340 lines
13 KiB
C++
340 lines
13 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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// $Id: G4PathFinder.hh 87869 2015-01-16 08:24:36Z gcosmo $
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//
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// class G4PathFinder
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//
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// Class description:
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//
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// This class directs the lock-stepped propagation of a track in the
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// 'mass' and other parallel geometries. It ensures that tracking
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// in a magnetic field sees these parallel geometries at each trial step,
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// and that the earliest boundary limits the step.
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//
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// For the movement in field, it relies on the class G4PropagatorInField
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//
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// History:
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// -------
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// 7.10.05 John Apostolakis, Draft design
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// 26.04.06 John Apostolakis, Revised design and first implementation
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// ---------------------------------------------------------------------------
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#ifndef G4PATHFINDER_HH
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#define G4PATHFINDER_HH 1
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#include <vector>
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#include "G4Types.hh"
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#include "G4FieldTrack.hh"
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class G4TransportationManager;
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class G4Navigator;
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#include "G4TouchableHandle.hh"
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#include "G4FieldTrack.hh"
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#include "G4MultiNavigator.hh"
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class G4PropagatorInField;
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class G4PathFinder
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{
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public: // with description
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static G4PathFinder* GetInstance();
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//
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// Retrieve singleton instance
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G4double ComputeStep( const G4FieldTrack &pFieldTrack,
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G4double pCurrentProposedStepLength,
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G4int navigatorId, // Identifies the geometry
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G4int stepNo, // See next step/check
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G4double &pNewSafety, // Only for this geometry
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ELimited &limitedStep,
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G4FieldTrack &EndState,
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G4VPhysicalVolume* currentVolume );
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//
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// Compute the next geometric Step -- Curved or linear
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// If it is called with a larger 'stepNo' it will execute a new step;
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// if 'stepNo' is same as last call, then the results for
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// the geometry with Id. number 'navigatorId' will be returned.
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void Locate( const G4ThreeVector& position,
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const G4ThreeVector& direction,
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G4bool relativeSearch=true);
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//
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// Make primary relocation of global point in all navigators,
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// and update them.
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void ReLocate( const G4ThreeVector& position );
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//
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// Make secondary relocation of global point (within safety only)
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// in all navigators, and update them.
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void PrepareNewTrack( const G4ThreeVector& position,
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const G4ThreeVector& direction,
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G4VPhysicalVolume* massStartVol=0);
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//
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// Check and cache set of active navigators.
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void EndTrack();
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// Signal end of tracking of current track.
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// Reset internal state
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// Inform TransportationManager to use 'ordinary' Navigator
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G4TouchableHandle CreateTouchableHandle( G4int navId ) const;
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inline G4VPhysicalVolume* GetLocatedVolume( G4int navId ) const;
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G4bool RecheckDistanceToCurrentBoundary(
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const G4ThreeVector &pGlobalPoint,
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const G4ThreeVector &pDirection,
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const G4double pCurrentProposedStepLength,
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G4double *prDistance,
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G4double *prNewSafety= 0)const;
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// Trial method for checking potential displacement for MS
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// -----------------------------------------------------------------
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inline G4bool IsParticleLooping() const;
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inline G4double GetCurrentSafety() const;
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// Minimum value of safety after last ComputeStep
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inline G4double GetMinimumStep() const;
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// Get the minimum step size from the last ComputeStep call
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// - in case full step is taken, this is kInfinity
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inline unsigned int GetNumberGeometriesLimitingStep() const;
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G4double ComputeSafety( const G4ThreeVector& globalPoint);
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// Recompute safety for the relevant point the endpoint of the last step!!
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// Maintain vector of individual safety values (for next method)
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G4double ObtainSafety( G4int navId, G4ThreeVector& globalCenterPoint );
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// Obtain safety for navigator/geometry navId for last point 'computed'
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// --> last point for which ComputeSafety was called
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// Returns the point (center) for which this safety is valid
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void EnableParallelNavigation( G4bool enableChoice=true );
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//
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// Must call it to ensure that PathFinder is prepared,
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// especially for curved tracks. If true it switches PropagatorInField
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// to use MultiNavigator. Must call it with false to undo (=PiF use
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// Navigator for tracking!)
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inline G4int SetVerboseLevel(G4int lev=-1);
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public: // with description
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inline G4int GetMaxLoopCount() const;
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inline void SetMaxLoopCount( G4int new_max );
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//
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// A maximum for the number of steps that a (looping) particle can take.
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public: // without description
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inline void MovePoint();
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//
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// Signal that location will be moved -- internal use primarily
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// To provide best compatibility between Coupled and Old Transportation
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// the next two methods are provided:
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G4double LastPreSafety( G4int navId, G4ThreeVector& globalCenterPoint, G4double& minSafety );
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// Obtain last safety needed in ComputeStep (for geometry navId)
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// --> last point at which ComputeStep recalculated safety
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// Returns the point (center) for which this safety is valid
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// and also the minimum safety over all navigators (ie full)
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void PushPostSafetyToPreSafety();
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// Tell PathFinder to copy PostStep Safety to PreSafety (for use at next step)
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G4String& LimitedString( ELimited lim );
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// Convert ELimited to string
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protected: // without description
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G4double DoNextLinearStep( const G4FieldTrack &FieldTrack,
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G4double proposedStepLength);
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G4double DoNextCurvedStep( const G4FieldTrack &FieldTrack,
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G4double proposedStepLength,
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G4VPhysicalVolume* pCurrentPhysVolume);
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void WhichLimited();
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void PrintLimited();
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//
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// Print key details out - for debugging
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// void ClearState();
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//
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// Clear all the State of this class and its current associates
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inline G4bool UseSafetyForOptimization( G4bool );
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//
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// Whether use safety to discard unneccesary calls to navigator
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void ReportMove( const G4ThreeVector& OldV, const G4ThreeVector& NewV, const G4String& Quantity ) const;
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// Helper method to report movement (likely of initial point)
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protected:
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G4PathFinder(); // Singleton
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~G4PathFinder();
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inline G4Navigator* GetNavigator(G4int n) const;
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private:
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// ----------------------------------------------------------------------
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// DATA Members
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// ----------------------------------------------------------------------
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G4MultiNavigator *fpMultiNavigator;
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//
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// Object that enables G4PropagatorInField to see many geometries
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G4int fNoActiveNavigators;
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G4bool fNewTrack; // Flag a new track (ensure first step)
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static const G4int fMaxNav = 16; // rename to kMaxNoNav ??
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// Global state (retained during stepping for one track)
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G4Navigator* fpNavigator[fMaxNav];
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// State changed in a step computation
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ELimited fLimitedStep[fMaxNav];
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G4bool fLimitTruth[fMaxNav];
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G4double fCurrentStepSize[fMaxNav];
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G4int fNoGeometriesLimiting; // How many processes contribute to limit
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G4ThreeVector fPreSafetyLocation; // last initial position for which safety evaluated
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G4double fPreSafetyMinValue; // /\ corresponding value of full safety
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G4double fPreSafetyValues[ fMaxNav ]; // Safeties for the above point
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// This part of the state can be retained for severall calls --> CARE
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G4ThreeVector fPreStepLocation; // point where last ComputeStep called
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G4double fMinSafety_PreStepPt; // /\ corresponding value of full safety
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G4double fCurrentPreStepSafety[ fMaxNav ]; // Safeties for the above point
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// This changes at each step,
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// so it can differ when steps inside min-safety are made
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G4bool fPreStepCenterRenewed; // Whether PreSafety coincides with PreStep point
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G4double fMinStep; // As reported by Navigators -- can be kInfinity
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G4double fTrueMinStep; // Corrected in case >= proposed
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// State after calling 'locate'
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G4VPhysicalVolume* fLocatedVolume[fMaxNav];
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G4ThreeVector fLastLocatedPosition;
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// State after calling 'ComputeStep' (others member variables will be affected)
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G4FieldTrack fEndState; // Point, velocity, ... at proposed step end
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G4bool fFieldExertedForce; // In current proposed step
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G4bool fRelocatedPoint; // Signals that point was or is being moved
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// from the position of the last location
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// or the endpoint resulting from ComputeStep
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// -- invalidates fEndState
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// State for 'ComputeSafety' and related methods
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G4ThreeVector fSafetyLocation; // point where ComputeSafety is called
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G4double fMinSafety_atSafLocation; // /\ corresponding value of safety
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G4double fNewSafetyComputed[ fMaxNav ]; // Safeties for last ComputeSafety
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// State for Step numbers
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G4int fLastStepNo, fCurrentStepNo;
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G4int fVerboseLevel; // For debuging purposes
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G4TransportationManager* fpTransportManager; // Cache for frequent use
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G4PropagatorInField* fpFieldPropagator;
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G4double kCarTolerance;
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static G4ThreadLocal G4PathFinder* fpPathFinder;
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};
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// ********************************************************************
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// Inline methods.
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// ********************************************************************
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inline G4VPhysicalVolume* G4PathFinder::GetLocatedVolume( G4int navId ) const
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{
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G4VPhysicalVolume* vol=0;
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if( (navId < fMaxNav) && (navId >=0) ) { vol= fLocatedVolume[navId]; }
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return vol;
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}
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inline G4int G4PathFinder::SetVerboseLevel(G4int newLevel)
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{
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G4int old= fVerboseLevel; fVerboseLevel= newLevel; return old;
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}
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inline G4double G4PathFinder::GetMinimumStep() const
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{
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return fMinStep;
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}
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inline unsigned int G4PathFinder::GetNumberGeometriesLimitingStep() const
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{
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unsigned int noGeometries=fNoGeometriesLimiting;
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return noGeometries;
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}
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inline G4double G4PathFinder::GetCurrentSafety() const
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{
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return fMinSafety_PreStepPt;
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}
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inline void G4PathFinder::MovePoint()
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{
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fRelocatedPoint= true;
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}
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inline G4Navigator* G4PathFinder::GetNavigator(G4int n) const
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{
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if( (n>fNoActiveNavigators)||(n<0)) { n=0; }
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return fpNavigator[n];
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}
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inline G4double G4PathFinder::ObtainSafety( G4int navId, G4ThreeVector& globalCenterPoint )
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{
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globalCenterPoint= fSafetyLocation;
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// navId = std::min( navId, fMaxNav-1 );
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return fNewSafetyComputed[ navId ];
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}
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inline G4double G4PathFinder::LastPreSafety( G4int navId,
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G4ThreeVector& globalCenterPoint,
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G4double& minSafety )
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{
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globalCenterPoint= fPreSafetyLocation;
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minSafety= fPreSafetyMinValue;
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// navId = std::min( navId, fMaxNav-1 );
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return fPreSafetyValues[ navId ];
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}
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#endif
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