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201 lines
7.7 KiB
C++
201 lines
7.7 KiB
C++
// This file is part of Eigen, a lightweight C++ template library
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// for linear algebra.
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//
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// Copyright (C) 2006-2010 Benoit Jacob <jacob.benoit.1@gmail.com>
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//
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// This Source Code Form is subject to the terms of the Mozilla
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// Public License v. 2.0. If a copy of the MPL was not distributed
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// with this file, You can obtain one at http://mozilla.org/MPL/2.0/.
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#include "main.h"
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#define EIGEN_TESTMAP_MAX_SIZE 256
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template <typename VectorType>
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void map_class_vector(const VectorType& m) {
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typedef typename VectorType::Scalar Scalar;
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Index size = m.size();
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Scalar* array1 = internal::aligned_new<Scalar>(size);
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Scalar* array2 = internal::aligned_new<Scalar>(size);
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Scalar* array3 = new Scalar[size + 1];
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// In case of no alignment, avoid division by zero.
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constexpr int alignment = (std::max<int>)(EIGEN_MAX_ALIGN_BYTES, 1);
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Scalar* array3unaligned = (std::uintptr_t(array3) % alignment) == 0 ? array3 + 1 : array3;
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Scalar array4[EIGEN_TESTMAP_MAX_SIZE];
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Map<VectorType, AlignedMax>(array1, size) = VectorType::Random(size);
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Map<VectorType, AlignedMax>(array2, size) = Map<VectorType, AlignedMax>(array1, size);
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Map<VectorType>(array3unaligned, size) = Map<VectorType>(array1, size);
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Map<VectorType>(array4, size) = Map<VectorType, AlignedMax>(array1, size);
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VectorType ma1 = Map<VectorType, AlignedMax>(array1, size);
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VectorType ma2 = Map<VectorType, AlignedMax>(array2, size);
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VectorType ma3 = Map<VectorType>(array3unaligned, size);
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VectorType ma4 = Map<VectorType>(array4, size);
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VERIFY_IS_EQUAL(ma1, ma2);
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VERIFY_IS_EQUAL(ma1, ma3);
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VERIFY_IS_EQUAL(ma1, ma4);
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#ifdef EIGEN_VECTORIZE
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if (internal::packet_traits<Scalar>::Vectorizable && size >= AlignedMax)
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VERIFY_RAISES_ASSERT((Map<VectorType, AlignedMax>(array3unaligned, size)))
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#endif
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internal::aligned_delete(array1, size);
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internal::aligned_delete(array2, size);
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delete[] array3;
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}
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template <typename MatrixType>
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void map_class_matrix(const MatrixType& m) {
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typedef typename MatrixType::Scalar Scalar;
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Index rows = m.rows(), cols = m.cols(), size = rows * cols;
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Scalar s1 = internal::random<Scalar>();
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// array1 and array2 -> aligned heap allocation
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Scalar* array1 = internal::aligned_new<Scalar>(size);
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for (int i = 0; i < size; i++) array1[i] = Scalar(1);
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Scalar* array2 = internal::aligned_new<Scalar>(size);
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for (int i = 0; i < size; i++) array2[i] = Scalar(1);
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// array3unaligned -> unaligned pointer to heap
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Scalar* array3 = new Scalar[size + 1];
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Index sizep1 = size + 1; // <- without this temporary MSVC 2103 generates bad code
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for (Index i = 0; i < sizep1; i++) array3[i] = Scalar(1);
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// In case of no alignment, avoid division by zero.
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constexpr int alignment = (std::max<int>)(EIGEN_MAX_ALIGN_BYTES, 1);
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Scalar* array3unaligned = (std::uintptr_t(array3) % alignment) == 0 ? array3 + 1 : array3;
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Scalar array4[256];
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if (size <= 256)
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for (int i = 0; i < size; i++) array4[i] = Scalar(1);
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Map<MatrixType> map1(array1, rows, cols);
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Map<MatrixType, AlignedMax> map2(array2, rows, cols);
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Map<MatrixType> map3(array3unaligned, rows, cols);
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Map<MatrixType> map4(array4, rows, cols);
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VERIFY_IS_EQUAL(map1, MatrixType::Ones(rows, cols));
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map1.setConstant(s1);
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VERIFY_IS_EQUAL(map1, MatrixType::Constant(rows, cols, s1));
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map1.setZero();
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VERIFY_IS_EQUAL(map1, MatrixType::Zero(rows, cols));
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VERIFY_IS_EQUAL(map2, MatrixType::Ones(rows, cols));
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map2.setConstant(s1);
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VERIFY_IS_EQUAL(map2, MatrixType::Constant(rows, cols, s1));
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map2.setZero();
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VERIFY_IS_EQUAL(map2, MatrixType::Zero(rows, cols));
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VERIFY_IS_EQUAL(map3, MatrixType::Ones(rows, cols));
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map3.setConstant(s1);
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VERIFY_IS_EQUAL(map3, MatrixType::Constant(rows, cols, s1));
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map3.setZero();
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VERIFY_IS_EQUAL(map3, MatrixType::Zero(rows, cols));
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map1 = MatrixType::Random(rows, cols);
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map2 = map1;
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map3 = map1;
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MatrixType ma1 = map1;
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MatrixType ma2 = map2;
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MatrixType ma3 = map3;
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VERIFY_IS_EQUAL(map1, map2);
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VERIFY_IS_EQUAL(map1, map3);
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VERIFY_IS_EQUAL(ma1, ma2);
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VERIFY_IS_EQUAL(ma1, ma3);
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VERIFY_IS_EQUAL(ma1, map3);
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VERIFY_IS_APPROX(s1 * map1, s1 * map2);
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VERIFY_IS_APPROX(s1 * ma1, s1 * ma2);
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VERIFY_IS_EQUAL(s1 * ma1, s1 * ma3);
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VERIFY_IS_APPROX(s1 * map1, s1 * map3);
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map2 *= s1;
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map3 *= s1;
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VERIFY_IS_APPROX(s1 * map1, map2);
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VERIFY_IS_APPROX(s1 * map1, map3);
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if (size <= 256) {
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VERIFY_IS_EQUAL(map4, MatrixType::Ones(rows, cols));
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map4 = map1;
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MatrixType ma4 = map4;
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VERIFY_IS_EQUAL(map1, map4);
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VERIFY_IS_EQUAL(ma1, map4);
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VERIFY_IS_EQUAL(ma1, ma4);
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VERIFY_IS_APPROX(s1 * map1, s1 * map4);
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map4 *= s1;
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VERIFY_IS_APPROX(s1 * map1, map4);
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}
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internal::aligned_delete(array1, size);
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internal::aligned_delete(array2, size);
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delete[] array3;
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}
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template <typename VectorType>
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void map_static_methods(const VectorType& m) {
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typedef typename VectorType::Scalar Scalar;
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Index size = m.size();
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Scalar* array1 = internal::aligned_new<Scalar>(size);
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Scalar* array2 = internal::aligned_new<Scalar>(size);
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Scalar* array3 = new Scalar[size + 1];
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// In case of no alignment, avoid division by zero.
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constexpr int alignment = (std::max<int>)(EIGEN_MAX_ALIGN_BYTES, 1);
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Scalar* array3unaligned = (std::uintptr_t(array3) % alignment) == 0 ? array3 + 1 : array3;
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VectorType::MapAligned(array1, size) = VectorType::Random(size);
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VectorType::Map(array2, size) = VectorType::Map(array1, size);
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VectorType::Map(array3unaligned, size) = VectorType::Map(array1, size);
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VectorType ma1 = VectorType::Map(array1, size);
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VectorType ma2 = VectorType::MapAligned(array2, size);
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VectorType ma3 = VectorType::Map(array3unaligned, size);
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VERIFY_IS_EQUAL(ma1, ma2);
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VERIFY_IS_EQUAL(ma1, ma3);
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internal::aligned_delete(array1, size);
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internal::aligned_delete(array2, size);
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delete[] array3;
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}
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template <typename PlainObjectType>
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void check_const_correctness(const PlainObjectType&) {
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// there's a lot that we can't test here while still having this test compile!
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// the only possible approach would be to run a script trying to compile stuff and checking that it fails.
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// CMake can help with that.
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// verify that map-to-const don't have LvalueBit
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typedef std::add_const_t<PlainObjectType> ConstPlainObjectType;
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VERIFY(!(internal::traits<Map<ConstPlainObjectType> >::Flags & LvalueBit));
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VERIFY(!(internal::traits<Map<ConstPlainObjectType, AlignedMax> >::Flags & LvalueBit));
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VERIFY(!(Map<ConstPlainObjectType>::Flags & LvalueBit));
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VERIFY(!(Map<ConstPlainObjectType, AlignedMax>::Flags & LvalueBit));
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}
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EIGEN_DECLARE_TEST(mapped_matrix) {
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for (int i = 0; i < g_repeat; i++) {
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CALL_SUBTEST_1(map_class_vector(Matrix<float, 1, 1>()));
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CALL_SUBTEST_1(check_const_correctness(Matrix<float, 1, 1>()));
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CALL_SUBTEST_2(map_class_vector(Vector4d()));
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CALL_SUBTEST_2(map_class_vector(VectorXd(13)));
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CALL_SUBTEST_2(check_const_correctness(Matrix4d()));
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CALL_SUBTEST_3(map_class_vector(RowVector4f()));
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CALL_SUBTEST_4(map_class_vector(VectorXcf(8)));
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CALL_SUBTEST_5(map_class_vector(VectorXi(12)));
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CALL_SUBTEST_5(check_const_correctness(VectorXi(12)));
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CALL_SUBTEST_1(map_class_matrix(Matrix<float, 1, 1>()));
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CALL_SUBTEST_2(map_class_matrix(Matrix4d()));
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CALL_SUBTEST_11(map_class_matrix(Matrix<float, 3, 5>()));
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CALL_SUBTEST_4(map_class_matrix(MatrixXcf(internal::random<int>(1, 10), internal::random<int>(1, 10))));
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CALL_SUBTEST_5(map_class_matrix(MatrixXi(internal::random<int>(1, 10), internal::random<int>(1, 10))));
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CALL_SUBTEST_6(map_static_methods(Matrix<double, 1, 1>()));
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CALL_SUBTEST_7(map_static_methods(Vector3f()));
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CALL_SUBTEST_8(map_static_methods(RowVector3d()));
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CALL_SUBTEST_9(map_static_methods(VectorXcd(8)));
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CALL_SUBTEST_10(map_static_methods(VectorXf(12)));
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}
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}
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