202 lines
		
	
	
		
			6.2 KiB
		
	
	
	
		
			Plaintext
		
	
	
	
	
	
		
		
			
		
	
	
			202 lines
		
	
	
		
			6.2 KiB
		
	
	
	
		
			Plaintext
		
	
	
	
	
	
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								/*
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								 [auto_generated]
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								 boost/numeric/odeint/stepper/adams_moulton.hpp
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								 [begin_description]
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								 Implementation of the Adams-Moulton method. This is method is not a real stepper, it is more a helper class
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								 which computes the corrector step in the Adams-Bashforth-Moulton method.
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								 [end_description]
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								 Copyright 2011-2012 Karsten Ahnert
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								 Copyright 2011-2013 Mario Mulansky
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								 Copyright 2012 Christoph Koke
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								 Distributed under the Boost Software License, Version 1.0.
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								 (See accompanying file LICENSE_1_0.txt or
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								 copy at http://www.boost.org/LICENSE_1_0.txt)
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								 */
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								#ifndef BOOST_NUMERIC_ODEINT_STEPPER_ADAMS_MOULTON_HPP_INCLUDED
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								#define BOOST_NUMERIC_ODEINT_STEPPER_ADAMS_MOULTON_HPP_INCLUDED
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								#include <boost/numeric/odeint/util/bind.hpp>
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								#include <boost/numeric/odeint/algebra/range_algebra.hpp>
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								#include <boost/numeric/odeint/algebra/default_operations.hpp>
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								#include <boost/numeric/odeint/algebra/algebra_dispatcher.hpp>
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								#include <boost/numeric/odeint/algebra/operations_dispatcher.hpp>
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								#include <boost/numeric/odeint/util/state_wrapper.hpp>
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								#include <boost/numeric/odeint/util/is_resizeable.hpp>
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								#include <boost/numeric/odeint/util/resizer.hpp>
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								#include <boost/numeric/odeint/stepper/stepper_categories.hpp>
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								#include <boost/numeric/odeint/stepper/runge_kutta4_classic.hpp>
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								#include <boost/numeric/odeint/stepper/detail/adams_moulton_call_algebra.hpp>
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								#include <boost/numeric/odeint/stepper/detail/adams_moulton_coefficients.hpp>
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								#include <boost/numeric/odeint/stepper/detail/rotating_buffer.hpp>
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								namespace boost {
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								namespace numeric {
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								namespace odeint {
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								/*
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								 * Static implicit Adams-Moulton multistep-solver without step size control and without dense output.
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								 */
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								template<
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								size_t Steps ,
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								class State ,
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								class Value = double ,
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								class Deriv = State ,
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								class Time = Value ,
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								class Algebra = typename algebra_dispatcher< State >::algebra_type ,
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								class Operations = typename operations_dispatcher< State >::operations_type ,
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								class Resizer = initially_resizer
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								>
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								class adams_moulton
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								{
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								private:
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								public :
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								    typedef State state_type;
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								    typedef state_wrapper< state_type > wrapped_state_type;
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								    typedef Value value_type;
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								    typedef Deriv deriv_type;
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								    typedef state_wrapper< deriv_type > wrapped_deriv_type;
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								    typedef Time time_type;
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								    typedef Algebra algebra_type;
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								    typedef Operations operations_type;
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								    typedef Resizer resizer_type;
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								    typedef stepper_tag stepper_category;
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								    typedef adams_moulton< Steps , State , Value , Deriv , Time , Algebra , Operations , Resizer > stepper_type;
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								    static const size_t steps = Steps;
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								    typedef unsigned short order_type;
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								    static const order_type order_value = steps + 1;
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								    typedef detail::rotating_buffer< wrapped_deriv_type , steps > step_storage_type;
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								    adams_moulton( )
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								    : m_coefficients() , m_dxdt() , m_resizer() ,
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								      m_algebra_instance() , m_algebra( m_algebra_instance )
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								    { }
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								    adams_moulton( algebra_type &algebra )
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								    : m_coefficients() , m_dxdt() , m_resizer() ,
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								      m_algebra_instance() , m_algebra( algebra )
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								    { }
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								    adams_moulton& operator=( const adams_moulton &stepper )
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								    {
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								        m_dxdt = stepper.m_dxdt;
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								        m_resizer = stepper.m_resizer;
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								        m_algebra = stepper.m_algebra;
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								        return *this;
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								    }
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								    order_type order( void ) const { return order_value; }
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								    /*
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								     * Version 1 : do_step( system , x , t , dt , buf );
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								     *
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								     * solves the forwarding problem
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								     */
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								    template< class System , class StateInOut , class StateIn , class ABBuf >
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								    void do_step( System system , StateInOut &x , StateIn const & pred , time_type t , time_type dt , const ABBuf &buf )
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								    {
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								        do_step( system , x , pred , t , x , dt , buf );
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								    }
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								    template< class System , class StateInOut , class StateIn , class ABBuf >
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								    void do_step( System system , const StateInOut &x , StateIn const & pred , time_type t , time_type dt , const ABBuf &buf )
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								    {
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								        do_step( system , x , pred , t , x , dt , buf );
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								    }
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								    /*
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								     * Version 2 : do_step( system , in , t , out , dt , buf );
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								     *
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								     * solves the forwarding problem
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								     */
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								    template< class System , class StateIn , class PredIn , class StateOut , class ABBuf >
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								    void do_step( System system , const StateIn &in , const PredIn &pred , time_type t , StateOut &out , time_type dt , const ABBuf &buf )
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								    {
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								        do_step_impl( system , in , pred , t , out , dt , buf );
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								    }
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								    template< class System , class StateIn , class PredIn , class StateOut , class ABBuf >
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								    void do_step( System system , const StateIn &in , const PredIn &pred , time_type t , const StateOut &out , time_type dt , const ABBuf &buf )
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								    {
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								        do_step_impl( system , in , pred , t , out , dt , buf );
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								    }
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								    template< class StateType >
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								    void adjust_size( const StateType &x )
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								    {
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								        resize_impl( x );
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								    }
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								    algebra_type& algebra()
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								    {   return m_algebra; }
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								    const algebra_type& algebra() const
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								    {   return m_algebra; }
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								private:
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								    template< class System , class StateIn , class PredIn , class StateOut , class ABBuf >
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								    void do_step_impl( System system , const StateIn &in , const PredIn &pred , time_type t , StateOut &out , time_type dt , const ABBuf &buf )
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								    {
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								        typename odeint::unwrap_reference< System >::type &sys = system;
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								        m_resizer.adjust_size( in , detail::bind( &stepper_type::template resize_impl<StateIn> , detail::ref( *this ) , detail::_1 ) );
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								        sys( pred , m_dxdt.m_v , t );
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								        detail::adams_moulton_call_algebra< steps , algebra_type , operations_type >()( m_algebra , in , out , m_dxdt.m_v , buf , m_coefficients , dt );
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								    }
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								    template< class StateIn >
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								    bool resize_impl( const StateIn &x )
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								    {
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								        return adjust_size_by_resizeability( m_dxdt , x , typename is_resizeable<deriv_type>::type() );
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								    }
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								    const detail::adams_moulton_coefficients< value_type , steps > m_coefficients;
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								    wrapped_deriv_type m_dxdt;
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								    resizer_type m_resizer;
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								protected:
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								    algebra_type m_algebra_instance;
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								    algebra_type &m_algebra;
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								};
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								} // odeint
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								} // numeric
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								} // boost
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								#endif // BOOST_NUMERIC_ODEINT_STEPPER_ADAMS_MOULTON_HPP_INCLUDED
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