| // This file is part of Eigen, a lightweight C++ template library |
| // for linear algebra. |
| // |
| // Copyright (C) 2009 Gael Guennebaud <gael.guennebaud@inria.fr> |
| // |
| // This Source Code Form is subject to the terms of the Mozilla |
| // Public License v. 2.0. If a copy of the MPL was not distributed |
| // with this file, You can obtain one at http://mozilla.org/MPL/2.0/. |
| // SPDX-License-Identifier: MPL-2.0 |
| |
| #include "main.h" |
| |
| template <typename MatrixType> |
| void replicate(const MatrixType& m) { |
| /* this test covers the following files: |
| Replicate.cpp |
| */ |
| typedef typename MatrixType::Scalar Scalar; |
| typedef Matrix<Scalar, MatrixType::RowsAtCompileTime, 1> VectorType; |
| typedef Matrix<Scalar, Dynamic, Dynamic> MatrixX; |
| typedef Matrix<Scalar, Dynamic, 1> VectorX; |
| |
| Index rows = m.rows(); |
| Index cols = m.cols(); |
| |
| MatrixType m1 = MatrixType::Random(rows, cols), m2 = MatrixType::Random(rows, cols); |
| |
| VectorType v1 = VectorType::Random(rows); |
| |
| MatrixX x1, x2; |
| VectorX vx1; |
| |
| int f1 = internal::random<int>(1, 10), f2 = internal::random<int>(1, 10); |
| |
| x1.resize(rows * f1, cols * f2); |
| for (int j = 0; j < f2; j++) |
| for (int i = 0; i < f1; i++) x1.block(i * rows, j * cols, rows, cols) = m1; |
| VERIFY_IS_APPROX(x1, m1.replicate(f1, f2)); |
| |
| x2.resize(2 * rows, 3 * cols); |
| x2 << m2, m2, m2, m2, m2, m2; |
| VERIFY_IS_APPROX(x2, (m2.template replicate<2, 3>())); |
| |
| x2.resize(rows, 3 * cols); |
| x2 << m2, m2, m2; |
| VERIFY_IS_APPROX(x2, (m2.template replicate<1, 3>())); |
| |
| vx1.resize(3 * rows, cols); |
| vx1 << m2, m2, m2; |
| VERIFY_IS_APPROX(vx1 + vx1, vx1 + (m2.template replicate<3, 1>())); |
| |
| vx1 = m2 + (m2.colwise().replicate(1)); |
| |
| if (m2.cols() == 1) VERIFY_IS_APPROX(m2.coeff(0), (m2.template replicate<3, 1>().coeff(m2.rows()))); |
| |
| x2.resize(rows, f1); |
| for (int j = 0; j < f1; ++j) x2.col(j) = v1; |
| VERIFY_IS_APPROX(x2, v1.rowwise().replicate(f1)); |
| |
| vx1.resize(rows * f2); |
| for (int j = 0; j < f2; ++j) vx1.segment(j * rows, rows) = v1; |
| VERIFY_IS_APPROX(vx1, v1.colwise().replicate(f2)); |
| } |
| |
| // A Replicate packet cannot cross a replication boundary, so the evaluator may serve packets |
| // exactly when the inner (storage-order) direction is not replicated; without the flag, colwise |
| // and rowwise broadcast operations silently fall back to scalar traversal. |
| template <typename Scalar> |
| void check_replicate_evaluator_flags() { |
| // Storage orders are pinned so the checks keep their meaning under EIGEN_DEFAULT_TO_ROW_MAJOR. |
| typedef Matrix<Scalar, Dynamic, Dynamic, ColMajor> Mat; |
| typedef Matrix<Scalar, Dynamic, Dynamic, RowMajor> RowMat; |
| typedef Matrix<Scalar, Dynamic, 1> Vec; |
| typedef Matrix<Scalar, 1, Dynamic> RowVec; |
| enum { BasePacket = int(internal::evaluator<Mat>::Flags) & PacketAccessBit }; |
| |
| // Inner direction not replicated: packets serve from a single copy of the argument. The first |
| // two are the shapes colwise (col-major) and rowwise (row-major) operations expand to. |
| STATIC_CHECK((int(internal::evaluator<Replicate<Vec, 1, Dynamic> >::Flags) & PacketAccessBit) == int(BasePacket)); |
| STATIC_CHECK((int(internal::evaluator<Replicate<RowVec, Dynamic, 1> >::Flags) & PacketAccessBit) == int(BasePacket)); |
| STATIC_CHECK((int(internal::evaluator<Replicate<Mat, 1, 3> >::Flags) & PacketAccessBit) == int(BasePacket)); |
| STATIC_CHECK((int(internal::evaluator<Replicate<RowMat, 3, 1> >::Flags) & PacketAccessBit) == int(BasePacket)); |
| STATIC_CHECK(int(internal::evaluator<Replicate<Vec, 1, Dynamic> >::Alignment) == |
| int(internal::evaluator<Vec>::Alignment)); |
| |
| // Replicated inner direction (or factors unknown at compile time): a packet could cross a copy |
| // boundary, so there is no packet access. |
| STATIC_CHECK((int(internal::evaluator<Replicate<Mat, 3, 1> >::Flags) & PacketAccessBit) == 0); |
| STATIC_CHECK((int(internal::evaluator<Replicate<Vec, Dynamic, 1> >::Flags) & PacketAccessBit) == 0); |
| STATIC_CHECK((int(internal::evaluator<Replicate<Mat, Dynamic, Dynamic> >::Flags) & PacketAccessBit) == 0); |
| } |
| |
| // Exercise the (possibly vectorized) broadcast kernels with sizes that have partial-packet tails. |
| template <typename Scalar> |
| void replicate_broadcasts(Index rows, Index cols) { |
| typedef Matrix<Scalar, Dynamic, Dynamic> Mat; |
| typedef Matrix<Scalar, Dynamic, 1> Vec; |
| typedef Matrix<Scalar, 1, Dynamic> RowVec; |
| |
| Mat m = Mat::Random(rows, cols); |
| Vec v = Vec::Random(rows); |
| RowVec rv = RowVec::Random(cols); |
| |
| Mat c = m; |
| c.colwise() += v; |
| for (Index j = 0; j < cols; ++j) |
| for (Index i = 0; i < rows; ++i) VERIFY_IS_EQUAL(c(i, j), Scalar(m(i, j) + v(i))); |
| |
| Mat r = m; |
| r.rowwise() += rv; |
| for (Index j = 0; j < cols; ++j) |
| for (Index i = 0; i < rows; ++i) VERIFY_IS_EQUAL(r(i, j), Scalar(m(i, j) + rv(j))); |
| |
| Mat h = m.template replicate<1, 3>(); |
| for (Index j = 0; j < 3 * cols; ++j) |
| for (Index i = 0; i < rows; ++i) VERIFY_IS_EQUAL(h(i, j), m(i, j % cols)); |
| |
| Mat ver = m.template replicate<3, 1>(); |
| for (Index j = 0; j < cols; ++j) |
| for (Index i = 0; i < 3 * rows; ++i) VERIFY_IS_EQUAL(ver(i, j), m(i % rows, j)); |
| |
| // A replicate nested inside a larger coefficient-wise expression. |
| Mat sum = m + v.rowwise().replicate(cols); |
| for (Index j = 0; j < cols; ++j) |
| for (Index i = 0; i < rows; ++i) VERIFY_IS_EQUAL(sum(i, j), Scalar(m(i, j) + v(i))); |
| } |
| |
| EIGEN_DECLARE_TEST(array_replicate) { |
| for (int i = 0; i < g_repeat; i++) { |
| CALL_SUBTEST_1(replicate(Matrix<float, 1, 1>())); |
| CALL_SUBTEST_2(replicate(Vector2f())); |
| CALL_SUBTEST_3(replicate(Vector3d())); |
| CALL_SUBTEST_4(replicate(Vector4f())); |
| CALL_SUBTEST_5(replicate(VectorXf(16))); |
| CALL_SUBTEST_6(replicate(VectorXcd(10))); |
| CALL_SUBTEST_7(check_replicate_evaluator_flags<float>()); |
| CALL_SUBTEST_7(replicate_broadcasts<float>(internal::random<Index>(1, 64), internal::random<Index>(1, 64))); |
| CALL_SUBTEST_7(replicate_broadcasts<float>(17, 19)); |
| CALL_SUBTEST_8(check_replicate_evaluator_flags<double>()); |
| CALL_SUBTEST_8(replicate_broadcasts<double>(internal::random<Index>(1, 64), internal::random<Index>(1, 64))); |
| CALL_SUBTEST_8(replicate_broadcasts<std::complex<float> >(9, 5)); |
| } |
| } |