G4PSCylinderSurfaceCurrent.cc

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00026 //
00027 // $Id$
00028 //
00029 // G4PSCylinderSurfaceCurrent
00030 #include "G4PSCylinderSurfaceCurrent.hh"
00031 
00032 #include "G4SystemOfUnits.hh"
00033 #include "G4StepStatus.hh"
00034 #include "G4Track.hh"
00035 #include "G4VSolid.hh"
00036 #include "G4VPhysicalVolume.hh"
00037 #include "G4VPVParameterisation.hh"
00038 #include "G4UnitsTable.hh"
00039 #include "G4GeometryTolerance.hh"
00041 // (Description)
00042 //   This is a primitive scorer class for scoring only Surface Current.
00043 //  Current version assumes only for G4Tubs shape. 
00044 //
00045 // Surface is defined at the inner surface of the tube.
00046 // Direction                   R    R+dR
00047 //   0  IN || OUT            ->|<-  |
00048 //   1  IN                   ->|    |
00049 //   2  OUT                    |<-  |
00050 //
00051 // Created: 2007-03-21  Tsukasa ASO
00052 // 2010-07-22   Introduce Unit specification.
00053 // 
00055 
00056 
00057 G4PSCylinderSurfaceCurrent::G4PSCylinderSurfaceCurrent(G4String name, 
00058                                          G4int direction, G4int depth)
00059   :G4VPrimitiveScorer(name,depth),HCID(-1),fDirection(direction),
00060    weighted(true),divideByArea(true)
00061 {
00062     DefineUnitAndCategory();
00063     SetUnit("percm2");
00064 }
00065 
00066 G4PSCylinderSurfaceCurrent::G4PSCylinderSurfaceCurrent(G4String name, 
00067                                                        G4int direction, 
00068                                                        const G4String& unit,
00069                                                        G4int depth)
00070   :G4VPrimitiveScorer(name,depth),HCID(-1),fDirection(direction),
00071    weighted(true),divideByArea(true)
00072 {
00073     DefineUnitAndCategory();
00074     SetUnit(unit);
00075 }
00076 
00077 G4PSCylinderSurfaceCurrent::~G4PSCylinderSurfaceCurrent()
00078 {;}
00079 
00080 G4bool G4PSCylinderSurfaceCurrent::ProcessHits(G4Step* aStep,G4TouchableHistory*)
00081 {
00082   G4StepPoint* preStep = aStep->GetPreStepPoint();
00083   G4VPhysicalVolume* physVol = preStep->GetPhysicalVolume();
00084   G4VPVParameterisation* physParam = physVol->GetParameterisation();
00085   G4VSolid * solid = 0;
00086   if(physParam)
00087   { // for parameterized volume
00088     G4int idx = ((G4TouchableHistory*)(aStep->GetPreStepPoint()->GetTouchable()))
00089                 ->GetReplicaNumber(indexDepth);
00090     solid = physParam->ComputeSolid(idx, physVol);
00091     solid->ComputeDimensions(physParam,idx,physVol);
00092   }
00093   else
00094   { // for ordinary volume
00095     solid = physVol->GetLogicalVolume()->GetSolid();
00096   }
00097 
00098   G4Tubs* tubsSolid = (G4Tubs*)(solid);
00099 
00100   G4int dirFlag =IsSelectedSurface(aStep,tubsSolid);
00101   G4cout << " pos " << preStep->GetPosition() <<" dirFlag " << G4endl;
00102   if ( dirFlag > 0 ) {
00103     if ( fDirection == fCurrent_InOut || fDirection == dirFlag ){
00104       G4TouchableHandle theTouchable = preStep->GetTouchableHandle();
00105       //
00106       G4double current = 1.0;
00107       if ( weighted ) current = preStep->GetWeight(); // Current (Particle Weight)
00108       //
00109       if ( divideByArea ){
00110         G4double square = 2.*tubsSolid->GetZHalfLength()
00111           *tubsSolid->GetInnerRadius()* tubsSolid->GetDeltaPhiAngle()/radian;
00112         current = current/square;  // Current normalized by Area
00113       }
00114 
00115       G4int index = GetIndex(aStep);
00116       EvtMap->add(index,current);
00117     }
00118 
00119   }
00120 
00121   return TRUE;
00122 }
00123 
00124 G4int G4PSCylinderSurfaceCurrent::IsSelectedSurface(G4Step* aStep, G4Tubs* tubsSolid){
00125 
00126   G4TouchableHandle theTouchable = 
00127     aStep->GetPreStepPoint()->GetTouchableHandle();
00128   G4double kCarTolerance = G4GeometryTolerance::GetInstance()->GetSurfaceTolerance();  
00129 
00130   if (aStep->GetPreStepPoint()->GetStepStatus() == fGeomBoundary ){
00131     // Entering Geometry
00132     G4ThreeVector stppos1= aStep->GetPreStepPoint()->GetPosition();
00133     G4ThreeVector localpos1 = 
00134       theTouchable->GetHistory()->GetTopTransform().TransformPoint(stppos1);
00135     if ( std::fabs(localpos1.z()) > tubsSolid->GetZHalfLength() ) return -1;
00136     G4double localR2 = localpos1.x()*localpos1.x()+localpos1.y()*localpos1.y();
00137     G4double InsideRadius = tubsSolid->GetInnerRadius();
00138     if (localR2 > (InsideRadius-kCarTolerance)*(InsideRadius-kCarTolerance)
00139         &&localR2 < (InsideRadius+kCarTolerance)*(InsideRadius+kCarTolerance)){
00140       return fCurrent_In;
00141     }
00142   }
00143 
00144   if (aStep->GetPostStepPoint()->GetStepStatus() == fGeomBoundary ){
00145     // Exiting Geometry
00146     G4ThreeVector stppos2= aStep->GetPostStepPoint()->GetPosition();
00147     G4ThreeVector localpos2 = 
00148       theTouchable->GetHistory()->GetTopTransform().TransformPoint(stppos2);
00149     if ( std::fabs(localpos2.z()) > tubsSolid->GetZHalfLength() ) return -1;
00150     G4double localR2 = localpos2.x()*localpos2.x()+localpos2.y()*localpos2.y();
00151     G4double InsideRadius = tubsSolid->GetInnerRadius();
00152     if (localR2 > (InsideRadius-kCarTolerance)*(InsideRadius-kCarTolerance)
00153         &&localR2 < (InsideRadius+kCarTolerance)*(InsideRadius+kCarTolerance)){
00154       return fCurrent_Out;
00155     }
00156   }
00157 
00158   return -1;
00159 }
00160 
00161 void G4PSCylinderSurfaceCurrent::Initialize(G4HCofThisEvent* HCE)
00162 {
00163   EvtMap = new G4THitsMap<G4double>(detector->GetName(), GetName());
00164   if ( HCID < 0 ) HCID = GetCollectionID(0);
00165   HCE->AddHitsCollection(HCID, (G4VHitsCollection*)EvtMap);
00166 }
00167 
00168 void G4PSCylinderSurfaceCurrent::EndOfEvent(G4HCofThisEvent*)
00169 {;}
00170 
00171 void G4PSCylinderSurfaceCurrent::clear(){
00172   EvtMap->clear();
00173 }
00174 
00175 void G4PSCylinderSurfaceCurrent::DrawAll()
00176 {;}
00177 
00178 void G4PSCylinderSurfaceCurrent::PrintAll()
00179 {
00180   G4cout << " MultiFunctionalDet  " << detector->GetName() << G4endl;
00181   G4cout << " PrimitiveScorer " << GetName() <<G4endl; 
00182   G4cout << " Number of entries " << EvtMap->entries() << G4endl;
00183   std::map<G4int,G4double*>::iterator itr = EvtMap->GetMap()->begin();
00184   for(; itr != EvtMap->GetMap()->end(); itr++) {
00185     G4cout << "  copy no.: " << itr->first
00186            << "  current  : " ;
00187     if ( divideByArea ) {
00188         G4cout << *(itr->second)/GetUnitValue() 
00189                << " ["<<GetUnit()<<"]";
00190     } else {
00191         G4cout << *(itr->second) << " [tracks]";
00192     }
00193     G4cout << G4endl;
00194   }
00195 }
00196 
00197 void G4PSCylinderSurfaceCurrent::SetUnit(const G4String& unit)
00198 {
00199     if ( divideByArea ) {
00200         CheckAndSetUnit(unit,"Per Unit Surface");
00201     } else {
00202         if (unit == "" ){
00203             unitName = unit;
00204             unitValue = 1.0;
00205         }else{
00206             G4String msg = "Invalid unit ["+unit+"] (Current  unit is [" +GetUnit()+"] ) for " + GetName();
00207             G4Exception("G4PSCylinderSurfaceCurrent::SetUnit","DetPS0002",
00208             JustWarning,msg);
00209         }
00210     }
00211 }
00212 
00213 void G4PSCylinderSurfaceCurrent::DefineUnitAndCategory(){
00214    // Per Unit Surface
00215    new G4UnitDefinition("percentimeter2","percm2","Per Unit Surface",(1./cm2));
00216    new G4UnitDefinition("permillimeter2","permm2","Per Unit Surface",(1./mm2));
00217    new G4UnitDefinition("permeter2","perm2","Per Unit Surface",(1./m2));
00218 }
00219 

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