xref: /aosp_15_r20/external/eigen/test/array_for_matrix.cpp (revision bf2c37156dfe67e5dfebd6d394bad8b2ab5804d4)
1*bf2c3715SXin Li // This file is part of Eigen, a lightweight C++ template library
2*bf2c3715SXin Li // for linear algebra.
3*bf2c3715SXin Li //
4*bf2c3715SXin Li // Copyright (C) 2008-2009 Gael Guennebaud <[email protected]>
5*bf2c3715SXin Li //
6*bf2c3715SXin Li // This Source Code Form is subject to the terms of the Mozilla
7*bf2c3715SXin Li // Public License v. 2.0. If a copy of the MPL was not distributed
8*bf2c3715SXin Li // with this file, You can obtain one at http://mozilla.org/MPL/2.0/.
9*bf2c3715SXin Li 
10*bf2c3715SXin Li #include "main.h"
11*bf2c3715SXin Li 
array_for_matrix(const MatrixType & m)12*bf2c3715SXin Li template<typename MatrixType> void array_for_matrix(const MatrixType& m)
13*bf2c3715SXin Li {
14*bf2c3715SXin Li   typedef typename MatrixType::Scalar Scalar;
15*bf2c3715SXin Li   typedef Matrix<Scalar, MatrixType::RowsAtCompileTime, 1> ColVectorType;
16*bf2c3715SXin Li   typedef Matrix<Scalar, 1, MatrixType::ColsAtCompileTime> RowVectorType;
17*bf2c3715SXin Li 
18*bf2c3715SXin Li   Index rows = m.rows();
19*bf2c3715SXin Li   Index cols = m.cols();
20*bf2c3715SXin Li 
21*bf2c3715SXin Li   MatrixType m1 = MatrixType::Random(rows, cols),
22*bf2c3715SXin Li              m2 = MatrixType::Random(rows, cols),
23*bf2c3715SXin Li              m3(rows, cols);
24*bf2c3715SXin Li 
25*bf2c3715SXin Li   ColVectorType cv1 = ColVectorType::Random(rows);
26*bf2c3715SXin Li   RowVectorType rv1 = RowVectorType::Random(cols);
27*bf2c3715SXin Li 
28*bf2c3715SXin Li   Scalar  s1 = internal::random<Scalar>(),
29*bf2c3715SXin Li           s2 = internal::random<Scalar>();
30*bf2c3715SXin Li 
31*bf2c3715SXin Li   // scalar addition
32*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.array() + s1, s1 + m1.array());
33*bf2c3715SXin Li   VERIFY_IS_APPROX((m1.array() + s1).matrix(), MatrixType::Constant(rows,cols,s1) + m1);
34*bf2c3715SXin Li   VERIFY_IS_APPROX(((m1*Scalar(2)).array() - s2).matrix(), (m1+m1) - MatrixType::Constant(rows,cols,s2) );
35*bf2c3715SXin Li   m3 = m1;
36*bf2c3715SXin Li   m3.array() += s2;
37*bf2c3715SXin Li   VERIFY_IS_APPROX(m3, (m1.array() + s2).matrix());
38*bf2c3715SXin Li   m3 = m1;
39*bf2c3715SXin Li   m3.array() -= s1;
40*bf2c3715SXin Li   VERIFY_IS_APPROX(m3, (m1.array() - s1).matrix());
41*bf2c3715SXin Li 
42*bf2c3715SXin Li   // reductions
43*bf2c3715SXin Li   VERIFY_IS_MUCH_SMALLER_THAN(m1.colwise().sum().sum() - m1.sum(), m1.squaredNorm());
44*bf2c3715SXin Li   VERIFY_IS_MUCH_SMALLER_THAN(m1.rowwise().sum().sum() - m1.sum(), m1.squaredNorm());
45*bf2c3715SXin Li   VERIFY_IS_MUCH_SMALLER_THAN(m1.colwise().sum() + m2.colwise().sum() - (m1+m2).colwise().sum(), (m1+m2).squaredNorm());
46*bf2c3715SXin Li   VERIFY_IS_MUCH_SMALLER_THAN(m1.rowwise().sum() - m2.rowwise().sum() - (m1-m2).rowwise().sum(), (m1-m2).squaredNorm());
47*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.colwise().sum(), m1.colwise().redux(internal::scalar_sum_op<Scalar,Scalar>()));
48*bf2c3715SXin Li 
49*bf2c3715SXin Li   // vector-wise ops
50*bf2c3715SXin Li   m3 = m1;
51*bf2c3715SXin Li   VERIFY_IS_APPROX(m3.colwise() += cv1, m1.colwise() + cv1);
52*bf2c3715SXin Li   m3 = m1;
53*bf2c3715SXin Li   VERIFY_IS_APPROX(m3.colwise() -= cv1, m1.colwise() - cv1);
54*bf2c3715SXin Li   m3 = m1;
55*bf2c3715SXin Li   VERIFY_IS_APPROX(m3.rowwise() += rv1, m1.rowwise() + rv1);
56*bf2c3715SXin Li   m3 = m1;
57*bf2c3715SXin Li   VERIFY_IS_APPROX(m3.rowwise() -= rv1, m1.rowwise() - rv1);
58*bf2c3715SXin Li 
59*bf2c3715SXin Li   // empty objects
60*bf2c3715SXin Li   VERIFY_IS_APPROX((m1.template block<0,Dynamic>(0,0,0,cols).colwise().sum()), RowVectorType::Zero(cols));
61*bf2c3715SXin Li   VERIFY_IS_APPROX((m1.template block<Dynamic,0>(0,0,rows,0).rowwise().sum()), ColVectorType::Zero(rows));
62*bf2c3715SXin Li   VERIFY_IS_APPROX((m1.template block<0,Dynamic>(0,0,0,cols).colwise().prod()), RowVectorType::Ones(cols));
63*bf2c3715SXin Li   VERIFY_IS_APPROX((m1.template block<Dynamic,0>(0,0,rows,0).rowwise().prod()), ColVectorType::Ones(rows));
64*bf2c3715SXin Li 
65*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.block(0,0,0,cols).colwise().sum(), RowVectorType::Zero(cols));
66*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.block(0,0,rows,0).rowwise().sum(), ColVectorType::Zero(rows));
67*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.block(0,0,0,cols).colwise().prod(), RowVectorType::Ones(cols));
68*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.block(0,0,rows,0).rowwise().prod(), ColVectorType::Ones(rows));
69*bf2c3715SXin Li 
70*bf2c3715SXin Li   // verify the const accessors exist
71*bf2c3715SXin Li   const Scalar& ref_m1 = m.matrix().array().coeffRef(0);
72*bf2c3715SXin Li   const Scalar& ref_m2 = m.matrix().array().coeffRef(0,0);
73*bf2c3715SXin Li   const Scalar& ref_a1 = m.array().matrix().coeffRef(0);
74*bf2c3715SXin Li   const Scalar& ref_a2 = m.array().matrix().coeffRef(0,0);
75*bf2c3715SXin Li   VERIFY(&ref_a1 == &ref_m1);
76*bf2c3715SXin Li   VERIFY(&ref_a2 == &ref_m2);
77*bf2c3715SXin Li 
78*bf2c3715SXin Li   // Check write accessors:
79*bf2c3715SXin Li   m1.array().coeffRef(0,0) = 1;
80*bf2c3715SXin Li   VERIFY_IS_APPROX(m1(0,0),Scalar(1));
81*bf2c3715SXin Li   m1.array()(0,0) = 2;
82*bf2c3715SXin Li   VERIFY_IS_APPROX(m1(0,0),Scalar(2));
83*bf2c3715SXin Li   m1.array().matrix().coeffRef(0,0) = 3;
84*bf2c3715SXin Li   VERIFY_IS_APPROX(m1(0,0),Scalar(3));
85*bf2c3715SXin Li   m1.array().matrix()(0,0) = 4;
86*bf2c3715SXin Li   VERIFY_IS_APPROX(m1(0,0),Scalar(4));
87*bf2c3715SXin Li }
88*bf2c3715SXin Li 
comparisons(const MatrixType & m)89*bf2c3715SXin Li template<typename MatrixType> void comparisons(const MatrixType& m)
90*bf2c3715SXin Li {
91*bf2c3715SXin Li   using std::abs;
92*bf2c3715SXin Li   typedef typename MatrixType::Scalar Scalar;
93*bf2c3715SXin Li   typedef typename NumTraits<Scalar>::Real RealScalar;
94*bf2c3715SXin Li 
95*bf2c3715SXin Li   Index rows = m.rows();
96*bf2c3715SXin Li   Index cols = m.cols();
97*bf2c3715SXin Li 
98*bf2c3715SXin Li   Index r = internal::random<Index>(0, rows-1),
99*bf2c3715SXin Li         c = internal::random<Index>(0, cols-1);
100*bf2c3715SXin Li 
101*bf2c3715SXin Li   MatrixType m1 = MatrixType::Random(rows, cols),
102*bf2c3715SXin Li              m2 = MatrixType::Random(rows, cols),
103*bf2c3715SXin Li              m3(rows, cols);
104*bf2c3715SXin Li 
105*bf2c3715SXin Li   VERIFY(((m1.array() + Scalar(1)) > m1.array()).all());
106*bf2c3715SXin Li   VERIFY(((m1.array() - Scalar(1)) < m1.array()).all());
107*bf2c3715SXin Li   if (rows*cols>1)
108*bf2c3715SXin Li   {
109*bf2c3715SXin Li     m3 = m1;
110*bf2c3715SXin Li     m3(r,c) += 1;
111*bf2c3715SXin Li     VERIFY(! (m1.array() < m3.array()).all() );
112*bf2c3715SXin Li     VERIFY(! (m1.array() > m3.array()).all() );
113*bf2c3715SXin Li   }
114*bf2c3715SXin Li 
115*bf2c3715SXin Li   // comparisons to scalar
116*bf2c3715SXin Li   VERIFY( (m1.array() != (m1(r,c)+1) ).any() );
117*bf2c3715SXin Li   VERIFY( (m1.array() > (m1(r,c)-1) ).any() );
118*bf2c3715SXin Li   VERIFY( (m1.array() < (m1(r,c)+1) ).any() );
119*bf2c3715SXin Li   VERIFY( (m1.array() == m1(r,c) ).any() );
120*bf2c3715SXin Li   VERIFY( m1.cwiseEqual(m1(r,c)).any() );
121*bf2c3715SXin Li 
122*bf2c3715SXin Li   // test Select
123*bf2c3715SXin Li   VERIFY_IS_APPROX( (m1.array()<m2.array()).select(m1,m2), m1.cwiseMin(m2) );
124*bf2c3715SXin Li   VERIFY_IS_APPROX( (m1.array()>m2.array()).select(m1,m2), m1.cwiseMax(m2) );
125*bf2c3715SXin Li   Scalar mid = (m1.cwiseAbs().minCoeff() + m1.cwiseAbs().maxCoeff())/Scalar(2);
126*bf2c3715SXin Li   for (int j=0; j<cols; ++j)
127*bf2c3715SXin Li   for (int i=0; i<rows; ++i)
128*bf2c3715SXin Li     m3(i,j) = abs(m1(i,j))<mid ? 0 : m1(i,j);
129*bf2c3715SXin Li   VERIFY_IS_APPROX( (m1.array().abs()<MatrixType::Constant(rows,cols,mid).array())
130*bf2c3715SXin Li                         .select(MatrixType::Zero(rows,cols),m1), m3);
131*bf2c3715SXin Li   // shorter versions:
132*bf2c3715SXin Li   VERIFY_IS_APPROX( (m1.array().abs()<MatrixType::Constant(rows,cols,mid).array())
133*bf2c3715SXin Li                         .select(0,m1), m3);
134*bf2c3715SXin Li   VERIFY_IS_APPROX( (m1.array().abs()>=MatrixType::Constant(rows,cols,mid).array())
135*bf2c3715SXin Li                         .select(m1,0), m3);
136*bf2c3715SXin Li   // even shorter version:
137*bf2c3715SXin Li   VERIFY_IS_APPROX( (m1.array().abs()<mid).select(0,m1), m3);
138*bf2c3715SXin Li 
139*bf2c3715SXin Li   // count
140*bf2c3715SXin Li   VERIFY(((m1.array().abs()+1)>RealScalar(0.1)).count() == rows*cols);
141*bf2c3715SXin Li 
142*bf2c3715SXin Li   // and/or
143*bf2c3715SXin Li   VERIFY( ((m1.array()<RealScalar(0)).matrix() && (m1.array()>RealScalar(0)).matrix()).count() == 0);
144*bf2c3715SXin Li   VERIFY( ((m1.array()<RealScalar(0)).matrix() || (m1.array()>=RealScalar(0)).matrix()).count() == rows*cols);
145*bf2c3715SXin Li   RealScalar a = m1.cwiseAbs().mean();
146*bf2c3715SXin Li   VERIFY( ((m1.array()<-a).matrix() || (m1.array()>a).matrix()).count() == (m1.cwiseAbs().array()>a).count());
147*bf2c3715SXin Li 
148*bf2c3715SXin Li   typedef Matrix<Index, Dynamic, 1> VectorOfIndices;
149*bf2c3715SXin Li 
150*bf2c3715SXin Li   // TODO allows colwise/rowwise for array
151*bf2c3715SXin Li   VERIFY_IS_APPROX(((m1.array().abs()+1)>RealScalar(0.1)).matrix().colwise().count(), VectorOfIndices::Constant(cols,rows).transpose());
152*bf2c3715SXin Li   VERIFY_IS_APPROX(((m1.array().abs()+1)>RealScalar(0.1)).matrix().rowwise().count(), VectorOfIndices::Constant(rows, cols));
153*bf2c3715SXin Li }
154*bf2c3715SXin Li 
lpNorm(const VectorType & v)155*bf2c3715SXin Li template<typename VectorType> void lpNorm(const VectorType& v)
156*bf2c3715SXin Li {
157*bf2c3715SXin Li   using std::sqrt;
158*bf2c3715SXin Li   typedef typename VectorType::RealScalar RealScalar;
159*bf2c3715SXin Li   VectorType u = VectorType::Random(v.size());
160*bf2c3715SXin Li 
161*bf2c3715SXin Li   if(v.size()==0)
162*bf2c3715SXin Li   {
163*bf2c3715SXin Li     VERIFY_IS_APPROX(u.template lpNorm<Infinity>(), RealScalar(0));
164*bf2c3715SXin Li     VERIFY_IS_APPROX(u.template lpNorm<1>(), RealScalar(0));
165*bf2c3715SXin Li     VERIFY_IS_APPROX(u.template lpNorm<2>(), RealScalar(0));
166*bf2c3715SXin Li     VERIFY_IS_APPROX(u.template lpNorm<5>(), RealScalar(0));
167*bf2c3715SXin Li   }
168*bf2c3715SXin Li   else
169*bf2c3715SXin Li   {
170*bf2c3715SXin Li     VERIFY_IS_APPROX(u.template lpNorm<Infinity>(), u.cwiseAbs().maxCoeff());
171*bf2c3715SXin Li   }
172*bf2c3715SXin Li 
173*bf2c3715SXin Li   VERIFY_IS_APPROX(u.template lpNorm<1>(), u.cwiseAbs().sum());
174*bf2c3715SXin Li   VERIFY_IS_APPROX(u.template lpNorm<2>(), sqrt(u.array().abs().square().sum()));
175*bf2c3715SXin Li   VERIFY_IS_APPROX(numext::pow(u.template lpNorm<5>(), typename VectorType::RealScalar(5)), u.array().abs().pow(5).sum());
176*bf2c3715SXin Li }
177*bf2c3715SXin Li 
cwise_min_max(const MatrixType & m)178*bf2c3715SXin Li template<typename MatrixType> void cwise_min_max(const MatrixType& m)
179*bf2c3715SXin Li {
180*bf2c3715SXin Li   typedef typename MatrixType::Scalar Scalar;
181*bf2c3715SXin Li 
182*bf2c3715SXin Li   Index rows = m.rows();
183*bf2c3715SXin Li   Index cols = m.cols();
184*bf2c3715SXin Li 
185*bf2c3715SXin Li   MatrixType m1 = MatrixType::Random(rows, cols);
186*bf2c3715SXin Li 
187*bf2c3715SXin Li   // min/max with array
188*bf2c3715SXin Li   Scalar maxM1 = m1.maxCoeff();
189*bf2c3715SXin Li   Scalar minM1 = m1.minCoeff();
190*bf2c3715SXin Li 
191*bf2c3715SXin Li   VERIFY_IS_APPROX(MatrixType::Constant(rows,cols, minM1), m1.cwiseMin(MatrixType::Constant(rows,cols, minM1)));
192*bf2c3715SXin Li   VERIFY_IS_APPROX(m1, m1.cwiseMin(MatrixType::Constant(rows,cols, maxM1)));
193*bf2c3715SXin Li 
194*bf2c3715SXin Li   VERIFY_IS_APPROX(MatrixType::Constant(rows,cols, maxM1), m1.cwiseMax(MatrixType::Constant(rows,cols, maxM1)));
195*bf2c3715SXin Li   VERIFY_IS_APPROX(m1, m1.cwiseMax(MatrixType::Constant(rows,cols, minM1)));
196*bf2c3715SXin Li 
197*bf2c3715SXin Li   // min/max with scalar input
198*bf2c3715SXin Li   VERIFY_IS_APPROX(MatrixType::Constant(rows,cols, minM1), m1.cwiseMin( minM1));
199*bf2c3715SXin Li   VERIFY_IS_APPROX(m1, m1.cwiseMin(maxM1));
200*bf2c3715SXin Li   VERIFY_IS_APPROX(-m1, (-m1).cwiseMin(-minM1));
201*bf2c3715SXin Li   VERIFY_IS_APPROX(-m1.array(), ((-m1).array().min)( -minM1));
202*bf2c3715SXin Li 
203*bf2c3715SXin Li   VERIFY_IS_APPROX(MatrixType::Constant(rows,cols, maxM1), m1.cwiseMax( maxM1));
204*bf2c3715SXin Li   VERIFY_IS_APPROX(m1, m1.cwiseMax(minM1));
205*bf2c3715SXin Li   VERIFY_IS_APPROX(-m1, (-m1).cwiseMax(-maxM1));
206*bf2c3715SXin Li   VERIFY_IS_APPROX(-m1.array(), ((-m1).array().max)(-maxM1));
207*bf2c3715SXin Li 
208*bf2c3715SXin Li   VERIFY_IS_APPROX(MatrixType::Constant(rows,cols, minM1).array(), (m1.array().min)( minM1));
209*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.array(), (m1.array().min)( maxM1));
210*bf2c3715SXin Li 
211*bf2c3715SXin Li   VERIFY_IS_APPROX(MatrixType::Constant(rows,cols, maxM1).array(), (m1.array().max)( maxM1));
212*bf2c3715SXin Li   VERIFY_IS_APPROX(m1.array(), (m1.array().max)( minM1));
213*bf2c3715SXin Li 
214*bf2c3715SXin Li }
215*bf2c3715SXin Li 
resize(const MatrixTraits & t)216*bf2c3715SXin Li template<typename MatrixTraits> void resize(const MatrixTraits& t)
217*bf2c3715SXin Li {
218*bf2c3715SXin Li   typedef typename MatrixTraits::Scalar Scalar;
219*bf2c3715SXin Li   typedef Matrix<Scalar,Dynamic,Dynamic> MatrixType;
220*bf2c3715SXin Li   typedef Array<Scalar,Dynamic,Dynamic> Array2DType;
221*bf2c3715SXin Li   typedef Matrix<Scalar,Dynamic,1> VectorType;
222*bf2c3715SXin Li   typedef Array<Scalar,Dynamic,1> Array1DType;
223*bf2c3715SXin Li 
224*bf2c3715SXin Li   Index rows = t.rows(), cols = t.cols();
225*bf2c3715SXin Li 
226*bf2c3715SXin Li   MatrixType m(rows,cols);
227*bf2c3715SXin Li   VectorType v(rows);
228*bf2c3715SXin Li   Array2DType a2(rows,cols);
229*bf2c3715SXin Li   Array1DType a1(rows);
230*bf2c3715SXin Li 
231*bf2c3715SXin Li   m.array().resize(rows+1,cols+1);
232*bf2c3715SXin Li   VERIFY(m.rows()==rows+1 && m.cols()==cols+1);
233*bf2c3715SXin Li   a2.matrix().resize(rows+1,cols+1);
234*bf2c3715SXin Li   VERIFY(a2.rows()==rows+1 && a2.cols()==cols+1);
235*bf2c3715SXin Li   v.array().resize(cols);
236*bf2c3715SXin Li   VERIFY(v.size()==cols);
237*bf2c3715SXin Li   a1.matrix().resize(cols);
238*bf2c3715SXin Li   VERIFY(a1.size()==cols);
239*bf2c3715SXin Li }
240*bf2c3715SXin Li 
241*bf2c3715SXin Li template<int>
regression_bug_654()242*bf2c3715SXin Li void regression_bug_654()
243*bf2c3715SXin Li {
244*bf2c3715SXin Li   ArrayXf a = RowVectorXf(3);
245*bf2c3715SXin Li   VectorXf v = Array<float,1,Dynamic>(3);
246*bf2c3715SXin Li }
247*bf2c3715SXin Li 
248*bf2c3715SXin Li // Check propagation of LvalueBit through Array/Matrix-Wrapper
249*bf2c3715SXin Li template<int>
regrrssion_bug_1410()250*bf2c3715SXin Li void regrrssion_bug_1410()
251*bf2c3715SXin Li {
252*bf2c3715SXin Li   const Matrix4i M;
253*bf2c3715SXin Li   const Array4i A;
254*bf2c3715SXin Li   ArrayWrapper<const Matrix4i> MA = M.array();
255*bf2c3715SXin Li   MA.row(0);
256*bf2c3715SXin Li   MatrixWrapper<const Array4i> AM = A.matrix();
257*bf2c3715SXin Li   AM.row(0);
258*bf2c3715SXin Li 
259*bf2c3715SXin Li   VERIFY((internal::traits<ArrayWrapper<const Matrix4i> >::Flags&LvalueBit)==0);
260*bf2c3715SXin Li   VERIFY((internal::traits<MatrixWrapper<const Array4i> >::Flags&LvalueBit)==0);
261*bf2c3715SXin Li 
262*bf2c3715SXin Li   VERIFY((internal::traits<ArrayWrapper<Matrix4i> >::Flags&LvalueBit)==LvalueBit);
263*bf2c3715SXin Li   VERIFY((internal::traits<MatrixWrapper<Array4i> >::Flags&LvalueBit)==LvalueBit);
264*bf2c3715SXin Li }
265*bf2c3715SXin Li 
EIGEN_DECLARE_TEST(array_for_matrix)266*bf2c3715SXin Li EIGEN_DECLARE_TEST(array_for_matrix)
267*bf2c3715SXin Li {
268*bf2c3715SXin Li   for(int i = 0; i < g_repeat; i++) {
269*bf2c3715SXin Li     CALL_SUBTEST_1( array_for_matrix(Matrix<float, 1, 1>()) );
270*bf2c3715SXin Li     CALL_SUBTEST_2( array_for_matrix(Matrix2f()) );
271*bf2c3715SXin Li     CALL_SUBTEST_3( array_for_matrix(Matrix4d()) );
272*bf2c3715SXin Li     CALL_SUBTEST_4( array_for_matrix(MatrixXcf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
273*bf2c3715SXin Li     CALL_SUBTEST_5( array_for_matrix(MatrixXf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
274*bf2c3715SXin Li     CALL_SUBTEST_6( array_for_matrix(MatrixXi(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
275*bf2c3715SXin Li   }
276*bf2c3715SXin Li   for(int i = 0; i < g_repeat; i++) {
277*bf2c3715SXin Li     CALL_SUBTEST_1( comparisons(Matrix<float, 1, 1>()) );
278*bf2c3715SXin Li     CALL_SUBTEST_2( comparisons(Matrix2f()) );
279*bf2c3715SXin Li     CALL_SUBTEST_3( comparisons(Matrix4d()) );
280*bf2c3715SXin Li     CALL_SUBTEST_5( comparisons(MatrixXf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
281*bf2c3715SXin Li     CALL_SUBTEST_6( comparisons(MatrixXi(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
282*bf2c3715SXin Li   }
283*bf2c3715SXin Li   for(int i = 0; i < g_repeat; i++) {
284*bf2c3715SXin Li     CALL_SUBTEST_1( cwise_min_max(Matrix<float, 1, 1>()) );
285*bf2c3715SXin Li     CALL_SUBTEST_2( cwise_min_max(Matrix2f()) );
286*bf2c3715SXin Li     CALL_SUBTEST_3( cwise_min_max(Matrix4d()) );
287*bf2c3715SXin Li     CALL_SUBTEST_5( cwise_min_max(MatrixXf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
288*bf2c3715SXin Li     CALL_SUBTEST_6( cwise_min_max(MatrixXi(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
289*bf2c3715SXin Li   }
290*bf2c3715SXin Li   for(int i = 0; i < g_repeat; i++) {
291*bf2c3715SXin Li     CALL_SUBTEST_1( lpNorm(Matrix<float, 1, 1>()) );
292*bf2c3715SXin Li     CALL_SUBTEST_2( lpNorm(Vector2f()) );
293*bf2c3715SXin Li     CALL_SUBTEST_7( lpNorm(Vector3d()) );
294*bf2c3715SXin Li     CALL_SUBTEST_8( lpNorm(Vector4f()) );
295*bf2c3715SXin Li     CALL_SUBTEST_5( lpNorm(VectorXf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
296*bf2c3715SXin Li     CALL_SUBTEST_4( lpNorm(VectorXcf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
297*bf2c3715SXin Li   }
298*bf2c3715SXin Li   CALL_SUBTEST_5( lpNorm(VectorXf(0)) );
299*bf2c3715SXin Li   CALL_SUBTEST_4( lpNorm(VectorXcf(0)) );
300*bf2c3715SXin Li   for(int i = 0; i < g_repeat; i++) {
301*bf2c3715SXin Li     CALL_SUBTEST_4( resize(MatrixXcf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
302*bf2c3715SXin Li     CALL_SUBTEST_5( resize(MatrixXf(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
303*bf2c3715SXin Li     CALL_SUBTEST_6( resize(MatrixXi(internal::random<int>(1,EIGEN_TEST_MAX_SIZE), internal::random<int>(1,EIGEN_TEST_MAX_SIZE))) );
304*bf2c3715SXin Li   }
305*bf2c3715SXin Li   CALL_SUBTEST_6( regression_bug_654<0>() );
306*bf2c3715SXin Li   CALL_SUBTEST_6( regrrssion_bug_1410<0>() );
307*bf2c3715SXin Li }
308