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Toolkit for the simulation of the passage of particles through matter
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G4MagIntegratorStepper.hh
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25//
26// $Id$
27//
28//
29// class G4MagIntegratorStepper
30//
31// Class description:
32//
33// Abstract base class for integrator of particle's equation of motion,
34// used in tracking in space dependent magnetic field
35//
36// A Stepper must integrate over NumberOfVariables elements,
37// and also copy (from input to output) any of NoStateVariables
38// not included in the NumberOfVariables.
39//
40// So it is expected that NoStateVariables >= NumberOfVariables
41
42// History:
43// - 15.01.97 J. Apostolakis (J.Apostolakis@cern.ch)
44// --------------------------------------------------------------------
45
46#ifndef G4MAGIntegratorSTEPPER
47#define G4MAGIntegratorSTEPPER
48
49#include "G4Types.hh"
50#include "G4EquationOfMotion.hh"
51
53{
54 public: // with description
55
57 G4int numIntegrationVariables,
58 G4int numStateVariables=12);
60 // Constructor and destructor. No actions.
61
62 virtual void Stepper( const G4double y[],
63 const G4double dydx[],
64 G4double h,
65 G4double yout[],
66 G4double yerr[] ) = 0 ;
67 // The stepper for the Runge Kutta integration.
68 // The stepsize is fixed, with the Step size given by h.
69 // Integrates ODE starting values y[0 to 6].
70 // Outputs yout[] and its estimated error yerr[].
71
72 virtual G4double DistChord() const = 0;
73 // Estimate the maximum distance of a chord from the true path
74 // over the segment last integrated.
75
76 virtual void ComputeRightHandSide( const G4double y[], G4double dydx[] );
77 // Must compute the RightHandSide as in the method below
78 // Optionally can cache the input y[] and the dydx[] values computed.
79
80 inline void NormaliseTangentVector( G4double vec[6] );
81 // Simple utility function to (re)normalise 'unit velocity' vector.
82
83 inline void NormalisePolarizationVector( G4double vec[12] );
84 // Simple utility function to (re)normalise 'unit spin' vector.
85
86 inline void RightHandSide( const double y[], double dydx[] );
87 // Utility method to supply the standard Evaluation of the
88 // Right Hand side of the associated equation.
89
90
92 // Get the number of variables that the stepper will integrate over.
93
94 // void SetNumberOfVariables(G4int newNo); // Dangerous & obsolete ...
95
97 // Get the number of variables of state variables (>= above, integration)
98
99 virtual G4int IntegratorOrder() const = 0;
100 // Returns the order of the integrator
101 // i.e. its error behaviour is of the order O(h^order).
102
104 // As some steppers (eg RKG3) require other methods of Eq_Rhs
105 // this function allows for access to them.
106 inline void SetEquationOfMotion(G4EquationOfMotion* newEquation);
107
108 private:
109
112 // Private copy constructor and assignment operator.
113
114 private:
115
116 G4EquationOfMotion *fEquation_Rhs;
117 const G4int fNoIntegrationVariables; // Number of Variables in integration
118 const G4int fNoStateVariables; // Number required for FieldTrack
119 // const G4int fNumberOfVariables;
120};
121
122#include "G4MagIntegratorStepper.icc"
123
124#endif /* G4MAGIntegratorSTEPPER */
double G4double
Definition: G4Types.hh:64
int G4int
Definition: G4Types.hh:66
virtual void ComputeRightHandSide(const G4double y[], G4double dydx[])
void NormalisePolarizationVector(G4double vec[12])
G4EquationOfMotion * GetEquationOfMotion()
G4int GetNumberOfVariables() const
void NormaliseTangentVector(G4double vec[6])
void RightHandSide(const double y[], double dydx[])
virtual G4double DistChord() const =0
virtual void Stepper(const G4double y[], const G4double dydx[], G4double h, G4double yout[], G4double yerr[])=0
void SetEquationOfMotion(G4EquationOfMotion *newEquation)
G4int GetNumberOfStateVariables() const
virtual G4int IntegratorOrder() const =0