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			159 lines
		
	
	
		
			4.5 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
		
		
			
		
	
	
			159 lines
		
	
	
		
			4.5 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
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								/*
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								 * two_dimensional_phase_lattice.cpp
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								 *
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								 * This example show how one can use matrices as state types in odeint.
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								 *
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								 * Copyright 2011-2012 Karsten Ahnert
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								 * Copyright 2011-2013 Mario Mulansky
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								 * Distributed under the Boost Software License, Version 1.0. (See
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								 * accompanying file LICENSE_1_0.txt or copy at
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								 * http://www.boost.org/LICENSE_1_0.txt)
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								 */
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								#include <iostream>
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								#include <map>
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								#include <string>
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								#include <fstream>
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								#ifndef M_PI //not there on windows
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								#define M_PI 3.1415927 //...
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								#endif
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								#include <boost/numeric/odeint.hpp>
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								using namespace std;
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								using namespace boost::numeric::odeint;
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								//[ two_dimensional_phase_lattice_definition
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								typedef boost::numeric::ublas::matrix< double > state_type;
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								struct two_dimensional_phase_lattice
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								{
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								    two_dimensional_phase_lattice( double gamma = 0.5 )
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								    : m_gamma( gamma ) { }
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								    void operator()( const state_type &x , state_type &dxdt , double /* t */ ) const
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								    {
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								        size_t size1 = x.size1() , size2 = x.size2();
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								        for( size_t i=1 ; i<size1-1 ; ++i )
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								        {
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								            for( size_t j=1 ; j<size2-1 ; ++j )
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								            {
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								                dxdt( i , j ) =
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								                        coupling_func( x( i + 1 , j ) - x( i , j ) ) +
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								                        coupling_func( x( i - 1 , j ) - x( i , j ) ) +
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								                        coupling_func( x( i , j + 1 ) - x( i , j ) ) +
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								                        coupling_func( x( i , j - 1 ) - x( i , j ) );
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								            }
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								        }
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								        for( size_t i=0 ; i<x.size1() ; ++i ) dxdt( i , 0 ) = dxdt( i , x.size2() -1 ) = 0.0;
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								        for( size_t j=0 ; j<x.size2() ; ++j ) dxdt( 0 , j ) = dxdt( x.size1() -1 , j ) = 0.0;
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								    }
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								    double coupling_func( double x ) const
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								    {
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								        return sin( x ) - m_gamma * ( 1.0 - cos( x ) );
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								    }
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								    double m_gamma;
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								};
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								//]
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								struct write_for_gnuplot
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								{
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								    size_t m_every , m_count;
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								    write_for_gnuplot( size_t every = 10 )
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								    : m_every( every ) , m_count( 0 ) { }
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								    void operator()( const state_type &x , double t )
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								    {
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								        if( ( m_count % m_every ) == 0 )
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								        {
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								            clog << t << endl;
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								            cout << "sp '-'" << endl;
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								            for( size_t i=0 ; i<x.size1() ; ++i )
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								            {
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								                for( size_t j=0 ; j<x.size2() ; ++j )
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								                {
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								                    cout << i << "\t" << j << "\t" << sin( x( i , j ) ) << "\n";
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								                }
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								                cout << "\n";
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								            }
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								            cout << "e" << endl;
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								        }
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								        ++m_count;
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								    }
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								};
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								class write_snapshots
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								{
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								public:
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								    typedef std::map< size_t , std::string > map_type;
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								    write_snapshots( void ) : m_count( 0 ) { }
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								    void operator()( const state_type &x , double t )
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								    {
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								        map< size_t , string >::const_iterator it = m_snapshots.find( m_count );
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								        if( it != m_snapshots.end() )
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								        {
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								            ofstream fout( it->second.c_str() );
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								            for( size_t i=0 ; i<x.size1() ; ++i )
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								            {
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								                for( size_t j=0 ; j<x.size2() ; ++j )
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								                {
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								                    fout << i << "\t" << j << "\t" << x( i , j ) << "\t" << sin( x( i , j ) ) << "\n";
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								                }
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								                fout << "\n";
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								            }
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								        }
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								        ++m_count;
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								    }
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								    map_type& snapshots( void ) { return m_snapshots; }
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								    const map_type& snapshots( void ) const { return m_snapshots; }
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								private:
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								    size_t m_count;
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								    map_type m_snapshots;
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								};
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								int main( int argc , char **argv )
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								{
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								    size_t size1 = 128 , size2 = 128;
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								    state_type x( size1 , size2 , 0.0 );
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								    for( size_t i=(size1/2-10) ; i<(size1/2+10) ; ++i )
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								        for( size_t j=(size2/2-10) ; j<(size2/2+10) ; ++j )
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								            x( i , j ) = static_cast<double>( rand() ) / RAND_MAX * 2.0 * M_PI;
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								    write_snapshots snapshots;
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								    snapshots.snapshots().insert( make_pair( size_t( 0 ) , string( "lat_0000.dat" ) ) );
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								    snapshots.snapshots().insert( make_pair( size_t( 100 ) , string( "lat_0100.dat" ) ) );
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								    snapshots.snapshots().insert( make_pair( size_t( 1000 ) , string( "lat_1000.dat" ) ) );
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								    observer_collection< state_type , double > obs;
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								    obs.observers().push_back( write_for_gnuplot( 10 ) );
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								    obs.observers().push_back( snapshots );
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								    cout << "set term x11" << endl;
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								    cout << "set pm3d map" << endl;
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								    integrate_const( runge_kutta4<state_type>() , two_dimensional_phase_lattice( 1.2 ) ,
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								                     x , 0.0 , 1001.0 , 0.1 , boost::ref( obs ) );
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								    // controlled steppers work only after ublas bugfix
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								    //integrate_const( make_dense_output< runge_kutta_dopri5< state_type > >( 1E-6 , 1E-6 ) , two_dimensional_phase_lattice( 1.2 ) ,
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								    //        x , 0.0 , 1001.0 , 0.1 , boost::ref( obs ) );
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								    return 0;
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								}
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