189 lines
5.5 KiB
Plaintext
189 lines
5.5 KiB
Plaintext
//
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// ********************************************************************
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// * DISCLAIMER *
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// * *
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// * The following disclaimer summarizes all the specific disclaimers *
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// * of contributors to this software. The specific disclaimers,which *
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// * govern, are listed with their locations in: *
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// * http://cern.ch/geant4/license *
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// * *
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// * Neither the authors of this software system, nor their employing *
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// * institutes,nor the agencies providing financial support for this *
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// * work make any representation or warranty, express or implied, *
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// * regarding this software system or assume any liability for its *
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// * use. *
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// * *
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// * This code implementation is the intellectual property of the *
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// * GEANT4 collaboration. *
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// * By copying, distributing or modifying the Program (or any work *
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// * based on the Program) you indicate your acceptance of this *
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// * statement, and all its terms. *
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// ********************************************************************
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//
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//
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// $Id: G4PropagatorInField.icc,v 1.18.2.2 2001/06/28 20:18:53 gunter Exp $
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// GEANT4 tag $Name: $
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//
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//
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// ------------------------------------------------------------------------
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// GEANT 4 include file implementation
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//
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// ------------------------------------------------------------------------
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//
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// 25.10.96 John Apostolakis, design and implementation
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// 25.03.97 John Apostolakis, adaptation for G4Transportation and cleanup
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//
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// To create an object, must have
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// an object that calculates the Curved paths
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// the navigator to find (linear) intersections
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// and ?? also must know the value of the maximum displacement allowed
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//
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inline
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G4PropagatorInField::G4PropagatorInField(G4Navigator *theNavigator,
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G4FieldManager *detectorFieldMgr)
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: fDetectorFieldMgr(detectorFieldMgr),
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fCurrentFieldMgr(detectorFieldMgr),
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fNavigator(theNavigator),
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End_PointAndTangent(G4ThreeVector(0.,0.,0.),
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G4ThreeVector(0.,0.,0.),0.0,0.0,0.0,0.0,0.0),
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fVerboseLevel(0),
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fmax_loop_count(10000)
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{
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// this->fChordFinder = new G4ChordFinder( (G4MagneticField*)0, 1e-6 );
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fNoZeroStep=0;
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fThresholdNo_ZeroSteps= 2;
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// fMidPoint_CurveLen_of_LastAttempt= -1;
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fFull_CurveLen_of_LastAttempt= -1;
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fLast_ProposedStepLength= -1;
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}
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inline
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G4ChordFinder* G4PropagatorInField::GetChordFinder()
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{
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// Now only the "Chord Finder" of the global Field Mgr is used
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// ...
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return fCurrentFieldMgr->GetChordFinder();
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}
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inline
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void G4PropagatorInField::SetChargeMomentumMass(
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G4double Charge, // in e+ units
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G4double Momentum, // in GeV/c
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G4double Mass) // in ? units
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{
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GetChordFinder()->SetChargeMomentumMass(Charge, Momentum, Mass);
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}
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// Obtain the final space-point and velocity (normal) at the end of the Step
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//
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inline
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G4ThreeVector G4PropagatorInField::EndPosition() const
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{
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return End_PointAndTangent.GetPosition();
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}
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inline
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G4ThreeVector G4PropagatorInField::EndMomentumDir() const
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{
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return End_PointAndTangent.GetMomentumDir();
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}
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inline
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G4double G4PropagatorInField::GetEpsilonStep() const
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{
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return fEpsilonStep;
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}
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inline
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void G4PropagatorInField::SetEpsilonStep(G4double newEps)
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{
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fEpsilonStep=newEps;
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}
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inline
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G4bool G4PropagatorInField::IsParticleLooping() const
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{
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return fParticleIsLooping;
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}
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inline
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G4int G4PropagatorInField::GetMaxLoopCount() const
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{
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return fmax_loop_count;
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}
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inline
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void G4PropagatorInField::SetMaxLoopCount(G4int new_max)
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{
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fmax_loop_count= new_max;
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}
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inline
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G4double G4PropagatorInField::GetDeltaIntersection() const
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{
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return fCurrentFieldMgr->GetDeltaIntersection();
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}
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inline
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G4double G4PropagatorInField::GetDeltaOneStep() const
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{
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return fCurrentFieldMgr->GetDeltaOneStep();
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}
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inline
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void
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G4PropagatorInField::SetAccuraciesWithDeltaOneStep(G4double valDeltaOneStep)
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{
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fDetectorFieldMgr->SetAccuraciesWithDeltaOneStep(valDeltaOneStep);
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// this->SetDeltaOneStep(valDeltaOneStep);
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// this->SetDeltaIntersection( 0.4 * fDelta_One_Step_Value);
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}
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inline
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void G4PropagatorInField::SetDeltaOneStep(G4double valDeltaOneStep)
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{
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fDetectorFieldMgr->SetDeltaOneStep( valDeltaOneStep);
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// fCurrentFieldMgr->SetDeltaOneStep( valDeltaOneStep);
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}
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inline
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void G4PropagatorInField::SetDeltaIntersection(G4double valDeltaIntersection)
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{
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fDetectorFieldMgr->SetDeltaIntersection(valDeltaIntersection);
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// fCurrentFieldMgr->SetDeltaOneStep( valDeltaOneStep);
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}
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inline
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G4int G4PropagatorInField::SetVerboseLevel( G4int Verbose )
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{
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return fVerboseLevel=Verbose;
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}
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inline
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G4int G4PropagatorInField::Verbose() const
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{
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return fVerboseLevel;
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}
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inline
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G4FieldTrack G4PropagatorInField::GetEndState() const
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{
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return End_PointAndTangent;
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}
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// Minimum for Relative accuracy of any Step
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inline
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G4double G4PropagatorInField::GetMinimumEpsilonStep() const
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{
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return fEpsilonMin;
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}
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inline
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void G4PropagatorInField::SetMinimumEpsilonStep(G4double newEpsMin)
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{
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if( (newEpsMin > 0.0) && (fabs(1.0+newEpsMin)>1.0) )
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fEpsilonMin= newEpsMin;
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}
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