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//
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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: G4ProductionCutsTable.hh,v 1.2 2003/11/03 02:18:44 kurasige Exp $
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// GEANT4 tag $Name: geant4-06-00 $
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//
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//
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// ------------------------------------------------------------
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// GEANT 4 class header file
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//
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//
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// ------------------------------------------------------------
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// First Implementation 05 Oct. 2002 M.Asai
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// ------------------------------------------------------------
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#ifndef G4ProductionCutsTable_h
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#define G4ProductionCutsTable_h 1
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class G4RegionStore;
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class G4VRangeToEnergyConverter;
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class G4LogicalVolume;
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class G4ProductionCuts;
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#include "globals.hh"
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#include "G4ios.hh"
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#include <vector>
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#include "G4MaterialCutsCouple.hh"
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#include "G4Region.hh"
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class G4ProductionCutsTable
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{
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// Class Description
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// G4ProductionCutsTable is a static singleton class of a table of
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// G4ProductionCuts objects. This class also manages tables of
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// production cut and energy cut for each particle type.
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public: // with description
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static G4ProductionCutsTable* GetProductionCutsTable();
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// This static method returns the singleton pointer of this class object.
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// At the first invokation of this method, the singleton object is instantiated.
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protected:
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G4ProductionCutsTable();
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private:
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G4ProductionCutsTable(const G4ProductionCutsTable& right);
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public:
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virtual ~G4ProductionCutsTable();
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public: // with description
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void UpdateCoupleTable();
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// This method triggers an update of the table of G4ProductionCuts objects.
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void SetEnergyRange(G4double lowedge, G4double highedge);
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// This method sets the limits of energy cuts for all particles.
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G4double GetLowEdgeEnergy() const;
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G4double GetHighEdgeEnergy() const;
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// These methods get the limits of energy cuts for all particles.
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void DumpCouples() const;
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// Display a list of registored couples
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private:
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static G4ProductionCutsTable* fG4ProductionCutsTable;
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typedef std::vector<G4MaterialCutsCouple*> G4CoupleTable;
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typedef std::vector<G4MaterialCutsCouple*>::const_iterator CoupleTableIterator;
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typedef std::vector<G4double> G4CutVectorForAParticle;
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typedef std::vector<G4CutVectorForAParticle*> G4CutTable;
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G4CoupleTable coupleTable;
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G4CutTable rangeCutTable;
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G4CutTable energyCutTable;
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G4RegionStore* fG4RegionStore;
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G4VRangeToEnergyConverter* converters[NumberOfG4CutIndex];
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G4ProductionCuts* defaultProductionCuts;
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// These two vectors are for the backward comparibility
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G4double* rangeDoubleVector[NumberOfG4CutIndex];
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G4double* energyDoubleVector[NumberOfG4CutIndex];
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public:
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const std::vector<G4double>* GetRangeCutsVector(size_t pcIdx) const;
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const std::vector<G4double>* GetEnergyCutsVector(size_t pcIdx) const;
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// These two vectors are for the backward comparibility
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G4double* GetRangeCutsDoubleVector(size_t pcIdx) const;
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G4double* GetEnergyCutsDoubleVector(size_t pcIdx) const;
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public: // with description
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size_t GetTableSize() const;
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// This method returns the size of the couple table.
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const G4MaterialCutsCouple* GetMaterialCutsCouple(G4int i) const;
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// This method returns the pointer to the couple.
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const G4MaterialCutsCouple*
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GetMaterialCutsCouple(const G4Material* aMat,
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const G4ProductionCuts* aCut) const;
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// This method returns the pointer to the couple.
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G4int GetCoupleIndex(const G4MaterialCutsCouple* aCouple) const;
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G4int GetCoupleIndex(const G4Material* aMat,
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const G4ProductionCuts* aCut) const;
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// These methods return the index of the couple.
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// -1 is returned if index is not found.
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G4bool IsModified() const;
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// This method returns TRUE if at least one production cut value is modified.
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void PhysicsTableUpdated();
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// This method resets the status of IsModified(). This method must
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// be exclusively used by RunManager when physics tables are built.
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G4ProductionCuts* GetDefaultProductionCuts() const;
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// This method returns the default production cuts.
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private:
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void ScanAndSetCouple(G4LogicalVolume* aLV,
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G4MaterialCutsCouple* aCouple,
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G4Region* aRegion);
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bool IsCoupleUsedInTheRegion(const G4MaterialCutsCouple* aCouple,
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const G4Region* aRegion) const;
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public: // with description
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// Store cuts and material information in files under the specified directory.
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G4bool StoreCutsTable(const G4String& directory,
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G4bool ascii = false);
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// Retrieve cuts values information in files under the specified directory.
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G4bool RetrieveCutsTable(const G4String& directory,
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G4bool ascii = false);
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// check stored material and cut values are consistent with the current detector setup.
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G4bool CheckForRetrieveCutsTable(const G4String& directory,
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G4bool ascii = false);
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protected:
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// Store material information in files under the specified directory.
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virtual G4bool StoreMaterialInfo(const G4String& directory,
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G4bool ascii = false);
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// check stored material is consistent with the current detector setup.
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virtual G4bool CheckMaterialInfo(const G4String& directory,
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G4bool ascii = false);
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// Store materialCutsCouple information in files under the specified directory.
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virtual G4bool StoreMaterialCutsCoupleInfo(const G4String& directory,
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G4bool ascii = false);
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// check stored materialCutsCouple is consistent with the current detector setup.
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virtual G4bool CheckMaterialCutsCoupleInfo(const G4String& directory,
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G4bool ascii = false);
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// Store cut values information in files under the specified directory.
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virtual G4bool StoreCutsInfo(const G4String& directory,
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G4bool ascii = false);
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// Retrieve cut values information in files under the specified directory.
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virtual G4bool RetrieveCutsInfo(const G4String& directory,
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G4bool ascii = false);
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private:
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G4bool firstUse;
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enum { FixedStringLengthForStore = 32 };
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public: // with description
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void SetVerboseLevel(G4int value);
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G4int GetVerboseLevel() const;
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// controle flag for output message
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// 0: Silent
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// 1: Warning message
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// 2: More
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private:
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G4int verboseLevel;
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};
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inline
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const std::vector<G4double>* G4ProductionCutsTable::GetRangeCutsVector(size_t pcIdx) const
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{
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return rangeCutTable[pcIdx];
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}
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inline
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const std::vector<G4double>* G4ProductionCutsTable::GetEnergyCutsVector(size_t pcIdx) const
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{
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return energyCutTable[pcIdx];
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}
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inline
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size_t G4ProductionCutsTable::GetTableSize() const
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{
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return coupleTable.size();
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}
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inline
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const G4MaterialCutsCouple* G4ProductionCutsTable::GetMaterialCutsCouple(G4int i) const
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{
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return coupleTable[size_t(i)];
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}
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inline
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G4bool G4ProductionCutsTable::IsModified() const
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{
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if(firstUse) return true;
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for(G4ProductionCutsTable::CoupleTableIterator itr=coupleTable.begin();
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itr!=coupleTable.end();itr++){
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if((*itr)->IsRecalcNeeded())
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{
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return true;
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}
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}
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return false;
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}
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inline
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void G4ProductionCutsTable::PhysicsTableUpdated()
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{
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for(G4ProductionCutsTable::CoupleTableIterator itr=coupleTable.begin();itr!=coupleTable.end();itr++){
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(*itr)->PhysicsTableUpdated();
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}
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}
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inline
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G4double* G4ProductionCutsTable::GetRangeCutsDoubleVector(size_t pcIdx) const
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{ return rangeDoubleVector[pcIdx]; }
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inline
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G4double* G4ProductionCutsTable::GetEnergyCutsDoubleVector(size_t pcIdx) const
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{ return energyDoubleVector[pcIdx]; }
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inline
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G4ProductionCuts* G4ProductionCutsTable::GetDefaultProductionCuts() const
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{ return defaultProductionCuts; }
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inline
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bool G4ProductionCutsTable::IsCoupleUsedInTheRegion(
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const G4MaterialCutsCouple* aCouple,
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const G4Region* aRegion) const
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{
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G4ProductionCuts* fProductionCut = aRegion->GetProductionCuts();
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std::vector<G4Material*>::const_iterator mItr = aRegion->GetMaterialIterator();
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size_t nMaterial = aRegion->GetNumberOfMaterials();
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for(size_t iMate=0;iMate<nMaterial;iMate++, mItr++){
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if(aCouple->GetMaterial()==(*mItr) &&
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aCouple->GetProductionCuts()==fProductionCut){
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return true;
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}
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}
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return false;
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}
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inline
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const G4MaterialCutsCouple*
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G4ProductionCutsTable::GetMaterialCutsCouple(const G4Material* aMat,
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const G4ProductionCuts* aCut) const
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{
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for(CoupleTableIterator cItr=coupleTable.begin();cItr!=coupleTable.end();cItr++)
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{
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if((*cItr)->GetMaterial()!=aMat) continue;
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if((*cItr)->GetProductionCuts()==aCut) return (*cItr);
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}
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return 0;
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}
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inline
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G4int G4ProductionCutsTable::GetCoupleIndex(const G4MaterialCutsCouple* aCouple) const
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{
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G4int idx = 0;
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for(CoupleTableIterator cItr=coupleTable.begin();cItr!=coupleTable.end();cItr++)
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{
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if((*cItr)==aCouple) return idx;
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idx++;
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}
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return -1;
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}
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inline
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G4int G4ProductionCutsTable:: GetCoupleIndex(const G4Material* aMat,
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const G4ProductionCuts* aCut) const
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{
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const G4MaterialCutsCouple* aCouple = GetMaterialCutsCouple(aMat,aCut);
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return GetCoupleIndex(aCouple);
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}
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inline
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void G4ProductionCutsTable::SetVerboseLevel(G4int value)
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{
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verboseLevel = value;
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}
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inline
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G4int G4ProductionCutsTable::GetVerboseLevel() const
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{
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return verboseLevel;
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}
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#endif
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