Geant4 10.7.0
Toolkit for the simulation of the passage of particles through matter
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G4LogLogInterpolation.cc
Go to the documentation of this file.
1//
2// ********************************************************************
3// * License and Disclaimer *
4// * *
5// * The Geant4 software is copyright of the Copyright Holders of *
6// * the Geant4 Collaboration. It is provided under the terms and *
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14// * regarding this software system or assume any liability for its *
15// * use. Please see the license in the file LICENSE and URL above *
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17// * *
18// * This code implementation is the result of the scientific and *
19// * technical work of the GEANT4 collaboration. *
20// * By using, copying, modifying or distributing the software (or *
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24// ********************************************************************
25//
26//
27//
28// Author: Maria Grazia Pia ([email protected])
29// Sebastian Incerti ([email protected])
30// Nicolas A. Karakatsanis ([email protected])
31// History:
32// -----------
33// 31 Jul 2001 MGP Created
34// 27 Jun 2008 SI Add check to avoid FPE errors
35// 08 Dec 2008 NAK Log-Log interpolation math formula streamlined, self-test function
36// 14 Jun 2008 NAK New implementation for log-log interpolation after directly loading
37// logarithmic values from G4EMLOW dataset
38// -------------------------------------------------------------------
39
41
42// Constructor
43
45{ }
46
47// Destructor
48
50{ }
51
53{ return new G4LogLogInterpolation; }
54
55
57 const G4DataVector& points,
58 const G4DataVector& data) const
59{
60 //G4cout << "G4LogLogInterpolation is performed (2 arguments) " << G4endl;
61 G4int nBins = data.size() - 1;
62//G4double oldresult = 0.;
63 G4double value = 0.;
64 if (x < points[0])
65 {
66 value = 0.;
67 }
68 else if (bin < nBins)
69 {
70 G4double e1 = points[bin];
71 G4double e2 = points[bin+1];
72 G4double d1 = data[bin];
73 G4double d2 = data[bin+1];
74// Check of e1, e2, d1 and d2 values to avoid floating-point errors when estimating the interpolated value below -- S.I., Jun. 2008
75 if ((d1 > 0.) && (d2 > 0.) && (e1 > 0.) && (e2 > 0.))
76 {
77// Streamline the Log-Log Interpolation formula in order to reduce the required number of log10() function calls
78// Variable oldresult contains the result of old implementation of Log-Log interpolation -- M.G.P. Jun. 2001
79// oldresult = (std::log10(d1)*std::log10(e2/x) + std::log10(d2)*std::log10(x/e1)) / std::log10(e2/e1);
80// oldresult = std::pow(10.,oldresult);
81// Variable value contains the result of new implementation, after streamlining the math operation -- N.A.K. Oct. 2008
82 value = std::log10(d1)+(std::log10(d2/d1)/std::log10(e2/e1)*std::log10(x/e1));
83 value = std::pow(10.,value);
84// Test of the new implementation result (value variable) against the old one (oldresult) -- N.A.K. Dec. 2008
85// G4double diffResult = value - oldresult;
86// G4double relativeDiff = 1e-11;
87// Comparison of the two values based on a max allowable relative difference
88// if ( std::fabs(diffResult) > relativeDiff*std::fabs(oldresult) )
89// {
90// Abort comparison when at least one of two results is infinite
91// if ((!std::isinf(oldresult)) && (!std::isinf(value)))
92// {
93// G4cout << "G4LogLogInterpolation> Old Interpolated Value is:" << oldresult << G4endl;
94// G4cout << "G4LogLogInterpolation> New Interpolated Value is:" << value << G4endl << G4endl;
95// G4cerr << "G4LogLogInterpolation> Error in Interpolation:" << G4endl;
96// G4cerr << "The difference between new and old interpolated value is:" << diffResult << G4endl << G4endl;
97// }
98// }
99 }
100 else value = 0.;
101 }
102 else
103 {
104 value = data[nBins];
105 }
106 return value;
107}
108
109
110// Nicolas A. Karakatsanis: New implementation of log-log interpolation after directly loading
111// logarithmic values from G4EMLOW dataset
112
114 const G4DataVector& points,
115 const G4DataVector& data,
116 const G4DataVector& log_points,
117 const G4DataVector& log_data) const
118{
119 //G4cout << "G4LogLogInterpolation is performed (4 arguments) " << G4endl;
120 G4int nBins = data.size() - 1;
121 G4double value = 0.;
122 G4double log_x = std::log10(x);
123 if (x < points[0])
124 {
125 value = 0.;
126 }
127 else if (bin < nBins)
128 {
129 G4double log_e1 = log_points[bin];
130 G4double log_e2 = log_points[bin+1];
131 G4double log_d1 = log_data[bin];
132 G4double log_d2 = log_data[bin+1];
133
134 //G4cout << "x = " << x << " , logx = " << log_x << " , bin = " << bin << G4endl;
135 //G4cout << "e1 = " << points[bin] << " d1 = " << data[bin] << G4endl;
136 //G4cout << "e2 = " << points[bin+1] << " d2 = " << data[bin+1] << G4endl;
137 //G4cout << "loge1 = " << log_e1 << " logd1 = " << log_d1 << G4endl;
138 //G4cout << "loge2 = " << log_e2 << " logd2 = " << log_d2 << G4endl;
139
140// Values e1, e2, d1 and d2 are the log values of the corresponding
141// original energy and data values. Simple linear interpolation performed
142// on loagarithmic data should be equivalent to log-log interpolation
143 value = log_d1 + (log_d2 - log_d1)*(log_x - log_e1)/(log_e2 - log_e1);
144
145// Delogarithmize to obtain interpolated value
146 value = std::pow(10.,value);
147 }
148 else
149 {
150 value = data[nBins];
151 }
152 return value;
153}
double G4double
Definition: G4Types.hh:83
int G4int
Definition: G4Types.hh:85
virtual G4VDataSetAlgorithm * Clone() const
G4double Calculate(G4double point, G4int bin, const G4DataVector &energies, const G4DataVector &data) const