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geant4/examples/extended/runAndEvent/RE02/include/RE02NestedPhantomParameterisation.hh
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//
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// * technical work of the GEANT4 collaboration. *
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//
//
// $Id: RE02NestedPhantomParameterisation.hh,v 1.2 2006/12/13 15:42:45 gunter Exp $
// GEANT4 tag $Name: geant4-09-01 $
//
// class G4VNestedParameterisation
//
// Class description:
//
// Base class for parameterisations that use information from the parent
// volume to compute the material of a copy/instance of this volume.
// This is in addition to using the current replication number.
//
// Notes:
// - Such a volume can be nested inside a placement volume or a parameterised
// volume.
// - The user can modify the solid type, size or transformation using only
// the replication number of this parameterised volume.
// He/she is NOT allowed to change these attributes using information of
// parent volumes - otherwise incorrect results will occur.
// Also note that the usual restrictions apply:
// - the mother volume, in which these copies are placed, must always be
// of the same dimensions
// History:
// 24.02.05 - J.Apostolakis - First created version.
// --------------------------------------------------------------------
#ifndef RE02NESTEDPARAMETERISATION_HH
#define RE02NESTEDPARAMETERISATION_HH
#include "G4Types.hh"
#include "G4VNestedParameterisation.hh"
#include "G4ThreeVector.hh"
#include <vector>
class G4VPhysicalVolume;
class G4VTouchable;
class G4VSolid;
class G4Material;
// CSG Entities which may be parameterised/replicated
//
class G4Box;
class G4Tubs;
class G4Trd;
class G4Trap;
class G4Cons;
class G4Sphere;
class G4Orb;
class G4Torus;
class G4Para;
class G4Polycone;
class G4Polyhedra;
class G4Hype;
class RE02NestedPhantomParameterisation: public G4VNestedParameterisation
{
public: // with description
RE02NestedPhantomParameterisation(const G4ThreeVector& voxelSize,
G4int nz,
std::vector<G4Material*>& mat);
virtual ~RE02NestedPhantomParameterisation();
// Methods required in derived classes
// -----------------------------------
virtual G4Material* ComputeMaterial(G4VPhysicalVolume *currentVol,
const G4int repNo,
const G4VTouchable *parentTouch=0
);
// Required method, as it is the reason for this class.
// Must cope with parentTouch=0 for navigator's SetupHierarchy
virtual G4int GetNumberOfMaterials() const;
virtual G4Material* GetMaterial(G4int idx) const;
// Needed to define materials for instances of Nested Parameterisation
// Current convention: each call should return the materials
// of all instances with the same mother/ancestor volume.
virtual void ComputeTransformation(const G4int no,
G4VPhysicalVolume *currentPV) const;
// Methods optional in derived classes
// -----------------------------------
// Additional standard Parameterisation methods,
// which can be optionally defined, in case solid is used.
virtual void ComputeDimensions(G4Box &,
const G4int,
const G4VPhysicalVolume *) const;
private: // Dummy declarations to get rid of warnings ...
void ComputeDimensions (G4Trd&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Trap&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Cons&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Sphere&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Orb&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Torus&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Para&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Hype&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Tubs&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Polycone&,const G4int,const G4VPhysicalVolume*)
const {}
void ComputeDimensions (G4Polyhedra&,const G4int,const G4VPhysicalVolume*)
const {}
private:
G4double fdX,fdY,fdZ;
G4int fNz;
//
std::vector<G4double> fpZ;
std::vector<G4Material*> fmat;
};
#endif