// This code implementation is the intellectual property of // the GEANT4 collaboration. // // By copying, distributing or modifying the Program (or any work // based on the Program) you indicate your acceptance of this statement, // and all its terms. // // $Id: G4PropagatorInField.icc,v 1.8 2000/05/16 17:39:25 japost Exp $ // GEANT4 tag $Name: geant4-02-00 $ // // // ------------------------------------------------------------------------ // GEANT 4 include file implementation // // For information related to this code contact: // CERN, IT Division (formely CN), ASD group // ------------------------------------------------------------------------ // // 25.10.96 John Apostolakis, design and implementation // 25.03.97 John Apostolakis, adaptation for G4Transportation and cleanup // // To create an object, must have // an object that calculates the Curved paths // the navigator to find (linear) intersections // and ?? also must know the value of the maximum displacement allowed // inline G4PropagatorInField:: G4PropagatorInField( G4Navigator *theNavigator, G4FieldManager *detectorFieldMgr) : fNavigator(theNavigator), fDetectorFieldMgr(detectorFieldMgr), fmax_loop_count(10000), End_PointAndTangent(G4ThreeVector(0.,0.,0.), G4ThreeVector(0.,0.,0.),0.0,0.0), fDelta_One_Step_Value(fDefault_Delta_One_Step_Value), fDelta_Intersection_Val(fDefault_Delta_Intersection_Val), fVerboseLevel(0) { // this->fChordFinder = new G4ChordFinder( (G4MagneticField*)0, 1e-6 ); fNoZeroStep=0; fThresholdNo_ZeroSteps= 2; // fMidPoint_CurveLen_of_LastAttempt= -1; fFull_CurveLen_of_LastAttempt= -1; fLast_ProposedStepLength= -1; } inline G4ChordFinder* G4PropagatorInField::GetChordFinder() { // Now only the "Chord Finder" of the global Field Mgr is used // ... return fDetectorFieldMgr->GetChordFinder(); } inline void G4PropagatorInField::SetChargeMomentumMass( G4double Charge, // in e+ units G4double Momentum, // in GeV/c G4double Mass) // in ? units { GetChordFinder()->SetChargeMomentumMass(Charge, Momentum, Mass); } // Obtain the final space-point and velocity (normal) at the end of the Step // inline G4ThreeVector G4PropagatorInField::EndPosition() { return End_PointAndTangent.Position(); } inline G4ThreeVector G4PropagatorInField::EndMomentumDir() { return End_PointAndTangent.GetMomentumDir(); } inline G4double G4PropagatorInField::GetEpsilonStep() { return fEpsilonStep; } inline void G4PropagatorInField::SetEpsilonStep(G4double newEps) { fEpsilonStep=newEps; } inline G4bool G4PropagatorInField::IsParticleLooping() { return fParticleIsLooping; } inline G4int G4PropagatorInField::GetMaxLoopCount() { return fmax_loop_count; } inline void G4PropagatorInField::SetMaxLoopCount(G4int new_max) { fmax_loop_count= new_max; } // inline void G4PropagatorInField::SetChordFinder(G4ChordFinder* newCF) inline G4double G4PropagatorInField::GetDeltaIntersection() { return fDelta_Intersection_Val; } inline G4double G4PropagatorInField:: GetDeltaOneStep() { return fDelta_One_Step_Value; } // void SetDeltaIntersection(G4double); inline void G4PropagatorInField::SetAccuraciesWithDeltaOneStep(G4double valDeltaOneStep) { fDelta_One_Step_Value= valDeltaOneStep; fDelta_Intersection_Val = 0.4 * fDelta_One_Step_Value; } inline void G4PropagatorInField::SetDeltaOneStep(G4double valDeltaOneStep) { fDelta_One_Step_Value= valDeltaOneStep; } inline void G4PropagatorInField::SetDeltaIntersection(G4double valDeltaIntersection) { fDelta_Intersection_Val = valDeltaIntersection; } inline G4int G4PropagatorInField::SetVerboseLevel( G4int Verbose ) { return fVerboseLevel=Verbose; } inline G4int G4PropagatorInField::Verbose() { return fVerboseLevel; } inline G4FieldTrack G4PropagatorInField::GetEndState() { return End_PointAndTangent; }