Geant4 11.4.0
Toolkit for the simulation of the passage of particles through matter
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nf_integration.h File Reference
#include <nf_utilities.h>
#include <nf_Legendre.h>

Go to the source code of this file.

Macros

#define nf_GnG_adaptiveQuadrature_MaxMaxDepth   20

Typedefs

typedef nfu_status(* nf_GnG_adaptiveQuadrature_callback) (nf_Legendre_GaussianQuadrature_callback integrandFunction, void *argList, double x1, double x2, double *integral)

Functions

nfu_status nf_GnG_adaptiveQuadrature (nf_GnG_adaptiveQuadrature_callback quadratureFunction, nf_Legendre_GaussianQuadrature_callback integrandFunction, void *argList, double x1, double x2, int maxDepth, double tolerance, double *integral, long *evaluations)

Macro Definition Documentation

◆ nf_GnG_adaptiveQuadrature_MaxMaxDepth

#define nf_GnG_adaptiveQuadrature_MaxMaxDepth   20

Definition at line 20 of file nf_integration.h.

Referenced by nf_GnG_adaptiveQuadrature().

Typedef Documentation

◆ nf_GnG_adaptiveQuadrature_callback

typedef nfu_status(* nf_GnG_adaptiveQuadrature_callback) (nf_Legendre_GaussianQuadrature_callback integrandFunction, void *argList, double x1, double x2, double *integral)

Definition at line 22 of file nf_integration.h.

Function Documentation

◆ nf_GnG_adaptiveQuadrature()

nfu_status nf_GnG_adaptiveQuadrature ( nf_GnG_adaptiveQuadrature_callback quadratureFunction,
nf_Legendre_GaussianQuadrature_callback integrandFunction,
void * argList,
double x1,
double x2,
int maxDepth,
double tolerance,
double * integral,
long * evaluations )

Definition at line 30 of file nf_GnG_adaptiveQuadrature.c.

31 {
32/*
33* See W. Gander and W. Gautschi, "Adaptive quadrature--revisited", BIT 40 (2000), 84-101.
34*/
35 int i1;
36 double estimate = 0., y1, integral_, coarse;
37 nfu_status status = nfu_Okay;
38 nf_GnG_adaptiveQuadrature_info adaptiveQuadrature_info = { nfu_Okay, integrandFunction, argList, quadratureFunction, 0., 0, maxDepth, 0 };
39
40 *integral = 0.;
41 *evaluations = 0;
42 if( x1 == x2 ) return( nfu_Okay );
43
44 if( tolerance < 10 * DBL_EPSILON ) tolerance = 10 * DBL_EPSILON;
46
47 for( i1 = 0; i1 < numberOfInitialPoints; i1++ ) {
48 if( ( status = integrandFunction( x1 + ( x2 - x1 ) * initialPoints[i1], &y1, argList ) ) != nfu_Okay ) return( status );
49 estimate += y1;
50 }
51 if( ( status = quadratureFunction( integrandFunction, argList, x1, x2, &integral_ ) ) != nfu_Okay ) return( status );
52 estimate = 0.5 * ( estimate * ( x2 - x1 ) / numberOfInitialPoints + integral_ );
53 if( estimate == 0. ) estimate = x2 - x1;
54 adaptiveQuadrature_info.estimate = tolerance * estimate / DBL_EPSILON;
55
56 if( ( status = quadratureFunction( integrandFunction, argList, x1, x2, &coarse ) ) != nfu_Okay ) return( status );
57 integral_ = nf_GnG_adaptiveQuadrature2( &adaptiveQuadrature_info, coarse, x1, x2, 0 );
58
59 for( i1 = 0; i1 < 2; i1++ ) { /* Estimate may be off by more than a factor of 10. Iterate at most 2 times. */
60 if( integral_ == 0. ) break;
61 y1 = integral_ / estimate;
62 if( ( y1 > 0.1 ) && ( y1 < 10. ) ) break;
63
64 estimate = integral_;
65 adaptiveQuadrature_info.estimate = tolerance * integral_ / DBL_EPSILON;
66 *evaluations += adaptiveQuadrature_info.evaluations;
67 adaptiveQuadrature_info.evaluations = 0;
68 integral_ = nf_GnG_adaptiveQuadrature2( &adaptiveQuadrature_info, integral_, x1, x2, 0 );
69 }
70
71 *evaluations += adaptiveQuadrature_info.evaluations;
72 if( adaptiveQuadrature_info.status == nfu_Okay ) *integral = integral_;
73 return( adaptiveQuadrature_info.status );
74}
struct nf_GnG_adaptiveQuadrature_info_s nf_GnG_adaptiveQuadrature_info
#define nf_GnG_adaptiveQuadrature_MaxMaxDepth
@ nfu_Okay
enum nfu_status_e nfu_status
#define DBL_EPSILON
Definition templates.hh:66

Referenced by ptwXY_integrateWithFunction().