| 1 | 
/** | 
| 2 | 
 * \file TrkLevel2.h | 
| 3 | 
 * \author Elena Vannuccini | 
| 4 | 
 */ | 
| 5 | 
#ifndef trklevel2_h | 
| 6 | 
#define trklevel2_h | 
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 | 
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#include <TObject.h> | 
| 9 | 
#include <TObjArray.h> | 
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#include <TClonesArray.h> | 
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#include <TRefArray.h> | 
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#include <TRef.h> | 
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 | 
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#include <TrkParams.h> | 
| 15 | 
#include <TrkLevel1.h> | 
| 16 | 
 | 
| 17 | 
// z-coordinate of track state-vector reference-plane | 
| 18 | 
#define ZINI 23.5    | 
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// (mechanical) z-coordinate of the tracker planes | 
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#define ZTRK6 -22.22 | 
| 21 | 
#define ZTRK5 -13.31 | 
| 22 | 
#define ZTRK4 -4.41 | 
| 23 | 
#define ZTRK3 4.49 | 
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#define ZTRK2 13.39 | 
| 25 | 
#define ZTRK1 22.29 | 
| 26 | 
// magnet cavity dimensions | 
| 27 | 
#define ZMAGNHIGH 21.83 | 
| 28 | 
#define ZMAGNLOW -21.83 | 
| 29 | 
#define XMAGNHIGH 8.07  | 
| 30 | 
#define XMAGNLOW -8.07  | 
| 31 | 
#define YMAGNHIGH 6.57  | 
| 32 | 
#define YMAGNLOW -6.57  | 
| 33 | 
// tof planes  | 
| 34 | 
#define ZS11  53.74 | 
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#define ZS12  53.04 | 
| 36 | 
#define ZS21  23.94 | 
| 37 | 
#define ZS22  23.44 | 
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#define ZS31 -23.49 | 
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#define ZS32 -24.34 | 
| 40 | 
 | 
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// (mechanical) x/y-coordinates of magnet cavity | 
| 42 | 
/* #define XTRKL -8.1 */ | 
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/* #define XTRKR  8.1 */ | 
| 44 | 
/* #define YTRKL -6.6 */ | 
| 45 | 
/* #define YTRKR  6.6 */ | 
| 46 | 
 | 
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/** | 
| 48 | 
 * \brief Class to describe, by points, a particle trajectory in the apparatus.  | 
| 49 | 
 * | 
| 50 | 
 * The idea is to create it by integrating the equations of motion, given the  | 
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 * track state vector and the z coordinates where to evaluate track position. | 
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 */ | 
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// ================================================================== | 
| 54 | 
class Trajectory : public TObject{ | 
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 private: | 
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 | 
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 public: | 
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 | 
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    int npoint; ///< number of evaluated points along the trajectory | 
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    float* x;   //[npoint] | 
| 61 | 
    float* y;   //[npoint] | 
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    float* z;   //[npoint] | 
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    float* thx; //[npoint] | 
| 64 | 
    float* thy; //[npoint] | 
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    float* tl;  //[npoint] | 
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 | 
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    Trajectory(); | 
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    Trajectory(int n); | 
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    Trajectory(int n, float* pz); | 
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    ~Trajectory(){Delete();}; | 
| 71 | 
    void Dump(); | 
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    void Delete(); | 
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 | 
| 74 | 
    int DoTrack2(float* al); | 
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    float GetLength(){float l=0; for(int i=0; i<npoint;i++)l=l+tl[i]; return l;}; | 
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    float GetLength(int,int); | 
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 | 
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    ClassDef(Trajectory,3); | 
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 | 
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}; | 
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/** | 
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 * \brief Class to describe fitted tracks.  | 
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 * | 
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 * A track is defined by the measured coordinates associated to it, the  | 
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 * track status vector, plus other quantities. | 
| 86 | 
 * A track may have an "image", due to the ambiguity in the y view. | 
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 * | 
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 * Cluster flags: xgood[6], ygood[6] | 
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 *  | 
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 * xgood/ygood = +/- 0lsccccccc | 
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 * ccccccc ID (1-7483647) of the included cluster   | 
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 * s       sensor number (1,2   - increasing y) | 
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 * l       ladder number (1,2,3 - increasing x) | 
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 * +/-     does-not/does include bad strips | 
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 * | 
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 */ | 
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// ================================================================== | 
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class TrkTrack : public TObject { | 
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 | 
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private: | 
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 | 
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public: | 
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 | 
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    int   seqno;           ///<stored track sequential number | 
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    int   image;           ///<sequential number of track-image | 
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         | 
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    float al[5];           ///<TRACK STATE VECTOR  | 
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    float coval[5][5];     ///<covariance matrix  | 
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    int   xgood[6];        ///<cluster id for x-view (0 = view not included in the fit)  | 
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    int   ygood[6];        ///<cluster id for y-view (0 = view not included in the fit)  | 
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    float xm[6];           ///<measured x coordinates | 
| 112 | 
    float ym[6];           ///<measured y coordinates  | 
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    float zm[6];           ///<measured z coordinates  | 
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    float resx[6];         ///<spatial resolution on X view | 
| 115 | 
    float resy[6];         ///<spatial resolution on y view | 
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    float tailx[6];        ///<spatial resolution tail on X view | 
| 117 | 
    float taily[6];        ///<spatial resolution tail on y view | 
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    float chi2;            ///<chi2 | 
| 119 | 
    int   nstep;           ///<n.step | 
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    float xv[6];           ///<calculated x coordinates | 
| 121 | 
    float yv[6];           ///<calculated y coordinates | 
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    float zv[6];           ///<calculated z coordinates | 
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    float axv[6];          ///<calculated angles (deg) on x view | 
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    float ayv[6];          ///<calculated angles (deg) on y view | 
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    float dedx_x[6];       ///<dE/dx in MIP (<0 if saturated) | 
| 126 | 
    float dedx_y[6];       ///<dE/dx in MIP (<0 if saturated)  | 
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    int   multmaxx[6];     ///<cluster multiplicity and strip of maximum on x view | 
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    int   multmaxy[6];     ///<cluster multiplicity and strip of maximum on y view | 
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    float seedx[6];        ///< seed of the cluster x | 
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    float seedy[6];        ///< seed of the cluster y | 
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    float xpu[6];          ///< x coordinate in pitch units | 
| 132 | 
    float ypu[6];          ///< y coordinate in pitch units | 
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 | 
| 134 | 
    float xGF[14];         ///<calculated x coordinates on GF reference planes | 
| 135 | 
    float yGF[14];         ///<calculated y coordinates on GF reference planes | 
| 136 | 
 | 
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    TrkTrack(); | 
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    TrkTrack(const TrkTrack&); | 
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 | 
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    ~TrkTrack(){ Delete(); }; | 
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         | 
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    void Dump(); | 
| 143 | 
    void Clear(); | 
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    void Clear(Option_t *option){Clear();}; | 
| 145 | 
    void Delete(); | 
| 146 | 
    void Copy(TrkTrack&); | 
| 147 | 
//    void Set(); | 
| 148 | 
 | 
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    Int_t  GetSeqNo(){return seqno;}        ///< Returns the track sequential number | 
| 150 | 
    Int_t  GetImageSeqNo(){return image;}   ///< Returns the track image sequential number | 
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    Bool_t HasImage(){return !(image==-1);} ///< Returns true if the track has an image | 
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    int DoTrack(Trajectory* t);             ///< Evaluates the trajectory in the apparatus. | 
| 153 | 
    int DoTrack2(Trajectory* t);            ///< Evaluates the trajectory in the apparatus. | 
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    float BdL(){return 0;};                 ///< Evaluates the integral of B*dL along the track. | 
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    Int_t GetNX(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=(Int_t)XGood(i); return n;};  | 
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    Int_t GetNY(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=(Int_t)YGood(i); return n;}; | 
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    Int_t GetNXY(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=(Int_t)YGood(i)*XGood(i); return n;}; | 
| 158 | 
    Int_t GetNtot(){return GetNX()+GetNY();}; | 
| 159 | 
    Float_t GetRigidity(); | 
| 160 | 
    Float_t GetDeflection(); | 
| 161 | 
    Bool_t IsSaturated(int,int); | 
| 162 | 
    Bool_t IsSaturated(int); | 
| 163 | 
    Bool_t IsSaturated(); | 
| 164 | 
    Bool_t IsBad(int,int); | 
| 165 | 
    Float_t GetDEDX(); | 
| 166 | 
    Float_t GetDEDX(int ip); | 
| 167 | 
    Float_t GetDEDX(int ip,int iv); | 
| 168 | 
    Int_t GetLeverArmXY(); | 
| 169 | 
    Int_t GetLeverArmX(); | 
| 170 | 
    Int_t GetLeverArmY(); | 
| 171 | 
    Float_t GetChi2X(); | 
| 172 | 
    Float_t GetChi2Y(); | 
| 173 | 
    Float_t GetLnLX(); | 
| 174 | 
    Float_t GetLnLY(); | 
| 175 | 
 | 
| 176 | 
    Float_t GetEffectiveAngle(int ip, int iv); | 
| 177 | 
     | 
| 178 | 
    void SetMeasure(double *xmeas, double *ymeas, double *zmeas); | 
| 179 | 
    void SetResolution(double *rx, double *ry); | 
| 180 | 
    void SetTail(double *tx, double *ty, double factor); | 
| 181 | 
    void SetStudentParam(int flag); | 
| 182 | 
    void SetGood(int *xg, int *yg); | 
| 183 | 
    void LoadField(TString s); | 
| 184 | 
    void Fit(double pfixed, int& fail, int iprint, int froml1); | 
| 185 | 
    void Fit(double pfixed, int& fail, int iprint){ Fit(pfixed,fail,iprint,0); }; | 
| 186 | 
    void FitReset(); | 
| 187 | 
    void SetTrackingMode(int trackmode); | 
| 188 | 
    void SetPrecisionFactor(double fact); | 
| 189 | 
    void SetStepMin(int istepmin); | 
| 190 | 
    void SetDeltaB(int id, double db); | 
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 | 
| 192 | 
    Bool_t IsInsideCavity(float); | 
| 193 | 
    Bool_t IsInsideCavity(){ return IsInsideCavity(0.); }; | 
| 194 | 
    Bool_t IsInsideAcceptance(); | 
| 195 | 
 | 
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    Bool_t EvaluateClusterPositions(); | 
| 197 | 
 | 
| 198 | 
    void FillMiniStruct(cMini2track&); | 
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    void SetFromMiniStruct(cMini2track*); | 
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     | 
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    Int_t GetClusterX_ID(int ip); | 
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    Int_t GetClusterY_ID(int ip); | 
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    Int_t GetLadder(int ip); | 
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    Int_t GetSensor(int ip); | 
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    Bool_t XGood(int ip){ return GetClusterX_ID(ip)!=-1; }; | 
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    Bool_t YGood(int ip){ return GetClusterY_ID(ip)!=-1; }; | 
| 207 | 
    void ResetXGood(int ip){ xgood[ip]=0; }; | 
| 208 | 
    void ResetYGood(int ip){ ygood[ip]=0; }; | 
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/*     void SetXGood(int ip, int clid, int is); */ | 
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/*     void SetYGood(int ip, int clid, int is); */ | 
| 211 | 
    void SetXGood(int ip, int clid, int il, int is, bool bad); | 
| 212 | 
    void SetYGood(int ip, int clid, int il, int is, bool bad); | 
| 213 | 
    void SetXGood(int ip, int clid, int il, int is){ SetXGood(ip,clid,il,is,false); }; | 
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    void SetYGood(int ip, int clid, int il, int is){ SetYGood(ip,clid,il,is,false); }; | 
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 | 
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 | 
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    Bool_t BadClusterX(int ip){ return IsBad(ip,0); }; | 
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    Bool_t BadClusterY(int ip){ return IsBad(ip,1); }; | 
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 | 
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    Bool_t SaturatedClusterX(int ip){ return IsSaturated(ip,0); }; | 
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    Bool_t SaturatedClusterY(int ip){ return IsSaturated(ip,1); }; | 
| 222 | 
 | 
| 223 | 
    Int_t GetClusterX_Multiplicity(int ip){ return (Int_t)(multmaxx[ip]/10000); }; | 
| 224 | 
    Int_t GetClusterY_Multiplicity(int ip){ return (Int_t)(multmaxy[ip]/10000); }; | 
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    Int_t GetClusterX_MaxStrip(int ip){ return (Int_t)(multmaxx[ip]%10000); }; | 
| 226 | 
    Int_t GetClusterY_MaxStrip(int ip){ return (Int_t)(multmaxy[ip]%10000); }; | 
| 227 | 
    Float_t GetClusterX_Seed(int ip){ return seedx[ip]; }; | 
| 228 | 
    Float_t GetClusterY_Seed(int ip){ return seedy[ip]; }; | 
| 229 | 
/*     Float_t GetClusterX_oordinatePU(int ip); */ | 
| 230 | 
/*     Float_t GetClusterY_CoordinatePU(int ip); */ | 
| 231 | 
     | 
| 232 | 
    Float_t GetYav(); | 
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    Float_t GetXav(); | 
| 234 | 
    Float_t GetZav(); | 
| 235 | 
 | 
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    Int_t GetNColumns(); | 
| 237 | 
 | 
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    Float_t GetDEDX_max(int ip, int iv); | 
| 239 | 
    Float_t GetDEDX_max(int iv){ return GetDEDX_max(-1,iv); }; | 
| 240 | 
    Float_t GetDEDX_max(){ return GetDEDX_max(-1,-1); }; | 
| 241 | 
    Float_t GetDEDX_min(int ip, int iv); | 
| 242 | 
    Float_t GetDEDX_min(int iv){ return GetDEDX_min(-1,iv); }; | 
| 243 | 
    Float_t GetDEDX_min(){ return GetDEDX_min(-1,-1); }; | 
| 244 | 
 | 
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    Float_t GetResidual_max(int ip, int iv); | 
| 246 | 
    Float_t GetResidual_max(int iv){ return GetResidual_max(-1,iv); }; | 
| 247 | 
    Float_t GetResidual_max(){ return GetResidual_max(-1,-1); }; | 
| 248 | 
    Float_t GetResidual_av(int ip, int iv); | 
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    Float_t GetResidual_av(int iv){ return GetResidual_av(-1,iv); }; | 
| 250 | 
    Float_t GetResidual_av(){ return GetResidual_av(-1,-1); }; | 
| 251 | 
 | 
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    Int_t GetClusterX_Multiplicity_max(); | 
| 253 | 
    Int_t GetClusterX_Multiplicity_min(); | 
| 254 | 
    Int_t GetClusterY_Multiplicity_max(); | 
| 255 | 
    Int_t GetClusterY_Multiplicity_min(); | 
| 256 | 
 | 
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    Float_t GetClusterX_Seed_min(); | 
| 258 | 
    Float_t GetClusterY_Seed_min(); | 
| 259 | 
 | 
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    TrkTrack* GetTrkTrack(){return this;}; | 
| 261 | 
 | 
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    friend class TrkLevel2; | 
| 263 | 
 | 
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    ClassDef(TrkTrack,5); | 
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 | 
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}; | 
| 267 | 
/** | 
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 * \brief Class to describe single clusters ("singlets").  | 
| 269 | 
 * | 
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 * Single clusters are clusters not associated to any track. | 
| 271 | 
 */ | 
| 272 | 
class TrkSinglet : public TObject { | 
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 | 
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private: | 
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         | 
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 | 
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public: | 
| 278 | 
         | 
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    int plane;       ///<plane  | 
| 280 | 
    float coord[2];  ///<coordinate (on sensor 1 and 2) | 
| 281 | 
    float sgnl;      ///<cluster signal in MIP (<0 if saturated) | 
| 282 | 
    int multmax;     ///<cluster multiplicity and strip of maximum | 
| 283 | 
 | 
| 284 | 
    TrkSinglet(); | 
| 285 | 
    TrkSinglet(const TrkSinglet&); | 
| 286 | 
    ~TrkSinglet(){Delete();}; | 
| 287 | 
 | 
| 288 | 
    void Dump(); | 
| 289 | 
    void Clear(); | 
| 290 | 
    void Clear(Option_t *option){Clear();}; | 
| 291 | 
    void Delete(){Clear();}; | 
| 292 | 
    Float_t GetSignal(){return fabs(sgnl);} | 
| 293 | 
    Bool_t IsSaturated(){return (sgnl<0); }; | 
| 294 | 
 | 
| 295 | 
    Bool_t IsBad()                 { return multmax<=0; }; | 
| 296 | 
    Int_t GetCluster_Multiplicity(){ return (Int_t)(abs(multmax)/10000); }; | 
| 297 | 
    Int_t GetCluster_MaxStrip()    { return (Int_t)(abs(multmax)%10000); }; | 
| 298 | 
 | 
| 299 | 
 | 
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    friend class TrkLevel2; | 
| 301 | 
 | 
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    ClassDef(TrkSinglet,4); | 
| 303 | 
 | 
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}; | 
| 305 | 
 | 
| 306 | 
/** | 
| 307 | 
 * \brief Class to describe tracker LEVEL2 data. | 
| 308 | 
 * | 
| 309 | 
 * A tracker events is defined by some general variables, plus the collection of all the fitted tracks and all  | 
| 310 | 
 * single clusters on X and Y views.  | 
| 311 | 
 * Tracks and single clusters ("singlets") are described by the classes TrkTrack and TrkSinglet respectivelly. | 
| 312 | 
 *  | 
| 313 | 
 * Each track may have an "image", due to the ambiguity on the Y view, which is stored also.  | 
| 314 | 
 * Thus, the number of stored tracks ( ntrk() ) differs from the number of "physical" tracks ( GetNTracks() ).  | 
| 315 | 
 * Proper methods allow to sort tracks and select the physical ones ( GetTracks() ). | 
| 316 | 
 * | 
| 317 | 
 * The event status indicates the processing status of data from each DSP, according to the following | 
| 318 | 
 * notation: | 
| 319 | 
 * | 
| 320 | 
 * LSB --> 0 missing packet | 
| 321 | 
 *         1 CRC error | 
| 322 | 
 *         2 on-line software alarm (latch-up, timeout ecc...) | 
| 323 | 
 *         3 jump in the trigger counter | 
| 324 | 
 *         4 decode error | 
| 325 | 
 *         5 n.clusters > maximum number (level1 processing) | 
| 326 | 
 *         6  | 
| 327 | 
 *         7  | 
| 328 | 
 *         8 n.clusters > maximum value (level2 processing) | 
| 329 | 
 *         9 n.couples per plane > maximum values (vector dimention) | 
| 330 | 
 *         10 n.doublets > maximum values | 
| 331 | 
 *         11 n.triplets > maximum values | 
| 332 | 
 *         12 n.yz-clouds > maximum values | 
| 333 | 
 *         13 n.xz-clouds > maximum values  | 
| 334 | 
 *         14 n.candidate-tracks > maximum values | 
| 335 | 
 *         15 n.couples per plane > maximum values (for Hough transform) | 
| 336 | 
 * MSB --> 16  | 
| 337 | 
 *          | 
| 338 | 
 * | 
| 339 | 
 * For all data processed before June 2007 the event status was coded according to | 
| 340 | 
 * a different rule: | 
| 341 | 
 * | 
| 342 | 
 * Status of level1 processing | 
| 343 | 
 *  0 -- OK   | 
| 344 | 
 *  1 -- missing packet | 
| 345 | 
 *  2 -- 1  CRC error | 
| 346 | 
 *  3 -- 2 on-line software alarm (latch-up flags asserted or n.transmitted-words = 0) | 
| 347 | 
 *  4 -- 3 jump in the trigger counter | 
| 348 | 
 * 10 -- 4 decode error | 
| 349 | 
 * 11 -- 5  n.clusters > maximum number (for level1 processing) | 
| 350 | 
 * Status of level2 processing | 
| 351 | 
 * 21 -- 0 n.clusters > maximum value (for level2 processing) | 
| 352 | 
 * 22 -- 1 n.couples per plane > maximum values (vector dimention) | 
| 353 | 
 * 23 -- 2 n.doublets > maximum values  | 
| 354 | 
 * 24 -- 3 n.triplets > maximum values  | 
| 355 | 
 * 25 -- 4 n.yz-clouds > maximum values  | 
| 356 | 
 * 26 -- 5 n.xz-clouds > maximum values  | 
| 357 | 
 * 27 -- 6 n.candidate-tracks > maximum values  | 
| 358 | 
 * 28 -- 7 n.couples per plane > maximum values (for Hough transform) | 
| 359 | 
 *   | 
| 360 | 
 *  | 
| 361 | 
 */ | 
| 362 | 
class TrkLevel2 : public TObject { | 
| 363 | 
 | 
| 364 | 
 private: | 
| 365 | 
  | 
| 366 | 
 public: | 
| 367 | 
 | 
| 368 | 
    Int_t         good[12];       ///< event status | 
| 369 | 
    UInt_t        VKmask[12];     ///< Viking-chip mask | 
| 370 | 
    UInt_t        VKflag[12];     ///< Viking-chip flag | 
| 371 | 
 | 
| 372 | 
    TClonesArray *Track;        ///< fitted tracks | 
| 373 | 
    TClonesArray *SingletX;     ///< x singlets | 
| 374 | 
    TClonesArray *SingletY;     ///< y singlets | 
| 375 | 
 | 
| 376 | 
    TrkLevel2(); | 
| 377 | 
//    TrkLevel2(cTrkLevel2 *); | 
| 378 | 
    ~TrkLevel2(){Delete();}; | 
| 379 | 
         | 
| 380 | 
    void Clear(); | 
| 381 | 
    void Clear(Option_t *option){Clear();}; | 
| 382 | 
    void Delete(); | 
| 383 | 
    void Set(); | 
| 384 | 
    int UnpackError(){ for(int i=0; i<12; i++)if(StatusCheck(i,0x12))return 1; return 0;}; | 
| 385 | 
     | 
| 386 | 
    int ntrk() {return Track->GetEntries();}    ///< number of stored track | 
| 387 | 
    int nclsx(){return SingletX->GetEntries();} ///< number of x singlets  | 
| 388 | 
    int nclsy(){return SingletY->GetEntries();} ///< number of y singlets  | 
| 389 | 
 | 
| 390 | 
    void Dump(); | 
| 391 | 
    void SetFromLevel2Struct(cTrkLevel2 *, TrkLevel1 *); | 
| 392 | 
    void SetFromLevel2Struct(cTrkLevel2 *s2){ SetFromLevel2Struct(s2, NULL);          }; | 
| 393 | 
    void SetFromLevel2Struct(TrkLevel1 *l1) { SetFromLevel2Struct(&level2event_, l1); };     | 
| 394 | 
    void SetFromLevel2Struct()              { SetFromLevel2Struct(&level2event_);     };     | 
| 395 | 
    void GetLevel2Struct(cTrkLevel2 *) const; | 
| 396 | 
    void LoadField(TString); | 
| 397 | 
    float GetBX(float* v){return TrkParams::GetBX(v);};///< Bx (kGauss) | 
| 398 | 
    float GetBY(float* v){return TrkParams::GetBY(v);};///< By (kGauss) | 
| 399 | 
    float GetBZ(float* v){return TrkParams::GetBZ(v);};///< Bz (kGauss) | 
| 400 | 
    Float_t GetZTrk(Int_t); | 
| 401 | 
    Float_t GetXTrkLeft(){return XMAGNLOW;}; | 
| 402 | 
    Float_t GetXTrkRight(){return XMAGNHIGH;}; | 
| 403 | 
    Float_t GetYTrkLeft(){return YMAGNLOW;}; | 
| 404 | 
    Float_t GetYTrkRight(){return YMAGNHIGH;}; | 
| 405 | 
     | 
| 406 | 
    Bool_t IsMaskedVK(int,int); | 
| 407 | 
    Bool_t GetVKMask(int,int); | 
| 408 | 
    Bool_t GetVKFlag(int,int); | 
| 409 | 
 | 
| 410 | 
    TrkSinglet   *GetSingletX(int); | 
| 411 | 
    TrkSinglet   *GetSingletY(int); | 
| 412 | 
     | 
| 413 | 
    TrkTrack     *GetStoredTrack(int i); | 
| 414 | 
    Int_t         GetSeqNo(Int_t i)  {return (((TrkTrack *)Track->At(i))->seqno);}; ///< Returns track sequential number | 
| 415 | 
 | 
| 416 | 
    TRefArray *GetTracks_NFitSorted(); | 
| 417 | 
    TRefArray *GetTracks(){return this->GetTracks_NFitSorted();}; | 
| 418 | 
     | 
| 419 | 
    Int_t     GetNTracks(); | 
| 420 | 
    TrkTrack* GetTrack(int i); | 
| 421 | 
    TrkTrack* GetTrackImage(int i); | 
| 422 | 
     | 
| 423 | 
    TrkLevel2*    GetTrkLevel2(){return this;} | 
| 424 | 
    TClonesArray* GetTrackArray(){return Track;};///< returns pointer to the track array | 
| 425 | 
     | 
| 426 | 
    void   StatusDump(int view); | 
| 427 | 
    Bool_t StatusCheck(int view, int flagmask); | 
| 428 | 
 | 
| 429 | 
    ClassDef(TrkLevel2,3); | 
| 430 | 
 | 
| 431 | 
}; | 
| 432 | 
 | 
| 433 | 
#endif |