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File indexing completed on 2025-04-19 09:09:47

0001 #ifndef AMEGIC_Phasespace_Channel_Generator3V_H
0002 #define AMEGIC_Phasespace_Channel_Generator3V_H
0003 
0004 #include "AMEGIC++/Phasespace/Channel_Generator_Base.H"
0005 
0006 
0007 namespace AMEGIC {
0008 
0009 typedef std::map<std::string,std::string> Decls;
0010   
0011   typedef std::vector<std::string> String_List;
0012 
0013   
0014 
0015   class Channel_Generator3V : public Channel_Generator_Base {
0016     Decls declarations;
0017     
0018     int         extrachannelflag,newchannel;
0019     int         tcount,acount,m_aid;
0020     String_List m_idc;
0021     std::string m_idstr,m_mapstr;
0022     std::vector<Point *> m_topos,m_pclist;
0023     void        Step0(int,Point *,int&,std::ofstream&);
0024     bool        QCDAntenna(int,Point*,int&,std::ofstream&,int);
0025 
0026     void        GenerateMassChain(int,Point *,Point *,int&,std::ofstream&);
0027     void        GenerateDecayChain(int flag,Point* p,int& rannum,std::ofstream& sf,
0028                    std::vector<std::string>, std::vector<std::string>);
0029     std::string LinkedMasses(Point *);
0030     void        SetProps(Point *,Point **,Point **,int&);
0031     void        CalcSmin(int,const char*,std::string,std::ofstream&,Point*);
0032     void        CalcTSmin(int,String_List&,std::ofstream&);
0033     void        IdentifyProps(Point *);
0034     void        BackLinks(Point *,Point * &);
0035     void        InitT(Point *);
0036     bool        Massive(ATOOLS::Flavour fl) { return (fl.Mass()!=0.) ? 1:0; }
0037     int         AntennaS(Point* p);
0038     void        GenerateTopos(Point*);
0039     Point*      CopyPoints(Point*);
0040     Point*      TransformTS(Point*);
0041     void        MRPScan();
0042     std::string Order(std::string);
0043     std::string IString(int);
0044     void        AddToVariables(int,const std::string&,const std::string&,const int&,std::ofstream&); 
0045     bool        CheckVariables(int flag,const std::string& lhs,const int& type);
0046     void        ClearDeclarations() { declarations.clear(); } 
0047     double      PMassSum(Point*,int *);
0048     std::string GetFlMass(Point* p);
0049   public:
0050     Channel_Generator3V(int,int,Point *,int);
0051     ~Channel_Generator3V();
0052     int         MakeChannel(int&,int,std::string&,std::string&);
0053     Point     * GetPointlist()             { return plist; }
0054     //void        SetName(std::string _name) { name = _name; }
0055     std::string CreateChannelID(int);
0056   };
0057       //! The usual identifiers, number of incoming and outgoing legs.
0058     /*!
0059       This is a point list, i.e. a copy of the point list of the amplitude for
0060       which this channel is constructed. The copy is done with help of the class
0061       topology.
0062     */
0063     /*!
0064       The number of t-channel propagators helps in selecting the correct "principal"
0065       topology. This number is deterimined via the method IdentifyProps.
0066       Actually this might help also for efficient ISR channels in non-s channel
0067       cases later on.
0068     */
0069     /*!
0070       Step0 basically plays the role of distributing the different basic topologies for the final 
0071       state integral. Depending on tcount, the number of t-channel propagators in the amplitude,
0072       StepS (0 t's) or StepNT is called, for both the "Momenta"- and the "Weight"-mode. For StepS 
0073       some initialization work is done in Step0, mainly bacause StepS is called by the other 
0074       channels as well and because the invariant mass of the propagator in the s-channel has to 
0075       be known then.
0076     */
0077 
0078     /*!
0079       StepS initializes - if need be - the two invariant masses of the decay products by suitable 
0080       propagator terms via GenerateMasses. Then it decides on the decay type, either
0081       anisotropic or isotropic, depending on the flavour constellation.
0082       Finally it calls StepS for its decay products.
0083     */
0084     /*!
0085       StepNT is the start of a recursive method to fill multiple T-channels. Assume you have a 
0086       _ _ _    "comb-like structure", StepNT treats it by deciding which point is which type, 
0087       | | | |  s- or t-channel via SetProps. Via GenerateMasses the s-channel props receive 
0088       | | | |  their masses. However, StepNT then defines four vectors of legs, two incoming 
0089                and two outgoing each. Starting from the edges of the comb, either the left- 
0090       or the right-most s-channel prop and all the other s-channel props are treated as two 
0091       outgoing partner for a single t-channel. The single s-channel will be treated as belonging 
0092       to an incoming leg to continue to distribute the bulk of all the other s-channel 
0093       props in the next recursion step.
0094       This recursion, shuffling one s-channel leg into one incoming leg per step, is doen by 
0095       SingleTStep.
0096     */
0097     /*!
0098       SingleTStep initializes phase space boundaries and calls then a propagator structure 
0099       peaking at smin for the bulk of s-channel particles. Having two outgoing masses, the 
0100       TChannel method - Momenta or Weight - is called. Then a new s-channel prop to be singled
0101       out is selected.
0102     */
0103     /*!
0104       For a number of points, GenerateMasses defines the minimal invariant masses. It then works 
0105       consecutively and tries to find a sequence of propagators to be set such that the more 
0106       resonating a propagator is the earlier its mass will be selected to maximise the chance
0107       of it contributing significantly.
0108     */
0109     /*!
0110       Linked masses proceeds iterativley from a given point and creates a string that consists of 
0111       all numbers of outgoing particles that are off-springs of this point.
0112     */
0113     /*!
0114       SetProps selects t- and s-channel propagators in comb-like structures.
0115     */
0116     /*!
0117       CalcSmin determines the minimal invariant mass for a single propagator, defined by the sum 
0118       of the minimal invariant masses of all pairs of offsprings.
0119     */
0120     /*!
0121       CalcTSmin calculates the minimal invariant mass for a bulk of propagators 
0122       that has been already equipped with invariant masses.
0123     */
0124     /*!
0125       IdentifyProps checks for t-channel propagators.
0126       Starting by setting all t-flags in the points to zero via InitT, it first initializes the 
0127       previous-links in the points via BackLinks until it finds the second incoming endpoint 
0128       (with b=-1). Starting from there it walks over the previos links setting all
0129       t-flags on the way and incrementing the t-channel prop-counter step by step.
0130     */
0131     /*!
0132       A simple check whether a specific flavour is massive or not.
0133     */
0134 
0135     /*
0136       void    SetDouble(std::string,double);
0137       double  GetDouble(std::string);
0138       void    SetVector(std::string,Vec4D);
0139       Vec4D   GetVector(std::string);
0140       void    Clean();
0141       void    PrintSettings();
0142       ostream Translate(ATOOLS::Flavour);
0143     */
0144     /*!
0145       Copies the pointlist to make sure that we can work on it, identifies the types of 
0146       intermediate lines - whether they are s- or t-channel.
0147     */
0148     /*!
0149       This is the method seen from outside to initalize the channel in the library. It basically 
0150       produces the C-file of the channel and the methods of the file are initialized. MakeChannel 
0151       is called with a counters for the amplitude. 
0152       The individual methods, basically Weight and Momenta are filled by calling the method Step0 
0153       with different flags to switch in their respective "Momenta"- or "Weight"-mode. A counter 
0154       max_numb is passed through all these methods to count and collect the resonant propagators and 
0155       their flavours. Havong done that, with flag = 2, Step0 is passed again to fill in the
0156       ISRtype method. There, if tcount = 0, the isrtype will be set to 1, a Breit-Wigner pole
0157       with corresponding mass and width (that may be zero, such cases will be filtered in
0158       the MakeISRChannels). For t-channel type structures I'd like to have a similar structure,
0159       this is to be done. Finally MakeChannel returns the number of random numbers needed.
0160     */
0161 }  
0162 #endif
0163