This project is a demonstrator tool, made by the MOISE project, that translates timed Altarica models into Fiacre models. Such translation allows to use model checkers such as Tina to prove properties. The project contains the translator tool.
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//
// Copyright (c) 2002--2010
// Toon Knapen, Karl Meerbergen, Kresimir Fresl,
// Thomas Klimpel and Rutger ter Borg
//
// Distributed under the Boost Software License, Version 1.0.
// (See accompanying file LICENSE_1_0.txt or copy at
// http://www.boost.org/LICENSE_1_0.txt)
//
// THIS FILE IS AUTOMATICALLY GENERATED
// PLEASE DO NOT EDIT!
//
#ifndef BOOST_NUMERIC_BINDINGS_BLAS_LEVEL2_GERC_HPP
#define BOOST_NUMERIC_BINDINGS_BLAS_LEVEL2_GERC_HPP
#include <boost/assert.hpp>
#include <boost/numeric/bindings/begin.hpp>
#include <boost/numeric/bindings/data_order.hpp>
#include <boost/numeric/bindings/has_linear_array.hpp>
#include <boost/numeric/bindings/is_mutable.hpp>
#include <boost/numeric/bindings/remove_imaginary.hpp>
#include <boost/numeric/bindings/size.hpp>
#include <boost/numeric/bindings/stride.hpp>
#include <boost/numeric/bindings/value_type.hpp>
#include <boost/static_assert.hpp>
#include <boost/type_traits/is_same.hpp>
#include <boost/type_traits/remove_const.hpp>
//
// The BLAS-backend is selected by defining a pre-processor variable,
// which can be one of
// * for CBLAS, define BOOST_NUMERIC_BINDINGS_BLAS_CBLAS
// * for CUBLAS, define BOOST_NUMERIC_BINDINGS_BLAS_CUBLAS
// * netlib-compatible BLAS is the default
//
#if defined BOOST_NUMERIC_BINDINGS_BLAS_CBLAS
#include <boost/numeric/bindings/blas/detail/cblas.h>
#include <boost/numeric/bindings/blas/detail/cblas_option.hpp>
#elif defined BOOST_NUMERIC_BINDINGS_BLAS_CUBLAS
#include <boost/numeric/bindings/blas/detail/cublas.h>
#include <boost/numeric/bindings/blas/detail/blas_option.hpp>
#else
#include <boost/numeric/bindings/blas/detail/blas.h>
#include <boost/numeric/bindings/blas/detail/blas_option.hpp>
#endif
namespace boost {
namespace numeric {
namespace bindings {
namespace blas {
//
// The detail namespace contains value-type-overloaded functions that
// dispatch to the appropriate back-end BLAS-routine.
//
namespace detail {
#if defined BOOST_NUMERIC_BINDINGS_BLAS_CBLAS
//
// Overloaded function for dispatching to
// * CBLAS backend, and
// * complex<float> value-type.
//
template< typename Order >
inline void gerc( const Order, const int m, const int n,
const std::complex<float> alpha, const std::complex<float>* x,
const int incx, const std::complex<float>* y, const int incy,
std::complex<float>* a, const int lda ) {
cblas_cgerc( cblas_option< Order >::value, m, n, &alpha, x, incx, y, incy,
a, lda );
}
//
// Overloaded function for dispatching to
// * CBLAS backend, and
// * complex<double> value-type.
//
template< typename Order >
inline void gerc( const Order, const int m, const int n,
const std::complex<double> alpha, const std::complex<double>* x,
const int incx, const std::complex<double>* y, const int incy,
std::complex<double>* a, const int lda ) {
cblas_zgerc( cblas_option< Order >::value, m, n, &alpha, x, incx, y, incy,
a, lda );
}
#elif defined BOOST_NUMERIC_BINDINGS_BLAS_CUBLAS
//
// Overloaded function for dispatching to
// * CUBLAS backend, and
// * complex<float> value-type.
//
template< typename Order >
inline void gerc( const Order, const int m, const int n,
const std::complex<float> alpha, const std::complex<float>* x,
const int incx, const std::complex<float>* y, const int incy,
std::complex<float>* a, const int lda ) {
BOOST_STATIC_ASSERT( (is_same<Order, tag::column_major>::value) );
cublasCgerc( m, n, alpha, x, incx, y, incy, a, lda );
}
//
// Overloaded function for dispatching to
// * CUBLAS backend, and
// * complex<double> value-type.
//
template< typename Order >
inline void gerc( const Order, const int m, const int n,
const std::complex<double> alpha, const std::complex<double>* x,
const int incx, const std::complex<double>* y, const int incy,
std::complex<double>* a, const int lda ) {
BOOST_STATIC_ASSERT( (is_same<Order, tag::column_major>::value) );
cublasZgerc( m, n, alpha, x, incx, y, incy, a, lda );
}
#else
//
// Overloaded function for dispatching to
// * netlib-compatible BLAS backend (the default), and
// * complex<float> value-type.
//
template< typename Order >
inline void gerc( const Order, const fortran_int_t m, const fortran_int_t n,
const std::complex<float> alpha, const std::complex<float>* x,
const fortran_int_t incx, const std::complex<float>* y,
const fortran_int_t incy, std::complex<float>* a,
const fortran_int_t lda ) {
BOOST_STATIC_ASSERT( (is_same<Order, tag::column_major>::value) );
BLAS_CGERC( &m, &n, &alpha, x, &incx, y, &incy, a, &lda );
}
//
// Overloaded function for dispatching to
// * netlib-compatible BLAS backend (the default), and
// * complex<double> value-type.
//
template< typename Order >
inline void gerc( const Order, const fortran_int_t m, const fortran_int_t n,
const std::complex<double> alpha, const std::complex<double>* x,
const fortran_int_t incx, const std::complex<double>* y,
const fortran_int_t incy, std::complex<double>* a,
const fortran_int_t lda ) {
BOOST_STATIC_ASSERT( (is_same<Order, tag::column_major>::value) );
BLAS_ZGERC( &m, &n, &alpha, x, &incx, y, &incy, a, &lda );
}
#endif
} // namespace detail
//
// Value-type based template class. Use this class if you need a type
// for dispatching to gerc.
//
template< typename Value >
struct gerc_impl {
typedef Value value_type;
typedef typename remove_imaginary< Value >::type real_type;
typedef void result_type;
//
// Static member function that
// * Deduces the required arguments for dispatching to BLAS, and
// * Asserts that most arguments make sense.
//
template< typename VectorX, typename VectorY, typename MatrixA >
static result_type invoke( const value_type alpha, const VectorX& x,
const VectorY& y, MatrixA& a ) {
namespace bindings = ::boost::numeric::bindings;
typedef typename result_of::data_order< MatrixA >::type order;
BOOST_STATIC_ASSERT( (is_same< typename remove_const<
typename bindings::value_type< VectorX >::type >::type,
typename remove_const< typename bindings::value_type<
VectorY >::type >::type >::value) );
BOOST_STATIC_ASSERT( (is_same< typename remove_const<
typename bindings::value_type< VectorX >::type >::type,
typename remove_const< typename bindings::value_type<
MatrixA >::type >::type >::value) );
BOOST_STATIC_ASSERT( (bindings::has_linear_array< MatrixA >::value) );
BOOST_STATIC_ASSERT( (bindings::has_linear_array< VectorX >::value) );
BOOST_STATIC_ASSERT( (bindings::has_linear_array< VectorY >::value) );
BOOST_STATIC_ASSERT( (bindings::is_mutable< MatrixA >::value) );
BOOST_ASSERT( bindings::size_minor(a) == 1 ||
bindings::stride_minor(a) == 1 );
detail::gerc( order(), bindings::size_row(a),
bindings::size_column(a), alpha, bindings::begin_value(x),
bindings::stride(x), bindings::begin_value(y),
bindings::stride(y), bindings::begin_value(a),
bindings::stride_major(a) );
}
};
//
// Functions for direct use. These functions are overloaded for temporaries,
// so that wrapped types can still be passed and used for write-access. Calls
// to these functions are passed to the gerc_impl classes. In the
// documentation, the const-overloads are collapsed to avoid a large number of
// prototypes which are very similar.
//
//
// Overloaded function for gerc. Its overload differs for
//
template< typename VectorX, typename VectorY, typename MatrixA >
inline typename gerc_impl< typename bindings::value_type<
VectorX >::type >::result_type
gerc( const typename bindings::value_type< VectorX >::type alpha,
const VectorX& x, const VectorY& y, MatrixA& a ) {
gerc_impl< typename bindings::value_type<
VectorX >::type >::invoke( alpha, x, y, a );
}
} // namespace blas
} // namespace bindings
} // namespace numeric
} // namespace boost
#endif