12 #ifndef EIGEN_TRANSFORM_H 13 #define EIGEN_TRANSFORM_H 19 template<
typename Transform>
31 template<
typename TransformType,
36 int RhsCols = MatrixType::ColsAtCompileTime>
39 template<
typename Other,
44 int OtherRows=Other::RowsAtCompileTime,
45 int OtherCols=Other::ColsAtCompileTime>
48 template<
typename Lhs,
55 template<
typename Other,
60 int OtherRows=Other::RowsAtCompileTime,
61 int OtherCols=Other::ColsAtCompileTime>
66 template<
typename _Scalar,
int _Dim,
int _Mode,
int _Options>
75 ColsAtCompileTime = Dim1,
76 MaxRowsAtCompileTime = RowsAtCompileTime,
77 MaxColsAtCompileTime = ColsAtCompileTime,
200 template<
typename _Scalar,
int _Dim,
int _Mode,
int _Options>
258 check_template_params();
264 check_template_params();
268 EIGEN_DEVICE_FUNC
inline explicit Transform(
const TranslationType& t)
270 check_template_params();
275 check_template_params();
278 template<
typename Derived>
281 check_template_params();
286 { m_matrix = other.
m_matrix;
return *
this; }
291 template<
typename OtherDerived>
295 YOU_MIXED_DIFFERENT_NUMERIC_TYPES__YOU_NEED_TO_USE_THE_CAST_METHOD_OF_MATRIXBASE_TO_CAST_NUMERIC_TYPES_EXPLICITLY);
297 check_template_params();
302 template<
typename OtherDerived>
306 YOU_MIXED_DIFFERENT_NUMERIC_TYPES__YOU_NEED_TO_USE_THE_CAST_METHOD_OF_MATRIXBASE_TO_CAST_NUMERIC_TYPES_EXPLICITLY);
312 template<
int OtherOptions>
315 check_template_params();
317 m_matrix = other.
matrix();
320 template<
int OtherMode,
int OtherOptions>
323 check_template_params();
327 YOU_PERFORMED_AN_INVALID_TRANSFORMATION_CONVERSION)
332 YOU_PERFORMED_AN_INVALID_TRANSFORMATION_CONVERSION)
338 if(ModeIsAffineCompact == OtherModeIsAffineCompact)
343 m_matrix.template block<Dim,Dim+1>(0,0) = other.
matrix().template block<Dim,Dim+1>(0,0);
346 else if(OtherModeIsAffineCompact)
356 linear() = other.
linear();
361 template<
typename OtherDerived>
364 check_template_params();
368 template<
typename OtherDerived>
375 #ifdef EIGEN_QT_SUPPORT 377 inline Transform& operator=(
const QMatrix& other);
378 inline QMatrix toQMatrix(
void)
const;
379 inline Transform(
const QTransform& other);
380 inline Transform& operator=(
const QTransform& other);
381 inline QTransform toQTransform(
void)
const;
385 EIGEN_DEVICE_FUNC Index
cols()
const {
return m_matrix.
cols(); }
389 EIGEN_DEVICE_FUNC
inline Scalar operator() (Index
row, Index
col)
const {
return m_matrix(row,col); }
392 EIGEN_DEVICE_FUNC
inline Scalar& operator() (Index
row, Index
col) {
return m_matrix(row,col); }
395 EIGEN_DEVICE_FUNC
inline const MatrixType&
matrix()
const {
return m_matrix; }
397 EIGEN_DEVICE_FUNC
inline MatrixType&
matrix() {
return m_matrix; }
400 EIGEN_DEVICE_FUNC
inline ConstLinearPart
linear()
const {
return ConstLinearPart(m_matrix,0,0); }
402 EIGEN_DEVICE_FUNC
inline LinearPart
linear() {
return LinearPart(m_matrix,0,0); }
439 template<
typename OtherDerived>
451 template<
typename OtherDerived>
friend 462 template<
typename DiagonalDerived>
463 EIGEN_DEVICE_FUNC
inline const TransformTimeDiagonalReturnType
466 TransformTimeDiagonalReturnType res(*
this);
477 template<
typename DiagonalDerived>
478 EIGEN_DEVICE_FUNC
friend inline TransformTimeDiagonalReturnType
481 TransformTimeDiagonalReturnType res;
489 template<
typename OtherDerived>
507 template<
int OtherMode,
int OtherOptions>
struct icc_11_workaround
510 typedef typename ProductType::ResultType ResultType;
515 template<
int OtherMode,
int OtherOptions>
516 inline typename icc_11_workaround<OtherMode,OtherOptions>::ResultType
519 typedef typename icc_11_workaround<OtherMode,OtherOptions>::ProductType ProductType;
524 template<
int OtherMode,
int OtherOptions>
541 return Transform(MatrixType::Identity());
544 template<
typename OtherDerived>
548 template<
typename OtherDerived>
552 EIGEN_DEVICE_FUNC
inline Transform& scale(
const Scalar&
s);
553 EIGEN_DEVICE_FUNC
inline Transform& prescale(
const Scalar& s);
555 template<
typename OtherDerived>
559 template<
typename OtherDerived>
563 template<
typename RotationType>
567 template<
typename RotationType>
569 inline Transform& prerotate(
const RotationType& rotation);
571 EIGEN_DEVICE_FUNC
Transform& shear(
const Scalar& sx,
const Scalar& sy);
572 EIGEN_DEVICE_FUNC
Transform& preshear(
const Scalar& sx,
const Scalar& sy);
574 EIGEN_DEVICE_FUNC
inline Transform& operator=(
const TranslationType& t);
590 TransformTimeDiagonalReturnType res = *
this;
598 template<
typename Derived>
600 template<
typename Derived>
602 template<
typename Derived>
605 EIGEN_DEVICE_FUNC
const LinearMatrixType rotation()
const;
606 template<
typename RotationMatrixType,
typename ScalingMatrixType>
608 void computeRotationScaling(RotationMatrixType *rotation, ScalingMatrixType *scaling)
const;
609 template<
typename ScalingMatrixType,
typename RotationMatrixType>
611 void computeScalingRotation(ScalingMatrixType *scaling, RotationMatrixType *rotation)
const;
613 template<
typename PositionDerived,
typename OrientationType,
typename ScaleDerived>
622 EIGEN_DEVICE_FUNC
const Scalar*
data()
const {
return m_matrix.
data(); }
624 EIGEN_DEVICE_FUNC Scalar*
data() {
return m_matrix.
data(); }
631 template<
typename NewScalarType>
636 template<
typename OtherScalarType>
639 check_template_params();
640 m_matrix = other.
matrix().template cast<Scalar>();
648 {
return m_matrix.isApprox(other.
m_matrix, prec); }
662 {
return m_matrix.template block<int(Mode)==int(Projective)?HDim:Dim,Dim>(0,0); }
668 {
return m_matrix.template block<int(Mode)==int(Projective)?HDim:Dim,Dim>(0,0); }
675 {
return m_matrix.template block<int(Mode)==int(Projective)?HDim:Dim,1>(0,
Dim); }
681 {
return m_matrix.template block<int(Mode)==int(Projective)?HDim:Dim,1>(0,
Dim); }
684 #ifdef EIGEN_TRANSFORM_PLUGIN 685 #include EIGEN_TRANSFORM_PLUGIN 689 #ifndef EIGEN_PARSED_BY_DOXYGEN 738 #ifdef EIGEN_QT_SUPPORT 743 template<
typename Scalar,
int Dim,
int Mode,
int Options>
746 check_template_params();
754 template<
typename Scalar,
int Dim,
int Mode,
int Options>
759 m_matrix << other.m11(), other.m21(), other.dx(),
760 other.m12(), other.m22(), other.dy();
762 m_matrix << other.m11(), other.m21(), other.dx(),
763 other.m12(), other.m22(), other.dy(),
774 template<
typename Scalar,
int Dim,
int Mode,
int Options>
777 check_template_params();
779 return QMatrix(m_matrix.
coeff(0,0), m_matrix.
coeff(1,0),
788 template<
typename Scalar,
int Dim,
int Mode,
int Options>
791 check_template_params();
799 template<
typename Scalar,
int Dim,
int Mode,
int Options>
802 check_template_params();
805 m_matrix << other.m11(), other.m21(), other.dx(),
806 other.m12(), other.m22(), other.dy();
808 m_matrix << other.m11(), other.m21(), other.dx(),
809 other.m12(), other.m22(), other.dy(),
810 other.m13(), other.m23(), other.m33();
818 template<
typename Scalar,
int Dim,
int Mode,
int Options>
823 return QTransform(m_matrix.
coeff(0,0), m_matrix.
coeff(1,0),
827 return QTransform(m_matrix.
coeff(0,0), m_matrix.
coeff(1,0), m_matrix.
coeff(2,0),
841 template<
typename Scalar,
int Dim,
int Mode,
int Options>
842 template<
typename OtherDerived>
848 linearExt().noalias() = (linearExt() * other.
asDiagonal());
856 template<
typename Scalar,
int Dim,
int Mode,
int Options>
868 template<
typename Scalar,
int Dim,
int Mode,
int Options>
869 template<
typename OtherDerived>
875 affine().noalias() = (other.
asDiagonal() * affine());
883 template<
typename Scalar,
int Dim,
int Mode,
int Options>
887 m_matrix.template topRows<Dim>() *= s;
895 template<
typename Scalar,
int Dim,
int Mode,
int Options>
896 template<
typename OtherDerived>
901 translationExt() += linearExt() * other;
909 template<
typename Scalar,
int Dim,
int Mode,
int Options>
910 template<
typename OtherDerived>
916 affine() += other * m_matrix.row(
Dim);
918 translation() += other;
939 template<
typename Scalar,
int Dim,
int Mode,
int Options>
940 template<
typename RotationType>
944 linearExt() *= internal::toRotationMatrix<Scalar,Dim>(rotation);
955 template<
typename Scalar,
int Dim,
int Mode,
int Options>
956 template<
typename RotationType>
960 m_matrix.template block<Dim,HDim>(0,0) = internal::toRotationMatrix<Scalar,Dim>(rotation)
961 * m_matrix.template block<Dim,HDim>(0,0);
970 template<
typename Scalar,
int Dim,
int Mode,
int Options>
976 VectorType tmp = linear().col(0)*sy + linear().col(1);
977 linear() << linear().col(0) + linear().col(1)*sx, tmp;
986 template<
typename Scalar,
int Dim,
int Mode,
int Options>
992 m_matrix.template block<Dim,HDim>(0,0) = LinearMatrixType(1, sx, sy, 1) * m_matrix.template block<Dim,HDim>(0,0);
1000 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1004 translation() = t.
vector();
1009 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1017 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1021 linear().diagonal().fill(s.
factor());
1026 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1027 template<
typename Derived>
1030 linear() = internal::toRotationMatrix<Scalar,Dim>(r);
1031 translation().setZero();
1036 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1037 template<
typename Derived>
1056 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1060 LinearMatrixType result;
1061 computeRotationScaling(&result, (LinearMatrixType*)0);
1077 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1078 template<
typename RotationMatrixType,
typename ScalingMatrixType>
1083 Scalar x = (svd.
matrixU() * svd.
matrixV().adjoint()).determinant();
1085 sv.coeffRef(0) *= x;
1086 if(scaling) scaling->lazyAssign(svd.
matrixV() * sv.asDiagonal() * svd.
matrixV().adjoint());
1089 LinearMatrixType m(svd.
matrixU());
1091 rotation->lazyAssign(m * svd.
matrixV().adjoint());
1106 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1107 template<
typename ScalingMatrixType,
typename RotationMatrixType>
1112 Scalar x = (svd.
matrixU() * svd.
matrixV().adjoint()).determinant();
1114 sv.coeffRef(0) *= x;
1115 if(scaling) scaling->lazyAssign(svd.
matrixU() * sv.asDiagonal() * svd.
matrixU().adjoint());
1118 LinearMatrixType m(svd.
matrixU());
1120 rotation->lazyAssign(m * svd.
matrixV().adjoint());
1127 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1128 template<
typename PositionDerived,
typename OrientationType,
typename ScaleDerived>
1133 linear() = internal::toRotationMatrix<Scalar,Dim>(orientation);
1135 translation() = position;
1143 struct transform_make_affine
1145 template<
typename MatrixType>
1146 EIGEN_DEVICE_FUNC
static void run(MatrixType &mat)
1148 static const int Dim = MatrixType::ColsAtCompileTime-1;
1150 mat.coeffRef(Dim,Dim) =
typename MatrixType::Scalar(1);
1157 template<
typename MatrixType> EIGEN_DEVICE_FUNC
static void run(MatrixType &) { }
1161 template<
typename TransformType,
int Mode=TransformType::Mode>
1164 EIGEN_DEVICE_FUNC
static inline void run(
const TransformType&, TransformType&)
1168 template<
typename TransformType>
1171 EIGEN_DEVICE_FUNC
static inline void run(
const TransformType& m, TransformType& res)
1173 res.matrix() = m.matrix().inverse();
1200 template<
typename Scalar,
int Dim,
int Mode,
int Options>
1213 res.
matrix().template topLeftCorner<Dim,Dim>() = linear().transpose();
1217 res.
matrix().template topLeftCorner<Dim,Dim>() = linear().inverse();
1221 eigen_assert(
false &&
"Invalid transform traits in Transform::Inverse");
1224 res.
matrix().template topRightCorner<Dim,1>()
1225 = - res.
matrix().template topLeftCorner<Dim,Dim>() * translation();
1237 template<
typename TransformType>
struct transform_take_affine_part {
1241 static inline AffinePart
run(MatrixType& m)
1242 {
return m.template block<TransformType::Dim,TransformType::HDim>(0,0); }
1243 static inline ConstAffinePart
run(
const MatrixType& m)
1244 {
return m.template block<TransformType::Dim,TransformType::HDim>(0,0); }
1247 template<
typename Scalar,
int Dim,
int Options>
1250 static inline MatrixType&
run(MatrixType& m) {
return m; }
1251 static inline const MatrixType&
run(
const MatrixType& m) {
return m; }
1258 template<
typename Other,
int Mode,
int Options,
int Dim,
int HDim>
1263 transform->
linear() = other;
1269 template<
typename Other,
int Mode,
int Options,
int Dim,
int HDim>
1274 transform->
affine() = other;
1279 template<
typename Other,
int Mode,
int Options,
int Dim,
int HDim>
1283 { transform->
matrix() = other; }
1286 template<
typename Other,
int Options,
int Dim,
int HDim>
1290 { transform->
matrix() = other.template block<Dim,HDim>(0,0); }
1297 template<
int LhsMode,
int RhsMode>
1310 template<
typename TransformType,
typename MatrixType,
int RhsCols>
1317 return T.matrix() * other;
1321 template<
typename TransformType,
typename MatrixType,
int RhsCols>
1327 OtherRows = MatrixType::RowsAtCompileTime,
1328 OtherCols = MatrixType::ColsAtCompileTime
1339 ResultType res(other.rows(),other.cols());
1340 TopLeftLhs(res, 0, 0,
Dim, other.cols()).noalias() = T.affine() * other;
1341 res.row(OtherRows-1) = other.row(OtherRows-1);
1347 template<
typename TransformType,
typename MatrixType,
int RhsCols>
1353 OtherRows = MatrixType::RowsAtCompileTime,
1354 OtherCols = MatrixType::ColsAtCompileTime
1365 TopLeftLhs(res, 0, 0,
Dim, other.cols()).noalias() += T.linear() * other;
1371 template<
typename TransformType,
typename MatrixType >
1378 OtherRows = MatrixType::RowsAtCompileTime,
1389 rhs.template head<Dim>() = other; rhs[
Dim] =
typename ResultType::Scalar(1);
1391 return res.template head<Dim>();
1400 template<
typename Other,
int Mode,
int Options,
int Dim,
int HDim>
1406 static ResultType
run(
const Other& other,
const TransformType& tr)
1407 {
return ResultType(other * tr.
matrix()); }
1411 template<
typename Other,
int Options,
int Dim,
int HDim>
1417 static ResultType
run(
const Other& other,
const TransformType& tr)
1420 res.
matrix().noalias() = other.template block<HDim,Dim>(0,0) * tr.
matrix();
1427 template<
typename Other,
int Mode,
int Options,
int Dim,
int HDim>
1433 static ResultType
run(
const Other& other,
const TransformType& tr)
1443 template<
typename Other,
int Options,
int Dim,
int HDim>
1449 static ResultType
run(
const Other& other,
const TransformType& tr)
1452 res.
matrix().noalias() = other.template block<Dim,Dim>(0,0) * tr.
matrix();
1459 template<
typename Other,
int Mode,
int Options,
int Dim,
int HDim>
1465 static ResultType
run(
const Other& other,
const TransformType& tr)
1470 res.
matrix().template topRows<Dim>().noalias()
1471 = other * tr.
matrix().template topRows<Dim>();
1480 template<
typename Scalar,
int Dim,
int LhsMode,
int LhsOptions,
int RhsMode,
int RhsOptions>
1487 static ResultType
run(
const Lhs& lhs,
const Rhs& rhs)
1497 template<
typename Scalar,
int Dim,
int LhsMode,
int LhsOptions,
int RhsMode,
int RhsOptions>
1503 static ResultType
run(
const Lhs& lhs,
const Rhs& rhs)
1509 template<
typename Scalar,
int Dim,
int LhsOptions,
int RhsOptions>
1515 static ResultType
run(
const Lhs& lhs,
const Rhs& rhs)
1524 template<
typename Scalar,
int Dim,
int LhsOptions,
int RhsOptions>
1530 static ResultType
run(
const Lhs& lhs,
const Rhs& rhs)
1532 ResultType res(lhs.
matrix().template leftCols<Dim>() * rhs.
matrix());
1542 #endif // EIGEN_TRANSFORM_H EIGEN_DEVICE_FUNC RotationMatrixType toRotationMatrix() const
EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE Index cols() const
#define EIGEN_STRONG_INLINE
EIGEN_DEVICE_FUNC Derived & setZero(Index size)
Transform< float, 3, Affine > Affine3f
Transform< double, 2, AffineCompact > AffineCompact2d
const SingularValuesType & singularValues() const
EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE const Scalar * data() const
Represents a diagonal matrix with its storage.
EIGEN_DEVICE_FUNC const VectorType & vector() const
EIGEN_DEVICE_FUNC void evalTo(Dest &dst) const
Holds information about the various numeric (i.e. scalar) types allowed by Eigen. ...
#define EIGEN_STATIC_ASSERT(CONDITION, MSG)
const unsigned int RowMajorBit
#define EIGEN_IMPLIES(a, b)
Represents a translation transformation.
Transform< double, 2, Projective > Projective2d
Transform< float, 2, AffineCompact > AffineCompact2f
EIGEN_DEVICE_FUNC ColXpr col(Index i)
This is the const version of col().
Transform< double, 3, Affine > Affine3d
EIGEN_DEFAULT_DENSE_INDEX_TYPE Index
The Index type as used for the API.
EIGEN_DEVICE_FUNC RowXpr row(Index i)
This is the const version of row(). */.
Expression of the multiple replication of a matrix or vector.
Common base class for compact rotation representations.
const MatrixVType & matrixV() const
Transform< double, 3, Isometry > Isometry3d
const MatrixUType & matrixU() const
static EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE TensorUInt128< uint64_t, uint64_t > operator*(const TensorUInt128< HL, LL > &lhs, const TensorUInt128< HR, LR > &rhs)
Transform< float, 2, Projective > Projective2f
Transform< float, 3, Projective > Projective3f
EIGEN_DEVICE_FUNC const Derived & derived() const
Transform< float, 3, AffineCompact > AffineCompact3f
Transform< double, 3, AffineCompact > AffineCompact3d
Transform< float, 2, Affine > Affine2f
Transform< float, 3, Isometry > Isometry3f
Expression of a fixed-size or dynamic-size block.
#define EIGEN_PLAIN_ENUM_MIN(a, b)
Transform< double, 2, Affine > Affine2d
Transform< double, 2, Isometry > Isometry2d
TFSIMD_FORCE_INLINE Vector3 rotate(const Vector3 &wAxis, const tfScalar angle) const
Two-sided Jacobi SVD decomposition of a rectangular matrix.
EIGEN_DEVICE_FUNC const DiagonalWrapper< const Derived > asDiagonal() const
The matrix class, also used for vectors and row-vectors.
void run(Expr &expr, Dev &dev)
EIGEN_DEVICE_FUNC const Scalar & b
EIGEN_DEVICE_FUNC Derived & derived()
Base class for all dense matrices, vectors, and expressions.
EIGEN_DEVICE_FUNC const InverseReturnType inverse() const
EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE const Scalar & coeff(Index rowId, Index colId) const
Transform< float, 2, Isometry > Isometry2f
Transform< double, 3, Projective > Projective3d
#define EIGEN_STATIC_ASSERT_VECTOR_SPECIFIC_SIZE(TYPE, SIZE)