/[PAMELA software]/DarthVader/TrackerLevel2/inc/TrkLevel2.h
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revision 1.7 by pam-fi, Fri Aug 4 08:18:05 2006 UTC revision 1.40 by pam-fi, Fri Dec 5 11:33:30 2008 UTC
# Line 9  Line 9 
9  #include <TObjArray.h>  #include <TObjArray.h>
10  #include <TClonesArray.h>  #include <TClonesArray.h>
11  #include <TRefArray.h>  #include <TRefArray.h>
12    #include <TRef.h>
13    
14  #include <TrkStruct.h>  #include <TrkParams.h>
15    #include <TrkLevel1.h>
16    
17  // z-coordinate of track state-vector reference-plane  // z-coordinate of track state-vector reference-plane
18  #define ZINI 23.5    #define ZINI 23.5  
 // upper and lower (mechanical) z-coordinate of the tracker  
 //#define ZTRKUP 22.29  
 //#define ZTRKDW -22.22  
19  // (mechanical) z-coordinate of the tracker planes  // (mechanical) z-coordinate of the tracker planes
20  #define ZTRK6 -22.23  #define ZTRK6 -22.22
21  #define ZTRK5 -13.32  #define ZTRK5 -13.31
22  #define ZTRK4 -4.42  #define ZTRK4 -4.41
23  #define ZTRK3 4.48  #define ZTRK3 4.49
24  #define ZTRK2 13.38  #define ZTRK2 13.39
25  #define ZTRK1 22.28  #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
35    #define ZS12  53.04
36    #define ZS21  23.94
37    #define ZS22  23.44
38    #define ZS31 -23.49
39    #define ZS32 -24.34
40    
41  // (mechanical) x/y-coordinates of magnet cavity  // (mechanical) x/y-coordinates of magnet cavity
42  #define XTRKL -8.1  /* #define XTRKL -8.1 */
43  #define XTRKR  8.1  /* #define XTRKR  8.1 */
44  #define YTRKL -6.6  /* #define YTRKL -6.6 */
45  #define YTRKR  6.6  /* #define YTRKR  6.6 */
46    
47  /**  /**
48   * \brief Class to describe, by points, a particle trajectory in the apparatus.   * \brief Class to describe, by points, a particle trajectory in the apparatus.
# Line 43  class Trajectory : public TObject{ Line 57  class Trajectory : public TObject{
57   public:   public:
58    
59      int npoint; ///< number of evaluated points along the trajectory      int npoint; ///< number of evaluated points along the trajectory
60      float* x;   ///< x coordinates      float* x;   //[npoint]
61      float* y;   ///< y coordinates      float* y;   //[npoint]
62      float* z;   ///< z coordinates      float* z;   //[npoint]
63      float* thx; ///< x projected angle      float* thx; //[npoint]
64      float* thy; ///< y projected angle      float* thy; //[npoint]
65      float* tl;  ///< track length      float* tl;  //[npoint]
66    
67      Trajectory();      Trajectory();
68      Trajectory(int n);      Trajectory(int n);
69      Trajectory(int n, float* pz);      Trajectory(int n, float* pz);
70        ~Trajectory(){Delete();};
71      void Dump();      void Dump();
72        void Delete();
73    
74        int DoTrack2(float* al);
75      float GetLength(){float l=0; for(int i=0; i<npoint;i++)l=l+tl[i]; return l;};      float GetLength(){float l=0; for(int i=0; i<npoint;i++)l=l+tl[i]; return l;};
76      float GetLength(int,int);      float GetLength(int,int);
77    
78      ClassDef(Trajectory,1);      ClassDef(Trajectory,3);
79    
80  };  };
81  /**  /**
# Line 67  class Trajectory : public TObject{ Line 84  class Trajectory : public TObject{
84   * A track is defined by the measured coordinates associated to it, the   * A track is defined by the measured coordinates associated to it, the
85   * track status vector, plus other quantities.   * track status vector, plus other quantities.
86   * A track may have an "image", due to the ambiguity in the y view.   * A track may have an "image", due to the ambiguity in the y view.
87     *
88     * Cluster flags: xgood[6], ygood[6]
89     *
90     * xgood/ygood = +/- 0lsccccccc
91     * ccccccc ID (1-7483647) of the included cluster  
92     * s       sensor number (1,2   - increasing y)
93     * l       ladder number (1,2,3 - increasing x)
94     * +/-     does-not/does include bad strips
95     *
96   */   */
97  // ==================================================================  // ==================================================================
98  class TrkTrack : public TObject {  class TrkTrack : public TObject {
99    
100  private:  private:
101    
     int   seqno;           ///<stored track sequential number  
     int   image;           ///<sequential number of track-image  
   
102  public:  public:
103    
104        int   seqno;           ///<stored track sequential number
105        int   image;           ///<sequential number of track-image
106            
107      float al[5];           ///<TRACK STATE VECTOR      float al[5];           ///<TRACK STATE VECTOR
108      float coval[5][5];     ///<covariance matrix      float coval[5][5];     ///<covariance matrix
109      int   xgood[6];        ///<mask of included x planes      int   xgood[6];        ///<cluster id for x-view (0 = view not included in the fit)
110      int   ygood[6];        ///<mask of included y planes      int   ygood[6];        ///<cluster id for y-view (0 = view not included in the fit)
111      float xm[6];           ///<measured x coordinates      float xm[6];           ///<measured x coordinates
112      float ym[6];           ///<measured y coordinates      float ym[6];           ///<measured y coordinates
113      float zm[6];           ///<measured z coordinates      float zm[6];           ///<measured z coordinates
114      float resx[6];         ///<spatial resolution on X view      float resx[6];         ///<spatial resolution on X view
115      float resy[6];         ///<spatial resolution on y view      float resy[6];         ///<spatial resolution on y view
116        float tailx[6];        ///<spatial resolution tail on X view
117        float taily[6];        ///<spatial resolution tail on y view
118      float chi2;            ///<chi2      float chi2;            ///<chi2
119        int   nstep;           ///<n.step
120      float xv[6];           ///<calculated x coordinates      float xv[6];           ///<calculated x coordinates
121      float yv[6];           ///<calculated y coordinates      float yv[6];           ///<calculated y coordinates
122      float zv[6];           ///<calculated z coordinates      float zv[6];           ///<calculated z coordinates
123      float axv[6];          ///<calculated angles (deg) on x view      float axv[6];          ///<calculated angles (deg) on x view
124      float ayv[6];          ///<calculated angles (deg) on y view      float ayv[6];          ///<calculated angles (deg) on y view
125      float dedx_x[6];       ///<signal in MIP (scaled to 300 micrometer)      float dedx_x[6];       ///<dE/dx in MIP (<0 if saturated)
126      float dedx_y[6];       ///<signal in MIP (scaled to 300 micrometer)      float dedx_y[6];       ///<dE/dx in MIP (<0 if saturated)
127        int   multmaxx[6];     ///<cluster multiplicity and strip of maximum on x view
128        int   multmaxy[6];     ///<cluster multiplicity and strip of maximum on y view
129        float seedx[6];        ///< seed of the cluster x
130        float seedy[6];        ///< seed of the cluster y
131        float xpu[6];          ///< x coordinate in pitch units
132        float ypu[6];          ///< y coordinate in pitch units
133    
134        float xGF[14];         ///<calculated x coordinates on GF reference planes
135        float yGF[14];         ///<calculated y coordinates on GF reference planes
136    
137      TrkTrack();      TrkTrack();
138      TrkTrack(const TrkTrack&);      TrkTrack(const TrkTrack&);
139    
140        ~TrkTrack(){ Delete(); };
141            
142      void Dump();      void Dump();
143        void Clear();
144        void Clear(Option_t *option){Clear();};
145        void Delete();
146        void Copy(TrkTrack&);
147    //    void Set();
148    
149      Int_t  GetSeqNo(){return seqno;}        ///< Returns the track sequential number      Int_t  GetSeqNo(){return seqno;}        ///< Returns the track sequential number
150      Int_t  GetImageSeqNo(){return image;}   ///< Returns the track image sequential number      Int_t  GetImageSeqNo(){return image;}   ///< Returns the track image sequential number
151      Bool_t HasImage(){return !(image==-1);} ///< Returns true if the track has an image      Bool_t HasImage(){return !(image==-1);} ///< Returns true if the track has an image
152      int DoTrack(Trajectory* t);                         ///< Evaluates the trajectory in the apparatus.      int DoTrack(Trajectory* t);             ///< Evaluates the trajectory in the apparatus.
153      int DoTrack2(Trajectory* t);                        ///< Evaluates the trajectory in the apparatus.      int DoTrack2(Trajectory* t);            ///< Evaluates the trajectory in the apparatus.
154      float BdL(){return 0;};                                     ///< Evaluates the integral of B*dL along the track.      float BdL(){return 0;};                 ///< Evaluates the integral of B*dL along the track.
155      Int_t GetNX(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=xgood[i]; return n;};      Int_t GetNX(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=(Int_t)XGood(i); return n;};
156      Int_t GetNY(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=ygood[i]; return n;};      Int_t GetNY(){Int_t n=0; for(Int_t i=0; i<6; i++)n+=(Int_t)YGood(i); return n;};
157        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();};      Int_t GetNtot(){return GetNX()+GetNY();};
159      Float_t GetRigidity();      Float_t GetRigidity();
160      Float_t GetDeflection();      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();      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);
191    
192        Bool_t IsInsideCavity(float);
193        Bool_t IsInsideCavity(){ return IsInsideCavity(0.); };
194        Bool_t IsInsideAcceptance();
195    
196        Bool_t EvaluateClusterPositions();
197    
198        void FillMiniStruct(cMini2track&);
199        void SetFromMiniStruct(cMini2track*);
200        
201        Int_t GetClusterX_ID(int ip);
202        Int_t GetClusterY_ID(int ip);
203        Int_t GetLadder(int ip);
204        Int_t GetSensor(int ip);
205        Bool_t XGood(int ip){ return GetClusterX_ID(ip)!=-1; };
206        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; };
209    /*     void SetXGood(int ip, int clid, int is); */
210    /*     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); };
214        void SetYGood(int ip, int clid, int il, int is){ SetYGood(ip,clid,il,is,false); };
215    
216    
217        Bool_t BadClusterX(int ip){ return IsBad(ip,0); };
218        Bool_t BadClusterY(int ip){ return IsBad(ip,1); };
219    
220        Bool_t SaturatedClusterX(int ip){ return IsSaturated(ip,0); };
221        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); };
225        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();
233        Float_t GetXav();
234        Float_t GetZav();
235    
236        Int_t GetNColumns();
237    
238        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    
245        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);
249        Float_t GetResidual_av(int iv){ return GetResidual_av(-1,iv); };
250        Float_t GetResidual_av(){ return GetResidual_av(-1,-1); };
251    
252        Int_t GetClusterX_Multiplicity_max();
253        Int_t GetClusterX_Multiplicity_min();
254        Int_t GetClusterY_Multiplicity_max();
255        Int_t GetClusterY_Multiplicity_min();
256    
257        Float_t GetClusterX_Seed_min();
258        Float_t GetClusterY_Seed_min();
259    
260      TrkTrack* GetTrkTrack(){return this;};      TrkTrack* GetTrkTrack(){return this;};
261    
262      friend class TrkLevel2;      friend class TrkLevel2;
263    
264      ClassDef(TrkTrack,1);      ClassDef(TrkTrack,5);
265    
266  };  };
267  /**  /**
# Line 131  public: Line 272  public:
272  class TrkSinglet : public TObject {  class TrkSinglet : public TObject {
273    
274  private:  private:
275            
276    
277  public:  public:
278            
279      int plane;       ///<plane      int plane;       ///<plane
280      float coord[2];  ///<coordinate (on sensor 1 and 2)      float coord[2];  ///<coordinate (on sensor 1 and 2)
281      float sgnl;      ///<cluster signal in MIP      float sgnl;      ///<cluster signal in MIP (<0 if saturated)
282        int multmax;     ///<cluster multiplicity and strip of maximum
283    
284      TrkSinglet();      TrkSinglet();
285      TrkSinglet(const TrkSinglet&);      TrkSinglet(const TrkSinglet&);
286        ~TrkSinglet(){Delete();};
287    
288      void Dump();      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    
300      friend class TrkLevel2;      friend class TrkLevel2;
301    
302      ClassDef(TrkSinglet,1);      ClassDef(TrkSinglet,4);
303    
304  };  };
305    
# Line 159  public: Line 313  public:
313   * Each track may have an "image", due to the ambiguity on the Y view, which is stored also.   * 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() ).   * 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() ).   * 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 {  class TrkLevel2 : public TObject {
363    
364   private:   private:
365            
 //      TRefArray    *PhysicalTrack;  ///< physical tracks (no image) -  
           
366   public:   public:
367    
368      Int_t good2;      Int_t         good[12];       ///< event status
369      Int_t crc[12];      UInt_t        VKmask[12];     ///< Viking-chip mask
370        UInt_t        VKflag[12];     ///< Viking-chip flag
371    
372      TClonesArray *Track;        ///< fitted tracks      TClonesArray *Track;        ///< fitted tracks
373      TClonesArray *SingletX;     ///< x singlets      TClonesArray *SingletX;     ///< x singlets
# Line 177  class TrkLevel2 : public TObject { Line 375  class TrkLevel2 : public TObject {
375    
376      TrkLevel2();      TrkLevel2();
377  //    TrkLevel2(cTrkLevel2 *);  //    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      int ntrk() {return Track->GetEntries();}    ///< number of stored track
387      int nclsx(){return SingletX->GetEntries();} ///< number of x singlets      int nclsx(){return SingletX->GetEntries();} ///< number of x singlets
388      int nclsy(){return SingletY->GetEntries();} ///< number of y singlets      int nclsy(){return SingletY->GetEntries();} ///< number of y singlets
389    
390      void Dump();      void Dump();
391      void SetFromLevel2Struct(cTrkLevel2 *);      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;      void GetLevel2Struct(cTrkLevel2 *) const;
     void Clear();  
396      void LoadField(TString);      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);      Float_t GetZTrk(Int_t);
401      Float_t GetXTrkLeft(){return XTRKL;};      Float_t GetXTrkLeft(){return XMAGNLOW;};
402      Float_t GetXTrkRight(){return XTRKR;};      Float_t GetXTrkRight(){return XMAGNHIGH;};
403      Float_t GetYTrkLeft(){return YTRKL;};      Float_t GetYTrkLeft(){return YMAGNLOW;};
404      Float_t GetYTrkRight(){return YTRKR;};      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);      TrkSinglet   *GetSingletX(int);
411      TrkSinglet   *GetSingletY(int);      TrkSinglet   *GetSingletY(int);
412            
413      TrkTrack     *GetStoredTrack(int i);      TrkTrack     *GetStoredTrack(int i);
414      Int_t         GetSeqNo(Int_t i)  {return (((TrkTrack *)Track->At(i))->seqno);}; ///< Returns track sequential number      Int_t         GetSeqNo(Int_t i)  {return (((TrkTrack *)Track->At(i))->seqno);}; ///< Returns track sequential number
 //    TClonesArray *GetTracks_Chi2Sorted();  
 //    TClonesArray *GetTracks_NFitSorted();  
 //    TClonesArray *GetTracks();  
         TRefArray *GetTracks_NFitSorted();  
         TRefArray *GetTracks(){return this->GetTracks_NFitSorted();};  
   
 //    int       GetNTracks(){return this->GetTracks()->GetEntries();}  
         Int_t     GetNTracks();  
         TrkTrack* GetTrack(int i);  
     TrkTrack* GetTrackImage(int i);  
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;}      TrkLevel2*    GetTrkLevel2(){return this;}
424      TClonesArray* GetTrackArray(){return Track;};///< returns pointer to the track array      TClonesArray* GetTrackArray(){return Track;};///< returns pointer to the track array
425            
426      ClassDef(TrkLevel2,1);      void   StatusDump(int view);
427        Bool_t StatusCheck(int view, int flagmask);
 };  
428    
429        ClassDef(TrkLevel2,3);
430    
431    };
432    
433  #endif  #endif

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