374 lines
14 KiB
C++
374 lines
14 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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// G4ParticleDefinition
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//
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// Class description:
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//
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// This class contains all the static data of a particle.
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// It uses the process manager in order to collect all the processes
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// this kind of particle can undertake.
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// Authors: G.Cosmo, 2 December 1995 - Design, based on object model
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// M.Asai, 29 January 1996 - First implementation
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// History:
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// - 1996-2003, H.Kurashige - Revisions
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// - 11.03.2003, H.Kurashige - Restructuring for Cuts per Region
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// - 25.01.2013, G.Cosmo, A.Dotti - Introduced thread-safety for MT
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// - 15.06.2017, K.L.Genser - Added support for MuonicAtom
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// --------------------------------------------------------------------
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#ifndef G4ParticleDefinition_hh
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#define G4ParticleDefinition_hh 1
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#include <vector>
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#include <CLHEP/Units/PhysicalConstants.h>
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#include "globals.hh"
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#include "G4ios.hh"
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#include "G4PDefManager.hh"
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class G4ProcessManager;
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class G4DecayTable;
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class G4ParticleTable;
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class G4ParticlePropertyTable;
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class G4VTrackingManager;
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using G4ParticleDefinitionSubInstanceManager = G4PDefManager;
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class G4ParticleDefinition
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{
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friend class G4ParticlePropertyTable;
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public:
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// Only one type of constructor can be used for G4ParticleDefinition.
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// If you want to create new particle, you must set name of the particle
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// at construction. Most of members seen as arguments of the constructor
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// (except last 3 arguments concerning with decay ) are "constant"
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// and can not be changed later. (No "SET" methods are available)
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// Each type of particle must be constructed as a unique object
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// of special class derived from G4ParticleDefinition.
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// See G4ParticleTypes for detail
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G4ParticleDefinition(const G4String& aName,
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G4double mass,
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G4double width,
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G4double charge,
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G4int iSpin,
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G4int iParity,
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G4int iConjugation,
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G4int iIsospin,
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G4int iIsospinZ,
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G4int gParity,
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const G4String& pType,
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G4int lepton,
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G4int baryon,
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G4int encoding,
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G4bool stable,
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G4double lifetime,
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G4DecayTable* decaytable,
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G4bool shortlived = false,
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const G4String& subType = "",
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G4int anti_encoding = 0,
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G4double magneticMoment = 0.0);
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virtual ~G4ParticleDefinition();
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G4ParticleDefinition(const G4ParticleDefinition&) = delete;
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G4ParticleDefinition& operator=(const G4ParticleDefinition &) = delete;
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// Can not use "copy constructor", equality nor "default constructor"!
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G4bool operator==(const G4ParticleDefinition& right) const;
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G4bool operator!=(const G4ParticleDefinition& right) const;
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// With the following Getxxxx methods, one can get values
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// for members which can not be changed
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const G4String& GetParticleName() const { return theParticleName; }
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G4double GetPDGMass() const { return thePDGMass; }
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G4double GetPDGWidth() const { return thePDGWidth; }
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G4double GetPDGCharge() const { return thePDGCharge; }
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G4double GetPDGSpin() const { return thePDGSpin; }
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G4int GetPDGiSpin() const { return thePDGiSpin; }
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G4int GetPDGiParity() const { return thePDGiParity; }
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G4int GetPDGiConjugation() const { return thePDGiConjugation; }
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G4double GetPDGIsospin() const { return thePDGIsospin; }
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G4double GetPDGIsospin3() const { return thePDGIsospin3; }
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G4int GetPDGiIsospin() const { return thePDGiIsospin; }
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G4int GetPDGiIsospin3() const { return thePDGiIsospin3; }
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G4int GetPDGiGParity() const { return thePDGiGParity; }
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G4double GetPDGMagneticMoment() const { return thePDGMagneticMoment; }
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inline void SetPDGMagneticMoment(G4double mageticMoment);
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G4double CalculateAnomaly() const;
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// Gives the anomaly of magnetic moment for spin 1/2 particles
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const G4String& GetParticleType() const { return theParticleType; }
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const G4String& GetParticleSubType() const { return theParticleSubType; }
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G4int GetLeptonNumber() const { return theLeptonNumber; }
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G4int GetBaryonNumber() const { return theBaryonNumber; }
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G4int GetPDGEncoding() const { return thePDGEncoding; }
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G4int GetAntiPDGEncoding() const { return theAntiPDGEncoding; }
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inline void SetAntiPDGEncoding(G4int aEncoding);
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inline G4int GetQuarkContent(G4int flavor) const;
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inline G4int GetAntiQuarkContent(G4int flavor) const;
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// Returns the number of quark with flavor contained in this particle.
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// The value of flavor is assigned as follows
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// 1:d, 2:u, 3:s, 4:c, 5:b, 6:t
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G4bool IsShortLived() const { return fShortLivedFlag; }
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inline G4bool GetPDGStable() const;
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void SetPDGStable(const G4bool aFlag) { thePDGStable=aFlag; }
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inline G4double GetPDGLifeTime() const;
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void SetPDGLifeTime(G4double aLifeTime) { thePDGLifeTime=aLifeTime; }
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inline G4double GetIonLifeTime() const;
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// Get life time of a generic ion through G4NuclideTable.
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inline G4DecayTable* GetDecayTable() const;
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inline void SetDecayTable(G4DecayTable* aDecayTable);
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// Set/Get Decay Table
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// !! Decay Table can be modified !!
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G4ProcessManager* GetProcessManager() const;
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void SetProcessManager(G4ProcessManager* aProcessManager);
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// Set/Get Process Manager
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// !! Process Manager can be modified !!
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G4VTrackingManager* GetTrackingManager() const;
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void SetTrackingManager(G4VTrackingManager* aTrackingManager);
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// Set/Get Tracking Manager; nullptr means the default
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// !! Tracking Manager can be modified !!
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inline G4ParticleTable* GetParticleTable() const;
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// Get pointer to the particle table
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inline G4int GetAtomicNumber() const;
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inline G4int GetAtomicMass() const;
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// Get AtomicNumber and AtomicMass
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// These properties are defined for nucleus
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void DumpTable() const;
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// Prints information of data members.
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inline void SetVerboseLevel(G4int value);
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inline G4int GetVerboseLevel() const;
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// Control 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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void SetApplyCutsFlag(G4bool);
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inline G4bool GetApplyCutsFlag() const;
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inline G4bool IsGeneralIon() const;
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// True only if the particle is G4Ions
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// (it means that theProcessManager is same as one for G4GenricIon)
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inline G4bool IsMuonicAtom() const;
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// True only if the particle is a G4MuonicAtom
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// (it means that theProcessManager is same as the one for G4MuonicAtom)
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inline G4ProcessManager* GetMasterProcessManager() const;
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// Returns the process manager master pointer.
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inline void SetMasterProcessManager(G4ProcessManager* aNewPM);
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// Sets the shadow master pointer (not to be used by user)
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inline G4int GetInstanceID() const;
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// Returns the instance ID
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static const G4PDefManager& GetSubInstanceManager();
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// Returns the private data instance manager
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static void Clean();
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// Clear memory allocated by sub-instance manager
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void SetParticleDefinitionID(G4int id=-1);
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inline G4int GetParticleDefinitionID() const;
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inline G4bool IsHypernucleus() const;
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inline G4int GetNumberOfLambdasInHypernucleus() const;
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inline G4bool IsAntiHypernucleus() const;
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inline G4int GetNumberOfAntiLambdasInAntiHypernucleus() const;
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// The first two methods return "false" and 0, respectively,
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// if the particle is not an hypernucleus; else, they return
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// "true" and the number of Lambdas bound in the nucleus.
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// Similarly, the last two methods return "false" and 0,
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// respectively, if the particle is not an anti-hypernucleus;
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// else, they return "true" and the number of anti-Lambdas
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// bound in the anti-nucleus.
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// Notice that, for the time being, we are assuming that
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// (anti-)Lambda is the only type of (anti-)hyperon present
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// in all (anti-)hypernuclei.
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protected:
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G4ParticleDefinition();
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// Cannot be used
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G4int FillQuarkContents();
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// Calculates quark and anti-quark contents
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// return value is the PDG encoding for this particle.
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// It means error if the return value is different from
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// this->thePDGEncoding.
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inline void SetParticleSubType(const G4String& subtype);
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inline void SetAtomicNumber(G4int);
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inline void SetAtomicMass(G4int);
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enum { NumberOfQuarkFlavor = 6 };
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G4int theQuarkContent[NumberOfQuarkFlavor];
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G4int theAntiQuarkContent[NumberOfQuarkFlavor];
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// the number of quark (minus Sign means anti-quark) contents
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// The value of flavor is assigned as follows
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// 0:d, 1:u, 2:s, 3:c, 4:b, 5:t
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protected:
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G4bool isGeneralIon = false;
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G4bool isMuonicAtom = false;
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private:
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// --- Shadow of master pointers
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G4ProcessManager* theProcessManagerShadow = nullptr;
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// Each worker thread can access this field from the master thread
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// through this pointer.
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G4int g4particleDefinitionInstanceID = 0;
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// This field is used as instance ID.
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G4PART_DLL static G4PDefManager subInstanceManager;
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// This field helps to use the class G4PDefManager introduced above.
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// --- Following values can not be changed
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// --- i.e. No Setxxxx Methods for them
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G4String theParticleName = "";
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// The name of the particle.
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// Each object must have its specific name!!
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// --- Following member values must be defined with Units
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G4double thePDGMass = 0.0;
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// The mass of the particle, in units of equivalent energy.
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G4double thePDGWidth = 0.0;
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// The decay width of the particle, usually the width of a
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// Breit-Wigner function, assuming that you are near the
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// mass center anyway. (in units of equivalent energy)
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G4double thePDGCharge = 0.0;
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// The charge of the particle.(in units of Coulomb)
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// --- Following members are quantum number
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// i.e. discrete numbers can be allowed
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// So, you can define them only by using integer in constructor
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G4int thePDGiSpin = 0;
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// The total spin of the particle, also often denoted as
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// capital J, in units of 1/2.
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G4double thePDGSpin = 0.0;
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// The total spin of the particle, in units of 1.
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G4int thePDGiParity = 0;
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// The parity quantum number, in units of 1. If the parity
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// is not defined for this particle, we will set this to 0.
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G4int thePDGiConjugation = 0;
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// This charge conjugation quantum number in units of 1.
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G4int thePDGiGParity = 0;
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// The value of the G-parity quantum number.
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G4int thePDGiIsospin = 0;
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G4int thePDGiIsospin3 = 0;
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// The isospin and its 3rd-component in units of 1/2.
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G4double thePDGIsospin = 0.0;
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G4double thePDGIsospin3 = 0.0;
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// The isospin quantum number in units of 1.
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G4double thePDGMagneticMoment = 0.0;
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// The magnetic moment.
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G4int theLeptonNumber = 0;
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// The lepton quantum number.
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G4int theBaryonNumber = 0;
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// The baryon quantum number.
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G4String theParticleType = "";
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// More general textual type description of the particle.
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G4String theParticleSubType = "";
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// Textual type description of the particle
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// eg. pion, lamda etc.
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G4int thePDGEncoding = 0;
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// The Particle Data Group integer identifier of this particle
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G4int theAntiPDGEncoding = 0;
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// The Particle Data Group integer identifier of the anti-particle
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// --- Following members can be changed after construction
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G4bool fShortLivedFlag = false;
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// Particles which have true value of this flag
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// will not be tracked by TrackingManager
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G4bool thePDGStable = false;
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// Is an indicator that this particle is stable. It must
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// not decay. If the user tries to assign a kind of decay
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// object to it, it will refuse to take it.
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G4double thePDGLifeTime = 0.0;
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// Is related to the decay width of the particle. The mean
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// life time is given in seconds.
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G4DecayTable* theDecayTable = nullptr;
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// Points DecayTable
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G4ParticleTable* theParticleTable = nullptr;
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G4int theAtomicNumber = 0;
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G4int theAtomicMass = 0;
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G4int verboseLevel = 1;
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G4bool fApplyCutsFlag = false;
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};
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#include "G4ParticleDefinition.icc"
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#endif
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