATXPR(=, et::OpAssign)
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CML_MAT_ASSIGN_FROM_MATXPR(+=, et::OpAddAssign)
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CML_MAT_ASSIGN_FROM_MATXPR(-=, et::OpSubAssign)
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CML_MAT_ASSIGN_FROM_SCALAR(*=, et::OpMulAssign)
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CML_MAT_ASSIGN_FROM_SCALAR(/=, et::OpDivAssign)
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CML_ACCUMULATED_MATRIX_MULT(const matrix_type&)
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template<typename E, class AT, typename BO, typename L>
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CML_ACCUMULATED_MATRIX_MULT(const TEMPLATED_MATRIX_MACRO&)
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template<class XprT>
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CML_ACCUMULATED_MATRIX_MULT(MATXPR_ARG_TYPE)
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protected:
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value_type basis_element(size_t i, size_t j, row_basis) const {
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return (*this)(i,j);
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}
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value_type basis_element(size_t i, size_t j, col_basis) const {
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return (*this)(j,i);
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}
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void set_basis_element(size_t i, size_t j, ELEMENT_ARG_TYPE s, row_basis) {
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(*this)(i,j) = s;
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}
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void set_basis_element(size_t i, size_t j, ELEMENT_ARG_TYPE s, col_basis) {
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(*this)(j,i) = s;
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}
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public:
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/* Braces should only be used for testing: */
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#if defined(CML_ENABLE_MATRIX_BRACES)
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CML_MATRIX_BRACE_OPERATORS
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#endif
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};
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} // namespace cml
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#endif
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// -------------------------------------------------------------------------
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// vim:ft=cpp
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