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			148 lines
		
	
	
		
			3.2 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
		
		
			
		
	
	
			148 lines
		
	
	
		
			3.2 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
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								/*
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								 libs/numeric/odeint/examples/stochastic_euler.hpp
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								 Copyright 2012 Karsten Ahnert
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								 Copyright 2012 Mario Mulansky
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								 Stochastic euler stepper example and Ornstein-Uhlenbeck process
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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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								#include <vector>
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								#include <iostream>
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								#include <boost/random.hpp>
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								#include <boost/array.hpp>
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								#include <boost/numeric/odeint.hpp>
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								/*
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								//[ stochastic_euler_class_definition
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								template< size_t N > class stochastic_euler
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								{
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								public:
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								    typedef boost::array< double , N > state_type;
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								    typedef boost::array< double , N > deriv_type;
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								    typedef double value_type;
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								    typedef double time_type;
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								    typedef unsigned short order_type;
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								    typedef boost::numeric::odeint::stepper_tag stepper_category;
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								    static order_type order( void ) { return 1; }
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								    // ...
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								};
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								//]
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								*/
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								/*
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								//[ stochastic_euler_do_step
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								template< size_t N > class stochastic_euler
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								{
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								public:
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								    // ...
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								    template< class System >
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								    void do_step( System system , state_type &x , time_type t , time_type dt ) const
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								    {
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								        deriv_type det , stoch ;
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								        system.first( x , det );
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								        system.second( x , stoch );
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								        for( size_t i=0 ; i<x.size() ; ++i )
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								            x[i] += dt * det[i] + sqrt( dt ) * stoch[i];
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								    }
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								};
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								//]
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								*/
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								//[ stochastic_euler_class
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								template< size_t N >
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								class stochastic_euler
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								{
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								public:
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								    typedef boost::array< double , N > state_type;
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								    typedef boost::array< double , N > deriv_type;
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								    typedef double value_type;
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								    typedef double time_type;
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								    typedef unsigned short order_type;
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								    typedef boost::numeric::odeint::stepper_tag stepper_category;
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								    static order_type order( void ) { return 1; }
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								    template< class System >
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								    void do_step( System system , state_type &x , time_type t , time_type dt ) const
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								    {
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								        deriv_type det , stoch ;
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								        system.first( x , det );
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								        system.second( x , stoch );
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								        for( size_t i=0 ; i<x.size() ; ++i )
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								            x[i] += dt * det[i] + sqrt( dt ) * stoch[i];
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								    }
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								};
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								//]
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								//[ stochastic_euler_ornstein_uhlenbeck_def
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								const static size_t N = 1;
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								typedef boost::array< double , N > state_type;
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								struct ornstein_det
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								{
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								    void operator()( const state_type &x , state_type &dxdt ) const
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								    {
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								        dxdt[0] = -x[0];
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								    }
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								};
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								struct ornstein_stoch
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								{
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								    boost::mt19937 &m_rng;
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								    boost::normal_distribution<> m_dist;
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								  ornstein_stoch( boost::mt19937 &rng , double sigma ) : m_rng( rng ) , m_dist( 0.0 , sigma ) { }
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								    void operator()( const state_type &x , state_type &dxdt )
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								    {
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								        dxdt[0] = m_dist( m_rng );
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								    }
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								};
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								//]
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								struct streaming_observer
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								{
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								    template< class State >
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								    void operator()( const State &x , double t ) const
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								    {
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								        std::cout << t << "\t" << x[0] << "\n";
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								    }
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								};
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								int main( int argc , char **argv )
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								{
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								    using namespace std;
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								    using namespace boost::numeric::odeint;
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								    //[ ornstein_uhlenbeck_main
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								    boost::mt19937 rng;
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								    double dt = 0.1;
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								    state_type x = {{ 1.0 }};
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								    integrate_const( stochastic_euler< N >() , make_pair( ornstein_det() , ornstein_stoch( rng , 1.0 ) ),
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								            x , 0.0 , 10.0 , dt , streaming_observer() );
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								    //]
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								    return 0;
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								}
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