292 lines
12 KiB
C++
292 lines
12 KiB
C++
//
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// ********************************************************************
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// * License and Disclaimer *
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// * *
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// * The Geant4 software is copyright of the Copyright Holders of *
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// * the Geant4 Collaboration. It is provided under the terms and *
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// * conditions of the Geant4 Software License, included in the file *
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// * LICENSE and available at http://cern.ch/geant4/license . These *
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// * include a list of copyright holders. *
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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. Please see the license in the file LICENSE and URL above *
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// * for the full disclaimer and the limitation of liability. *
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// * *
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// * This code implementation is the result of the scientific and *
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// * technical work of the GEANT4 collaboration. *
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// * By using, copying, modifying or distributing the software (or *
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// * any work based on the software) you agree to acknowledge its *
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// * use in resulting scientific publications, and indicate your *
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// * acceptance of all terms of the Geant4 Software license. *
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// ********************************************************************
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//
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//
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// $Id: G4PropagatorInField.hh,v 1.13 2007/06/08 09:49:34 gcosmo Exp $
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// GEANT4 tag $Name: geant4-09-01 $
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//
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// class G4PropagatorInField
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//
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// Class description:
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//
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// This class performs the navigation/propagation of a particle/track
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// in a magnetic field. The field is in general non-uniform.
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// For the calculation of the path, it relies on the class G4ChordFinder.
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//
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// Key Method:
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// ComputeStep(..)
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// History:
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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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// 8.11.02 John Apostolakis, changes to enable use of safety in intersecting
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// ---------------------------------------------------------------------------
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#ifndef G4PropagatorInField_hh
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#define G4PropagatorInField_hh 1
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#include "G4Types.hh"
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#include <vector>
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#include "G4FieldTrack.hh"
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#include "G4FieldManager.hh"
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class G4ChordFinder;
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class G4Navigator;
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class G4VPhysicalVolume;
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class G4VCurvedTrajectoryFilter;
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class G4PropagatorInField
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{
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public: // with description
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G4PropagatorInField( G4Navigator *theNavigator,
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G4FieldManager *detectorFieldMgr );
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~G4PropagatorInField();
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G4double ComputeStep( G4FieldTrack &pFieldTrack,
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G4double pCurrentProposedStepLength,
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G4double &pNewSafety,
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G4VPhysicalVolume *pPhysVol=0 );
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// Compute the next geometric Step
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inline G4ThreeVector EndPosition() const;
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inline G4ThreeVector EndMomentumDir() const;
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inline G4bool IsParticleLooping() const;
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// Return the state after the Step
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inline G4double GetEpsilonStep() const;
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// Relative accuracy for current Step (Calc.)
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inline void SetEpsilonStep(G4double newEps);
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// The ratio DeltaOneStep()/h_current_step
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inline void SetChargeMomentumMass( G4double charge, // in e+ units
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G4double momentum, // in Geant4 units
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G4double pMass );
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// Inform this and all associated classes of q, p, m
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G4FieldManager* FindAndSetFieldManager(G4VPhysicalVolume* pCurrentPhysVol);
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// Set (and return) the correct field manager (global or local),
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// if it exists.
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// Should be called before ComputeStep is called;
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// - currently, ComputeStep will call it, if it has not been called.
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inline G4ChordFinder* GetChordFinder();
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G4int SetVerboseLevel( G4int verbose );
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inline G4int GetVerboseLevel() const;
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inline G4int Verbose() const;
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inline G4int GetMaxLoopCount() const;
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inline void SetMaxLoopCount( G4int new_max );
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// A maximum for the number of steps that a (looping) particle can take.
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void printStatus( const G4FieldTrack& startFT,
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const G4FieldTrack& currentFT,
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G4double requestStep,
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G4double safety,
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G4int step,
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G4VPhysicalVolume* startVolume);
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// Print Method - useful mostly for debugging.
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inline G4FieldTrack GetEndState() const;
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// The following methods are now obsolescent but *for now* will work
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// They are being replaced by same-name methods in G4FieldManager,
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// allowing the specialisation in different volumes.
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// Their new behaviour is to change the values for the global field manager.
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inline G4double GetMinimumEpsilonStep() const;
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inline void SetMinimumEpsilonStep( G4double newEpsMin );
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// Minimum for Relative accuracy of any Step
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inline G4double GetMaximumEpsilonStep() const;
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inline void SetMaximumEpsilonStep( G4double newEpsMax );
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inline void SetLargestAcceptableStep( G4double newBigDist );
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inline G4double GetLargestAcceptableStep();
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public: // with description
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// The following methods are obsolete and will not work --
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// as they have been replaced by the same methods in G4FieldManager
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// since Geant4 4.0
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inline G4double GetDeltaIntersection() const;
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inline G4double GetDeltaOneStep() const;
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inline void SetAccuraciesWithDeltaOneStep( G4double deltaOneStep );
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inline void SetDeltaIntersection( G4double deltaIntersection );
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inline void SetDeltaOneStep( G4double deltaOneStep );
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public: // without description
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inline G4FieldManager* GetCurrentFieldManager();
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inline void SetNavigatorForPropagating( G4Navigator *SimpleOrMultiNavigator );
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inline G4Navigator* GetNavigatorForPropagating();
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public: // no description
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inline void SetThresholdNoZeroStep( G4int noAct,
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G4int noHarsh,
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G4int noAbandon );
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inline G4int GetThresholdNoZeroSteps( G4int i );
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public: // with description
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//
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void SetTrajectoryFilter(G4VCurvedTrajectoryFilter* filter);
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// Set the filter that examines & stores 'intermediate'
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// curved trajectory points. Currently only position is stored.
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std::vector<G4ThreeVector>* GimmeTrajectoryVectorAndForgetIt() const;
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// Access the points which have passed by the filter.
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// Responsibility for deleting the points lies with the client.
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// This method MUST BE called exactly ONCE per step.
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void ClearPropagatorState();
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// Clear all the State of this class and its current associates
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// --> the current field manager & chord finder will also be called
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inline void SetDetectorFieldManager( G4FieldManager* newGlobalFieldManager );
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// Update this (dangerous) state -- for the time being
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inline void SetUseSafetyForOptimization( G4bool );
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inline G4bool GetUseSafetyForOptimization();
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// Toggle & view parameter for using safety to discard
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// unneccesary calls to navigator (thus 'optimising' performance)
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protected: // with description
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G4bool LocateIntersectionPoint(
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const G4FieldTrack& curveStartPointTangent, // A
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const G4FieldTrack& curveEndPointTangent, // B
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const G4ThreeVector& trialPoint, // E
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G4FieldTrack& intersectPointTangent, // Output
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G4bool& recalculatedEndPoint); // Out:
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// If such an intersection exists, this function
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// calculate the intersection point of the true path of the particle
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// with the surface of the current volume (or of one of its daughters).
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// (Should use lateral displacement as measure of convergence).
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G4bool IntersectChord( G4ThreeVector StartPointA,
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G4ThreeVector EndPointB,
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G4double &NewSafety,
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G4double &LinearStepLength,
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G4ThreeVector &IntersectionPoint);
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// Intersect the chord from StartPointA to EndPointB
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// and return whether an intersection occurred
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G4FieldTrack ReEstimateEndpoint( const G4FieldTrack &CurrentStateA,
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const G4FieldTrack &EstimtdEndStateB,
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G4double linearDistSq,
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G4double curveDist);
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// Return new estimate for state after curveDist
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// starting from CurrentStateA, to replace EstimtdEndStateB,
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// (and report displacement -- if field is compiled verbose.)
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void PrintStepLengthDiagnostic( G4double currentProposedStepLength,
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G4double decreaseFactor,
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G4double stepTrial,
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const G4FieldTrack& aFieldTrack);
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private:
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// ----------------------------------------------------------------------
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// DATA Members
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// ----------------------------------------------------------------------
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G4FieldManager *fDetectorFieldMgr;
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// The Field Manager of the whole Detector. (default)
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G4FieldManager *fCurrentFieldMgr;
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// The Field Manager of the current volume (may be the one above.)
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G4Navigator *fNavigator;
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// STATE information
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// -----------------
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G4double fEpsilonStep;
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// Relative accuracy for current Step (Calc.)
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G4FieldTrack End_PointAndTangent;
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// End point storage
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G4bool fParticleIsLooping;
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G4int fVerboseLevel;
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// For debuging purposes
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G4int fMax_loop_count;
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// Limit for the number of sub-steps taken in one call to ComputeStep
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// Variables to keep track of "abnormal" case - which causes loop
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//
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G4int fNoZeroStep; // Counter of zeroStep
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G4int fActionThreshold_NoZeroSteps; // Threshold: above this - act
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G4int fSevereActionThreshold_NoZeroSteps; // Threshold to act harshly
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G4int fAbandonThreshold_NoZeroSteps; // Threshold to abandon
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G4double fFull_CurveLen_of_LastAttempt;
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G4double fLast_ProposedStepLength;
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G4double fLargestAcceptableStep;
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G4double fCharge, fInitialMomentumModulus, fMass;
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G4ThreeVector fPreviousSftOrigin;
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G4double fPreviousSafety;
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G4bool fUseSafetyForOptimisation;
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// Last safety origin & value: for optimisation
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G4bool fSetFieldMgr;
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// Flag whether field manager has been set for the current step
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G4double kCarTolerance;
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// Geometrical tolerance defining surface thickness
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private:
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static const G4int max_depth=4;
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G4FieldTrack* ptrInterMedFT[max_depth+1];
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// Used to store intermediate values of tracks in case of
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// too slow progress
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private:
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G4VCurvedTrajectoryFilter* fpTrajectoryFilter;
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// The filter encapsulates the algorithm which selects which
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// intermediate points should be stored in a trajectory.
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// When it is NULL, no intermediate points will be stored.
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// Else PIF::ComputeStep must submit (all) intermediate
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// points it calculates, to this filter. (jacek 04/11/2002)
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};
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// ********************************************************************
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// Inline methods.
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// ********************************************************************
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#include "G4PropagatorInField.icc"
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#endif
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