10 #ifndef EIGEN_GENERAL_MATRIX_MATRIX_TRIANGULAR_H    11 #define EIGEN_GENERAL_MATRIX_MATRIX_TRIANGULAR_H    15 template<
typename Scalar, 
typename Index, 
int StorageOrder, 
int UpLo, 
bool ConjLhs, 
bool ConjRhs>
    28 template<
typename LhsScalar, 
typename RhsScalar, 
typename Index, 
int mr, 
int nr, 
bool ConjLhs, 
bool ConjRhs, 
int UpLo>
    32 template <
typename Index,
    33           typename LhsScalar, 
int LhsStorageOrder, 
bool ConjugateLhs,
    34           typename RhsScalar, 
int RhsStorageOrder, 
bool ConjugateRhs,
    35                               int ResStorageOrder, 
int  UpLo, 
int Version = 
Specialized>
    39 template <
typename Index, 
typename LhsScalar, 
int LhsStorageOrder, 
bool ConjugateLhs,
    40                           typename RhsScalar, 
int RhsStorageOrder, 
bool ConjugateRhs, 
int  UpLo, 
int Version>
    45                                       const RhsScalar* rhs, 
Index rhsStride, ResScalar* res, 
Index resStride,
    52       ::run(size,depth,rhs,rhsStride,lhs,lhsStride,res,resStride,alpha,blocking);
    56 template <
typename Index, 
typename LhsScalar, 
int LhsStorageOrder, 
bool ConjugateLhs,
    57                           typename RhsScalar, 
int RhsStorageOrder, 
bool ConjugateRhs, 
int  UpLo, 
int Version>
    62                                       const RhsScalar* _rhs, 
Index rhsStride, ResScalar* _res, 
Index resStride,
    70     LhsMapper lhs(_lhs,lhsStride);
    71     RhsMapper rhs(_rhs,rhsStride);
    72     ResMapper res(_res, resStride);
    79       mc = (mc/Traits::nr)*Traits::nr;
    81     std::size_t sizeA = kc*mc;
    82     std::size_t sizeB = kc*size;
    92     for(
Index k2=0; k2<depth; k2+=kc)
    97       pack_rhs(blockB, rhs.getSubMapper(k2,0), actual_kc, size);
    99       for(
Index i2=0; i2<size; i2+=mc)
   103         pack_lhs(blockA, lhs.getSubMapper(i2, k2), actual_kc, actual_mc);
   110           gebp(res.getSubMapper(i2, 0), blockA, blockB, actual_mc, actual_kc,
   111                (
std::min)(size,i2), alpha, -1, -1, 0, 0);
   114         sybb(_res+resStride*i2 + i2, resStride, blockA, blockB + actual_kc*i2, actual_mc, actual_kc, alpha);
   118           Index j2 = i2+actual_mc;
   119           gebp(res.getSubMapper(i2, j2), blockA, blockB+actual_kc*j2, actual_mc,
   120                actual_kc, (
std::max)(
Index(0), size-j2), alpha, -1, -1, 0, 0);
   136 template<
typename LhsScalar, 
typename RhsScalar, 
typename Index, 
int mr, 
int nr, 
bool ConjLhs, 
bool ConjRhs, 
int UpLo>
   145   void operator()(ResScalar* _res, 
Index resStride, 
const LhsScalar* blockA, 
const RhsScalar* blockB, 
Index size, 
Index depth, 
const ResScalar& alpha)
   148     ResMapper res(_res, resStride);
   155     for (
Index j=0; j<size; j+=BlockSize)
   157       Index actualBlockSize = std::min<Index>(BlockSize,size - j);
   158       const RhsScalar* actual_b = blockB+j*depth;
   161         gebp_kernel(res.getSubMapper(0, j), blockA, actual_b, j, depth, actualBlockSize, alpha,
   169         gebp_kernel(ResMapper(buffer.
data(), BlockSize), blockA+depth*i, actual_b, actualBlockSize, depth, actualBlockSize, alpha,
   172         for(
Index j1=0; j1<actualBlockSize; ++j1)
   174           ResScalar* r = &res(i, j + j1);
   176               UpLo==
Lower ? i1<actualBlockSize : i1<=j1; ++i1)
   177             r[i1] += buffer(i1,j1);
   183         Index i = j+actualBlockSize;
   184         gebp_kernel(res.getSubMapper(i, j), blockA+depth*i, actual_b, size-i, 
   185                     depth, actualBlockSize, alpha, -1, -1, 0, 0);
   195 template<
typename MatrixType, 
typename ProductType, 
int UpLo, 
bool IsOuterProduct>
   199 template<
typename MatrixType, 
typename ProductType, 
int UpLo>
   202   static void run(MatrixType& mat, 
const ProductType& prod, 
const typename MatrixType::Scalar& alpha)
   204     typedef typename MatrixType::Scalar Scalar;
   208     typedef typename LhsBlasTraits::DirectLinearAccessType ActualLhs;
   214     typedef typename RhsBlasTraits::DirectLinearAccessType ActualRhs;
   218     Scalar actualAlpha = alpha * LhsBlasTraits::extractScalarFactor(prod.lhs().derived()) * RhsBlasTraits::extractScalarFactor(prod.rhs().derived());
   222       UseLhsDirectly = _ActualLhs::InnerStrideAtCompileTime==1,
   223       UseRhsDirectly = _ActualRhs::InnerStrideAtCompileTime==1
   228       (UseLhsDirectly ? 
const_cast<Scalar*
>(actualLhs.data()) : static_lhs.data()));
   233       (UseRhsDirectly ? 
const_cast<Scalar*
>(actualRhs.data()) : static_rhs.data()));
   239                               RhsBlasTraits::NeedToConjugate && NumTraits<Scalar>::IsComplex>
   240           ::run(actualLhs.size(), mat.data(), mat.outerStride(), actualLhsPtr, actualRhsPtr, actualAlpha);
   244 template<
typename MatrixType, 
typename ProductType, 
int UpLo>
   247   static void run(MatrixType& mat, 
const ProductType& prod, 
const typename MatrixType::Scalar& alpha)
   251     typedef typename LhsBlasTraits::DirectLinearAccessType ActualLhs;
   257     typedef typename RhsBlasTraits::DirectLinearAccessType ActualRhs;
   261     typename ProductType::Scalar actualAlpha = alpha * LhsBlasTraits::extractScalarFactor(prod.lhs().derived()) * RhsBlasTraits::extractScalarFactor(prod.rhs().derived());
   265       LhsIsRowMajor = _ActualLhs::Flags&
RowMajorBit ? 1 : 0,
   266       RhsIsRowMajor = _ActualRhs::Flags&RowMajorBit ? 1 : 0
   269     Index size = mat.cols();
   270     Index depth = actualLhs.cols();
   273           MatrixType::MaxColsAtCompileTime, MatrixType::MaxColsAtCompileTime, _ActualRhs::MaxColsAtCompileTime> BlockingType;
   275     BlockingType blocking(size, size, depth, 1, 
false);
   278       typename Lhs::Scalar, LhsIsRowMajor ? 
RowMajor : 
ColMajor, LhsBlasTraits::NeedToConjugate,
   279       typename Rhs::Scalar, RhsIsRowMajor ? 
RowMajor : 
ColMajor, RhsBlasTraits::NeedToConjugate,
   282             &actualLhs.coeffRef(0,0), actualLhs.outerStride(), &actualRhs.coeffRef(0,0), actualRhs.outerStride(),
   283             mat.data(), mat.outerStride(), actualAlpha, blocking);
   287 template<
typename MatrixType, 
unsigned int UpLo>
   288 template<
typename ProductType>
   291   eigen_assert(derived().nestedExpression().rows() == prod.rows() && derived().cols() == prod.cols());
   300 #endif // EIGEN_GENERAL_MATRIX_MATRIX_TRIANGULAR_H 
#define EIGEN_STRONG_INLINE
ScalarBinaryOpTraits< LhsScalar, RhsScalar >::ReturnType ResScalar
Traits::ResScalar ResScalar
EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE const Scalar * data() const
A matrix or vector expression mapping an existing array of data. 
static void run(MatrixType &mat, const ProductType &prod, const typename MatrixType::Scalar &alpha)
Holds information about the various numeric (i.e. scalar) types allowed by Eigen. ...
ScalarBinaryOpTraits< LhsScalar, RhsScalar >::ReturnType ResScalar
const unsigned int RowMajorBit
static void run(MatrixType &mat, const ProductType &prod, const typename MatrixType::Scalar &alpha)
static EIGEN_STRONG_INLINE void run(Index size, Index depth, const LhsScalar *lhs, Index lhsStride, const RhsScalar *rhs, Index rhsStride, ResScalar *res, Index resStride, const ResScalar &alpha, level3_blocking< RhsScalar, LhsScalar > &blocking)
ScalarBinaryOpTraits< LhsScalar, RhsScalar >::ReturnType ResScalar
static EIGEN_STRONG_INLINE void run(Index size, Index depth, const LhsScalar *_lhs, Index lhsStride, const RhsScalar *_rhs, Index rhsStride, ResScalar *_res, Index resStride, const ResScalar &alpha, level3_blocking< LhsScalar, RhsScalar > &blocking)
EIGEN_DEFAULT_DENSE_INDEX_TYPE Index
The Index type as used for the API. 
gebp_traits< LhsScalar, RhsScalar, ConjLhs, ConjRhs > Traits
EIGEN_DEVICE_FUNC Matrix< _Scalar, _Rows, _Cols, _Options, _MaxRows, _MaxCols > & setZero(Index size)
#define ei_declare_aligned_stack_constructed_variable(TYPE, NAME, SIZE, BUFFER)
int64_t max(int64_t a, const int b)
void operator()(ResScalar *_res, Index resStride, const LhsScalar *blockA, const RhsScalar *blockB, Index size, Index depth, const ResScalar &alpha)
Expression of a triangular part in a matrix. 
Determines whether the given binary operation of two numeric types is allowed and what the scalar ret...
The matrix class, also used for vectors and row-vectors.