source: trunk/source/geometry/magneticfield/src/G4RKG3_Stepper.cc @ 1340

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27// $Id: G4RKG3_Stepper.cc,v 1.17 2010/07/23 14:13:49 tnikitin Exp $
28// GEANT4 tag $Name: field-V09-03-03 $
29//
30// -------------------------------------------------------------------
31
32#include "G4RKG3_Stepper.hh"
33#include "G4LineSection.hh"
34#include "G4Mag_EqRhs.hh"
35
36G4RKG3_Stepper::G4RKG3_Stepper(G4Mag_EqRhs *EqRhs)
37  : G4MagIntegratorStepper(EqRhs,6), hStep(0.), fPtrMagEqOfMot(EqRhs)
38{
39}
40
41G4RKG3_Stepper::~G4RKG3_Stepper()
42{
43}
44
45void G4RKG3_Stepper::Stepper(  const G4double yInput[8],
46                               const G4double dydx[6],
47                                     G4double Step,
48                                     G4double yOut[8],
49                                     G4double yErr[])
50{
51   G4double  B[3];
52   G4int nvar = 6 ;
53   G4int i;
54   G4double  by15 = 1. / 15. ; // was  0.066666666 ;
55
56   G4double yTemp[8], dydxTemp[6], yIn[8] ;
57   //  Saving yInput because yInput and yOut can be aliases for same array
58   for(i=0;i<nvar;i++) yIn[i]=yInput[i];
59   yIn[6] = yInput[6];
60   yIn[7] = yInput[7];
61   G4double h = Step * 0.5; 
62   hStep=Step;
63   // Do two half steps
64
65   StepNoErr(yIn, dydx,h, yTemp,B) ;
66   
67   //Store Bfld for DistChord Calculation
68   for(i=0;i<3;i++)BfldIn[i]=B[i];
69
70   //   RightHandSide(yTemp,dydxTemp) ;
71
72   GetEquationOfMotion()->EvaluateRhsGivenB(yTemp,B,dydxTemp) ; 
73   StepNoErr(yTemp,dydxTemp,h,yOut,B);     
74       
75   // Store midpoint, chord calculation
76                                 
77   fyMidPoint = G4ThreeVector( yTemp[0],  yTemp[1],  yTemp[2]); 
78
79   // Do a full Step
80
81   h *= 2 ;
82   StepNoErr(yIn,dydx,h,yTemp,B); 
83   for(i=0;i<nvar;i++)
84   {
85      yErr[i] = yOut[i] - yTemp[i] ;
86      yOut[i] += yErr[i]*by15 ;          // Provides 5th order of accuracy
87   }
88
89   //Store values for DistChord method
90
91   fyInitial = G4ThreeVector( yIn[0],   yIn[1],   yIn[2]);
92   fpInitial = G4ThreeVector( yIn[3],   yIn[4],   yIn[5]);
93   fyFinal   = G4ThreeVector( yOut[0],  yOut[1],  yOut[2]); 
94 
95   // NormaliseTangentVector( yOut );  // Deleted
96}
97
98// ---------------------------------------------------------------------------
99
100// Integrator for RK from G3 with evaluation of error in solution and delta
101// geometry based on naive similarity with the case of uniform magnetic field.
102// B1[3] is input  and is the first magnetic field values
103// B2[3] is output and is the final magnetic field values.
104
105void G4RKG3_Stepper::StepWithEst( const G4double*,
106                                  const G4double*,
107                                        G4double,
108                                        G4double*,
109                                        G4double&,
110                                        G4double&,
111                                  const G4double*,
112                                        G4double* )
113   
114{
115  G4Exception("G4RKG3_Stepper::StepWithEst()", "ObsoleteMethod",
116              FatalException, "Method no longer used.");
117}
118
119// -----------------------------------------------------------------
120
121
122// Integrator RK Stepper from G3 with only two field evaluation per Step.
123// It is used in propagation initial Step by small substeps after solution
124// error and delta geometry considerations. B[3] is magnetic field which
125// is passed from substep to substep.
126
127void G4RKG3_Stepper::StepNoErr(const G4double tIn[8],
128                               const G4double dydx[6],
129                                     G4double Step,
130                                     G4double tOut[8],
131                                     G4double B[3]      )     // const
132   
133{ 
134 
135  //  Copy and edit the routine above, to delete alpha2, beta2, ...
136   G4double K1[7],K2[7],K3[7],K4[7] ;
137   G4double tTemp[8], yderiv[6] ;
138
139  // Need Momentum value to give correct values to the coefficients in equation
140  // Integration on unit velocity, but  tIn[3,4,5] is momentum
141   G4double mom,inverse_mom;
142   G4int i ;
143   const G4double c1=0.5,c2=0.125,c3=1./6.;
144 
145   // GetEquationOfMotion()->EvaluateRhsReturnB(tIn,dydx,B1) ;
146   // Correction for momentum not a velocity
147   // Need the protection !!! must be not zero
148     mom=std::sqrt(tIn[3]*tIn[3]+tIn[4]*tIn[4]+tIn[5]*tIn[5]); 
149     inverse_mom=1./mom;   
150   for(i=0;i<3;i++)
151   {
152      K1[i] = Step * dydx[i+3]*inverse_mom;
153      tTemp[i] = tIn[i] + Step*(c1*tIn[i+3]*inverse_mom + c2*K1[i]) ;
154      tTemp[i+3] = tIn[i+3] + c1*K1[i]*mom ;
155     
156   }
157   
158   GetEquationOfMotion()->EvaluateRhsReturnB(tTemp,yderiv,B) ;
159   
160     
161   for(i=0;i<3;i++)
162   {
163      K2[i] = Step * yderiv[i+3]*inverse_mom;
164      tTemp[i+3] = tIn[i+3] + c1*K2[i]*mom ;
165   }
166   
167   //  Given B, calculate yderiv !
168   GetEquationOfMotion()->EvaluateRhsGivenB(tTemp,B,yderiv) ; 
169 
170   for(i=0;i<3;i++)
171   {
172      K3[i] = Step * yderiv[i+3]*inverse_mom;
173      tTemp[i] = tIn[i] + Step*(tIn[i+3]*inverse_mom + c1*K3[i]) ;
174      tTemp[i+3] = tIn[i+3] + K3[i]*mom ;
175   }
176   
177
178   //  Calculates y-deriv(atives) & returns B too!
179   GetEquationOfMotion()->EvaluateRhsReturnB(tTemp,yderiv,B) ; 
180   
181
182   for(i=0;i<3;i++)        // Output trajectory vector
183   {
184      K4[i] = Step * yderiv[i+3]*inverse_mom;
185      tOut[i] = tIn[i] + Step*(tIn[i+3]*inverse_mom+ (K1[i] + K2[i] + K3[i])*c3) ;
186      tOut[i+3] = tIn[i+3] + mom*(K1[i] + 2*K2[i] + 2*K3[i] +K4[i])*c3 ;
187   }
188   tOut[6] = tIn[6];
189   tOut[7] = tIn[7];
190   // NormaliseTangentVector( tOut );
191 
192
193}
194
195
196// ---------------------------------------------------------------------------
197 
198 G4double G4RKG3_Stepper::DistChord()   const 
199 {
200   // Soon: must check whether h/R > 2 pi  !!
201   //  Method below is good only for < 2 pi
202   G4double distChord,distLine;
203   
204   if (fyInitial != fyFinal) {
205      distLine= G4LineSection::Distline(fyMidPoint,fyInitial,fyFinal );
206 
207        distChord = distLine;
208   }else{
209      distChord = (fyMidPoint-fyInitial).mag();
210   }
211 
212 
213   return distChord;
214   
215 }
216
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