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root/cvsroot/UserCode/CSCPriEff/src/TPTrackMuonSys.cc
Revision: 1.7
Committed: Tue May 7 21:12:35 2013 UTC (11 years, 11 months ago) by zhangjin
Content type: text/plain
Branch: MAIN
Changes since 1.6: +17 -6 lines
Log Message:
fix the problem of mixing the ME11A and ME11B geom in LCT

File Contents

# User Rev Content
1 zhangjin 1.1 // -*- C++ -*-
2     //
3     // Package: TPTrackMuonSys
4     // Class: TPTrackMuonSys
5     //
6     /**\class TPTrackMuonSys TPTrackMuonSys.cc RPhysicsStudies/TPTrackMuonSys/src/TPTrackMuonSys.cc
7    
8     Description: [one line class summary]
9    
10     Implementation:
11     [Notes on implementation]
12     */
13     //
14     // Original Author: Chaouki Boulahouache,32 4-A05,+41227674763;
15     // Jinzhong Zhang,32 4-C21,+41227671337,
16     // Created: Wed May 12 15:52:13 CEST 2010
17     // $Id$
18     //
19     // system include files
20     #include <memory>
21    
22     // user include files
23     #include "../interface/TPTrackMuonSys.h"
24    
25     TPTrackMuonSys::TPTrackMuonSys(const edm::ParameterSet& Conf) : theDbConditions( Conf ) {
26     //now do what ever initialization is needed
27     m_rootFileName = Conf.getUntrackedParameter<std::string>("rootFileName","PhyTree.root");
28     ///////////////////////////////
29     // Various input parameters.
30     //////////////////////////////
31    
32     // A debug flag, here I can set different debugging steps based on the m_debug value,
33     m_gTracksTag = Conf.getUntrackedParameter<edm::InputTag>("gTracksTag"); // "generalTracks"
34     m_dEdxDiscrimTag = Conf.getUntrackedParameter<edm::InputTag>("dedxTag"); //dedxHarmonic2
35     trackProducer = Conf.getParameter<edm::InputTag>("trackProducer");
36     m_vertexSrc = Conf.getParameter<edm::InputTag>("vertexCollection");
37    
38     m_hlt = Conf.getUntrackedParameter<edm::InputTag>("hltTag"); //TriggerResults::HLT
39     m_hltTrgEv = Conf.getUntrackedParameter<edm::InputTag>("hltEvTag"); //TriggerResults::HLT
40     m_L1extraTag = Conf.getUntrackedParameter<edm::InputTag>("L1extraTag");
41    
42     m_HepMCTag = Conf.getUntrackedParameter<string>("HepMCTag","generator");
43    
44     m_HLTMuTrgNames = Conf.getParameter< vector<string> >("HLTMuTrgNames");
45     m_HLTDiMuTrgName = Conf.getParameter< string >("HLTDiMuTrgName");
46    
47     // TrackAssociator parameters
48     edm::ParameterSet parameters = Conf.getParameter<edm::ParameterSet>("TrackAssociatorParameters");
49 zhangjin 1.2 trackExtractorPSet_ = Conf.getParameter<edm::ParameterSet>("TrackExtractor");
50 zhangjin 1.1 parameters_.loadParameters( parameters );
51     trackAssociator_.useDefaultPropagator();
52    
53     /// Now the MC specific information... if available...
54     //
55     m_isMC = Conf.getUntrackedParameter<bool>("isMC");
56     m_mcTag = Conf.getUntrackedParameter<edm::InputTag>("mcTag"); //
57    
58     // flags to switch on/off individual modules
59     // set counters to zero
60     nEventsAnalyzed = 0;
61     treeCount = 0;
62    
63     // Create the root file for the histograms
64     theFile = new TFile(m_rootFileName.c_str(), "RECREATE");
65    
66    
67     //////////////////// for LUTs
68 zhangjin 1.5 /*
69 zhangjin 1.1 bzero(srLUTs_, sizeof(srLUTs_));
70     //Int_t endcap =1, sector =1;
71     Bool_t TMB07=true;
72     edm::ParameterSet srLUTset;
73     srLUTset.addUntrackedParameter<bool>("ReadLUTs", false);
74     srLUTset.addUntrackedParameter<bool>("Binary", false);
75     srLUTset.addUntrackedParameter<std::string>("LUTPath", "./");
76     for(Int_t endcapItr = CSCDetId::minEndcapId(); endcapItr <= CSCDetId::maxEndcapId(); endcapItr++){
77     for(Int_t sectorItr = CSCTriggerNumbering::minTriggerSectorId();sectorItr <= CSCTriggerNumbering::maxTriggerSectorId();sectorItr++){
78     for(Int_t stationItr = 1; stationItr <= 4; stationItr++){
79     if(stationItr == 1){
80     for(Int_t subsectorItr = 0; subsectorItr < 2; subsectorItr++){
81     srLUTs_[endcapItr-1][sectorItr-1][subsectorItr] = new CSCSectorReceiverLUT(endcapItr, sectorItr, subsectorItr+1, stationItr, srLUTset, TMB07);
82     }
83     } else {
84     srLUTs_[endcapItr-1][sectorItr-1][stationItr] = new CSCSectorReceiverLUT(endcapItr, sectorItr, 0, stationItr, srLUTset, TMB07);
85     } //if for station 1 or 234
86     } // stationItr loop
87     } // sectorItr loop
88     } // endcapItr loop
89 zhangjin 1.5 */
90 zhangjin 1.1 // ------------------------------
91     // --- Summary ntuple booking ---
92     // ------------------------------
93    
94     fractNtuple = new TTree("Fraction","/Fraction");
95     fractNtuple->Branch("run_number", &run_number, "run_number/I") ;
96     fractNtuple->Branch("event_number", &event_number, "event_number/I") ;
97     fractNtuple->Branch("LumiBlock", &LumiBlock,"LumiBlock/I") ;
98     fractNtuple->Branch("bunchX", &bunchX, "bunchX/I") ;
99     fractNtuple->Branch("orbitNumb", &orbitNumb,"orbitNumb/I") ;
100     fractNtuple->Branch("mcweight", &mcweight,"mcweight/F") ;
101     fractNtuple->Branch("numberOfPUVertices", &numberOfPUVertices, "numberOfPUVertices/i");
102     fractNtuple->Branch("numberOfPUVerticesMixingTruth", &numberOfPUVerticesMixingTruth, "numberOfPUVerticesMixingTruth/F");
103     fractNtuple->Branch("numberOfPUVerticesTot", &numberOfPUVerticesTot, "numberOfPUVerticesTot/i");
104     fractNtuple->Branch("numberOfPrimaryVertices" , &numberOfPrimaryVertices , "numberOfPrimaryVertices/i");
105     fractNtuple->Branch("trgSingle", &trgSingle,"trgSingle/O") ;
106     fractNtuple->Branch("nTrkCountCSCSeg", &nTrkCountCSCSeg, "nTrkCountCSCSeg/I") ;
107     // fractNtuple->Branch("nTrkCountRPCE", &nTrkCountRPCE, "nTrkCountRPCE/I") ;
108     //fractNtuple->Branch("nTrkCountEC", &nTrkCountEC, "nTrkCountEC/I") ;
109     fractNtuple->Branch("nPosTrk", &nPosTrk, "nPosTrk/I") ;
110     fractNtuple->Branch("nNegTrk", &nNegTrk, "nNegTrk/I") ;
111     fractNtuple->Branch("nTotalTrks", &nTotalTrks, "nTotalTrks/I") ;
112     fractNtuple->Branch("trackVeto", &trackVeto, "trackVeto/O") ;
113     fractNtuple->Branch("myRegion", &myRegion, "myRegion/I") ;
114     fractNtuple->Branch("MuTagPt", &MuTagPt, "MuTagPt/F") ;
115     fractNtuple->Branch("MuTagEta", &MuTagEta, "MuTagEta/F") ;
116     fractNtuple->Branch("MuTagPhi", &MuTagPhi, "MuTagPhi/F") ;
117 zhangjin 1.2 fractNtuple->Branch("MuTagIsoR03Ratio", &MuTagIsoR03Ratio, "MuTagIsoR03Ratio/F") ;
118     fractNtuple->Branch("MuTagIsoR05Ratio", &MuTagIsoR05Ratio, "MuTagIsoR05Ratio/F") ;
119 zhangjin 1.1 fractNtuple->Branch("MuTagPromt", &MuTagPromt, "MuTagPromt/I");
120     fractNtuple->Branch("MuTagnSegTrkArb", &MuTagnSegTrkArb, "MuTagnSegTrkArb/I");
121     fractNtuple->Branch("MuTagCaloL", &MuTagCaloL, "MuTagCaloL/O") ;
122     fractNtuple->Branch("MuTagCaloT", &MuTagCaloT, "MuTagCaloT/O") ;
123     fractNtuple->Branch("MuTagtracktruth_pt", &MuTagtracktruth_pt, "MuTagtracktruth_pt/F") ;
124     fractNtuple->Branch("MuTagtracktruth_p", &MuTagtracktruth_p, "MuTagtracktruth_p/F") ;
125     fractNtuple->Branch("MuTagtracktruth_id", &MuTagtracktruth_id, "MuTagtracktruth_id/F") ;
126     fractNtuple->Branch("MuTagtracktruth_type", &MuTagtracktruth_type, "MuTagtracktruth_type/l") ;
127     fractNtuple->Branch("MuTagtracktruth_isPileup", &MuTagtracktruth_isPileup, "MuTagtracktruth_isPileup/O") ;
128     fractNtuple->Branch("MuTagtracktruth_thesamewith", &MuTagtracktruth_thesamewith, "MuTagtracktruth_thesamewith/I") ;
129     fractNtuple->Branch("vtx_r", &vtx_r, "vtx_r/F") ;
130     fractNtuple->Branch("vtx_z", &vtx_z, "vtx_z/F") ;
131     fractNtuple->Branch("vtx_rError", &vtx_rError, "vtx_rError/F") ;
132     fractNtuple->Branch("vtx_zError", &vtx_zError, "vtx_zError/F") ;
133     fractNtuple->Branch("vtx_normChi2", &vtx_normChi2, "vtx_normChi2/F") ;
134     fractNtuple->Branch("vtx_size", &vtx_size, "vtx_size/I") ;
135     fractNtuple->Branch("iSameVtx", &iSameVtx, "iSameVtx/O") ;
136     fractNtuple->Branch("invMass", &invMass, "invMass/F");
137     fractNtuple->Branch("tracks_e", &tracks_e, "tracks_e/F");
138     fractNtuple->Branch("tracks_pt", &tracks_pt, "tracks_pt/F");
139     fractNtuple->Branch("tracks_eta", &tracks_eta, "tracks_eta/F");
140     fractNtuple->Branch("tracks_phi", &tracks_phi, "tracks_phi/F");
141     fractNtuple->Branch("tracks_charge", &tracks_charge, "tracks_charge/I");
142     fractNtuple->Branch("tracks_id", &tracks_id, "tracks_id/I");
143     fractNtuple->Branch("tracks_normchi2", &tracks_chi2, "tracks_normchi2/F");
144     fractNtuple->Branch("tracks_dxy", &tracks_dxy, "tracks_dxy/F");
145     fractNtuple->Branch("tracks_dz", &tracks_dz, "tracks_dz/F");
146     fractNtuple->Branch("tracks_vx", &tracks_vx, "tracks_vx/F");
147     fractNtuple->Branch("tracks_vy", &tracks_vy, "tracks_vy/F");
148     fractNtuple->Branch("tracks_vz", &tracks_vz, "tracks_vz/F");
149 zhangjin 1.2 fractNtuple->Branch("tracks_IsoR03Ratio", &tracks_IsoR03Ratio, "tracks_IsoR03Ratio/F");
150     fractNtuple->Branch("tracks_IsoR05Ratio", &tracks_IsoR05Ratio, "tracks_IsoR05Ratio/F");
151 zhangjin 1.1 fractNtuple->Branch("tracks_qoverp", &tracks_qoverp, "tracks_qoverp/F");
152     fractNtuple->Branch("tracks_lambda", &tracks_lambda, "tracks_lambda/F");
153     fractNtuple->Branch("tracks_recHitsSize", &tracks_recHitsSize, "tracks_recHitsSize/I");
154     fractNtuple->Branch("tracks_numberOfValidHits", &tracks_numberOfValidHits, "tracks_numberOfValidHits/I");
155     fractNtuple->Branch("tracks_numberOfLostHits", &tracks_numberOfLostHits, "tracks_numberOfLostHits/I");
156     fractNtuple->Branch("tracks_qoverpError", &tracks_qoverpError, "tracks_qoverpError/F");
157     fractNtuple->Branch("tracks_ptError", &tracks_ptError, "tracks_ptError/F");
158     fractNtuple->Branch("tracks_thetaError", &tracks_thetaError, "tracks_thetaError/F");
159     fractNtuple->Branch("tracks_lambdaError", &tracks_lambdaError, "tracks_lambdaError/F");
160     fractNtuple->Branch("tracks_etaError", &tracks_etaError, "tracks_etaError/F");
161     fractNtuple->Branch("tracks_phiError", &tracks_phiError, "tracks_phiError/F");
162     fractNtuple->Branch("tracks_dxyError", &tracks_dxyError, "tracks_dxyError/F");
163     fractNtuple->Branch("tracks_d0Error", &tracks_d0Error, "tracks_d0Error/F");
164     fractNtuple->Branch("tracks_dszError", &tracks_dszError, "tracks_dszError/F");
165     fractNtuple->Branch("tracks_dzError", &tracks_dzError, "tracks_dzError/F");
166     fractNtuple->Branch("tracks_isCaloMuTrk", &tracks_isCaloMuTrk, "tracks_isCaloMuTrk/O");
167     fractNtuple->Branch("tracks_isTrackerMuTrk", &tracks_isTrackerMuTrk, "tracks_isTrackerMuTrk/O");
168     // fractNtuple->Branch("tracks_dedx", &tracks_dedx, "tracks_dedx/F") ;
169     // fractNtuple->Branch("tracks_dedxErr", &tracks_dedxErr, "tracks_dedxErr/F") ;
170     // fractNtuple->Branch("tracks_nSatMeas", &tracks_nSatMeas, "tracks_nSatMeas/F") ;
171     //fractNtuple->Branch("tracks_nMeas", &tracks_nMeas, "tracks_nMeas/F") ;
172     fractNtuple->Branch("tracktruth_pt", &tracktruth_pt, "tracktruth_pt/F") ;
173     fractNtuple->Branch("tracktruth_p", &tracktruth_p, "tracktruth_p/F") ;
174     fractNtuple->Branch("tracktruth_e", &tracktruth_e, "tracktruth_e/F") ;
175     fractNtuple->Branch("tracktruth_id", &tracktruth_id, "tracktruth_id/F") ;
176     fractNtuple->Branch("tracktruth_type", &tracktruth_type, "tracktruth_type/l") ;
177     fractNtuple->Branch("tracktruth_isPileup", &tracktruth_isPileup, "tracktruth_isPileup/O") ;
178     fractNtuple->Branch("tracktruth_thesamewith", &tracktruth_thesamewith, "tracktruth_thesamewith/I") ;
179    
180     fractNtuple->Branch("CSCEndCapPlus", &CSCEndCapPlus, "CSCEndCapPlus/O") ;
181    
182     #define MakeBranchAllSt(Name,Type,Var) sprintf(BranchName,"%s%d",Name,st+1); \
183     sprintf(BranchTitle,"%s%d/%s",Name,st+1,Type); \
184     fractNtuple->Branch(BranchName, &Var[st],BranchTitle)
185    
186     for (Short_t st=0;st<4;st++) {
187     char BranchName[30],BranchTitle[30];
188     /*CSC Chamber Candidates in each station*/
189     MakeBranchAllSt("CSCRg","S",CSCRg);
190     MakeBranchAllSt("CSCCh","S",CSCChCand);
191     MakeBranchAllSt("CSCCBad","O",CSCChBad);
192    
193     /*Extrapolated Tracks on CSC Chamber Candidates in each station*/
194     MakeBranchAllSt("CSCDyProjHVGap","F",CSCDyProjHVGap);
195 zhangjin 1.2 MakeBranchAllSt("CSCDyErrProjHVGap","F",CSCDyErrProjHVGap);
196 zhangjin 1.1 MakeBranchAllSt("CSCProjDistEdge","F",CSCProjEdgeDist);
197     MakeBranchAllSt("CSCProjDistErrEdge","F",CSCProjEdgeDistErr);
198    
199     /*Segments characteristics*/
200     MakeBranchAllSt("CSCSegxLc","F",CSCSegxLc);
201     MakeBranchAllSt("CSCSegyLc","F",CSCSegyLc);
202     MakeBranchAllSt("CSCSegxErrLc","F",CSCSegxErrLc);
203     MakeBranchAllSt("CSCSegyErrLc","F",CSCSegyErrLc);
204 zhangjin 1.2 MakeBranchAllSt("CSCdXdZTTSeg","F",CSCdXdZTTSeg);
205     MakeBranchAllSt("CSCdYdZTTSeg","F",CSCdYdZTTSeg);
206 zhangjin 1.1 MakeBranchAllSt("CSCSegChisqProb","F",CSCSegChisqProb);
207 zhangjin 1.3 MakeBranchAllSt("CSCnSegHits","I",CSCnSegHits);
208 zhangjin 1.1
209 zhangjin 1.2 /*Distance from the Extrapolated Tracks to CSC Segments, 99999. for no CSC segment found*/
210     MakeBranchAllSt("CSCDxTTSeg","F",CSCDxTTSeg);
211 zhangjin 1.3 MakeBranchAllSt("CSCDxErrTTSeg","F",CSCDxErrTTSeg);
212 zhangjin 1.2 MakeBranchAllSt("CSCDyTTSeg","F",CSCDyTTSeg);
213 zhangjin 1.3 MakeBranchAllSt("CSCDyErrTTSeg","F",CSCDyErrTTSeg);
214     MakeBranchAllSt("CSCDxyTTSeg","F",CSCDxyTTSeg);
215     MakeBranchAllSt("CSCDxyErrTTSeg","F",CSCDxyErrTTSeg);
216 zhangjin 1.2
217     /*LCT characteristics*/
218 zhangjin 1.1 MakeBranchAllSt("CSCLCTxLc","F",CSCLCTxLc);
219     MakeBranchAllSt("CSCLCTyLc","F",CSCLCTyLc);
220     MakeBranchAllSt("CSCLCTbx","I",CSCLCTbx);
221 zhangjin 1.2
222     /*Distance from the Extrapolated Tracks to LCT, 99999. for no LCT found*/
223     MakeBranchAllSt("CSCDxTTLCT","F",CSCDxTTLCT);
224 zhangjin 1.3 MakeBranchAllSt("CSCDxErrTTLCT","F",CSCDxErrTTLCT);
225 zhangjin 1.2 MakeBranchAllSt("CSCDyTTLCT","F",CSCDyTTLCT);
226 zhangjin 1.3 MakeBranchAllSt("CSCDxErrTTLCT","F",CSCDxErrTTLCT);
227     MakeBranchAllSt("CSCDxyTTLCT","F",CSCDxyTTLCT);
228 zhangjin 1.2 MakeBranchAllSt("CSCDxyErrTTLCT","F",CSCDxyErrTTLCT);
229    
230 zhangjin 1.1 /*DetlaR between the extrapolated tracker track on muon system and the tagged muon*/
231     MakeBranchAllSt("dRTkMu","F",dRTkMu);
232    
233     /*Default decision of whether a segment or LCT is found*/
234     // MakeBranchAllSt("segSt","I",segSt);
235     // MakeBranchAllSt("lctSt","I",lctSt);
236     }
237    
238     HLTMuAcceptance=new vector<Bool_t>();
239     fractNtuple->Branch("HLTMuAcceptance", &HLTMuAcceptance);
240     fractNtuple->Branch("HLTDiMuAcceptance", &HLTDiMuAcceptance, "HLTDiMuAcceptance/F") ;
241     minDRHLTMu=new vector<Float_t>();
242     fractNtuple->Branch("minDRHLTMu", &minDRHLTMu) ;
243     fractNtuple->Branch("minDRHLTDiMu", &minDRHLTDiMu, "minDRHLTDiMu/F") ;
244     fractNtuple->Branch("minDRHLTAllSingleMu", &minDRHLTAllSingleMu, "minDRHLTAllSingleMu/F") ;
245    
246     RunInfo = new TTree("RunInfo","RunInfo");
247     RunInfo->Branch("RunNumber",&run_number,"RunNum/i");
248     RunInfo->Branch("TableName",&HLTTableName);
249     HLTMuNames=new vector<string>();
250     RunInfo->Branch("HLTMuNames",&HLTMuNames);
251     HLTMuObjModuleNames=new vector<string>();
252     RunInfo->Branch("HLTMuObjModuleNames",&HLTMuObjModuleNames);
253     RunInfo->Branch("HLTDiMuName",&HLTDiMuName);
254     RunInfo->Branch("HLTDiMuObjModuleName",&HLTDiMuObjModuleName);
255     RunInfo->Branch("BadCSCChamberIndexList",&badChambersIndices);
256     }
257    
258     TPTrackMuonSys::~TPTrackMuonSys(){
259     // do anything here that needs to be done at desctruction time
260     // (e.g. close files, deallocate resources etc.)
261     }
262    
263     // ------------ method called to for each event ------------
264     void
265     TPTrackMuonSys::analyze(const edm::Event& event, const edm::EventSetup& setup){
266     //cout << "HERE *************************" << endl;
267    
268     nEventsAnalyzed++;
269     // access conditions data for this event
270     theDbConditions.initializeEvent( setup ); //initializeEvent(const edm::EventSetup & es);// fetch the maps from the database
271    
272     //////////////////////////////////////////////////////////////////////////
273     reco::BeamSpot beamSpot;
274     edm::Handle<reco::BeamSpot> recoBeamSpotHandle;
275     Bool_t beamExists = false;
276     try{
277     event.getByLabel(m_beamSpot,recoBeamSpotHandle);
278     if ( recoBeamSpotHandle.isValid()) {
279     beamSpot = *recoBeamSpotHandle;
280     beamExists = true;
281     }
282     }catch (cms::Exception){
283     edm::LogError("")<< "Error! Can't get m_beamSpot by label. ";
284     }
285     event_number = event.id().event();
286     LumiBlock = (int)event.luminosityBlock();
287     expType = (int)event.experimentType();
288     bunchX = (int)event.bunchCrossing();
289     orbitNumb = (int)event.orbitNumber();
290     Bool_t isRData = event.isRealData(); //( L1Decision ? "passed" : "failed")
291    
292     //Get the Magnetic field from the setup
293     setup.get<IdealMagneticFieldRecord>().get(theBField);
294     // Get the GlobalTrackingGeometry from the setup
295 zhangjin 1.3 // setup.get<GlobalTrackingGeometryRecord>().get(theTrackingGeometry);
296 zhangjin 1.1 // Get the DT Geometry from the setup
297 zhangjin 1.3 // setup.get<MuonGeometryRecord>().get(dtGeom);
298 zhangjin 1.1
299     setup.get<MuonGeometryRecord>().get(cscGeom);
300 zhangjin 1.5 #ifdef m_debug
301     //describe the chamber active region outline
302     if (nEventsAnalyzed==1) {
303 zhangjin 1.7 Short_t rings[]={11,14,12};//,12,13,21,31,41,22};
304     for (Byte_t iring=0;iring<3;iring++) {
305 zhangjin 1.5 CSCDetId id=CSCDetId(1, rings[iring]/10, rings[iring]%10, 1, 1);
306     printf("============ ME%d chamber outline=============\n",rings[iring]);
307     const CSCLayerGeometry *layerGeom = cscGeom->chamber(id)->layer(1)->geometry ();
308     const Byte_t NStrips=layerGeom->numberOfStrips(),NWires=layerGeom->numberOfWireGroups();
309     LocalPoint interSect_ = layerGeom->stripWireGroupIntersection(1, 1);
310     printf("(strip 1, wire group 1) at (%.3f,%.3f)\n",interSect_.x(),interSect_.y());
311     interSect_ = layerGeom->stripWireGroupIntersection(NStrips, 1);
312     printf("(strip %d, wire group 1) at (%.3f,%.3f)\n",NStrips,interSect_.x(),interSect_.y());
313     interSect_ = layerGeom->stripWireGroupIntersection(NStrips, NWires);
314     printf("(strip %d, wire group %d) at (%.3f,%.3f)\n",NStrips, NWires,interSect_.x(),interSect_.y());
315     interSect_ = layerGeom->stripWireGroupIntersection(1, NWires);
316     printf("(strip 1, wire group %d) at (%.3f,%.3f)\n", NWires,interSect_.x(),interSect_.y());
317     printf(" ======== middle x of wires(check)==========\n");
318     const CSCWireTopology* wireTopology = layerGeom->wireTopology();
319 zhangjin 1.7 for (Short_t wireGroup_id=10;wireGroup_id<=15;wireGroup_id++) {
320     Float_t wideWidth = wireTopology->wideWidthOfPlane();
321     Float_t narrowWidth = wireTopology->narrowWidthOfPlane();
322     Float_t length = wireTopology->lengthOfPlane();
323     Float_t tangent = (wideWidth-narrowWidth)/(2.*length);
324     Float_t wireangle= wireTopology->wireAngle();
325     std::vector<float> wirecenters=wireTopology->wireValues(wireTopology->middleWireOfGroup(wireGroup_id));
326     printf("x center of wire %d is at %.3f=%.3f\n",wireGroup_id,wireTopology->wireValues(wireTopology->middleWireOfGroup(wireGroup_id))[0],wirecenters[2]*sin(wireangle)*tangent/2);
327 zhangjin 1.5 }
328 zhangjin 1.7 printf("y center of the wires is at %.3f\n",wireTopology->yOfWire(1)+0.5*wireTopology->lengthOfPlane());
329 zhangjin 1.5 }
330     }
331     #endif
332 zhangjin 1.1 // Get the propagators
333     setup.get<TrackingComponentsRecord>().get("SmartPropagatorAnyRK", propagatorAlong );
334     setup.get<TrackingComponentsRecord>().get("SmartPropagatorAnyOpposite", propagatorOpposite);
335    
336     //vertices
337     edm::Handle<reco::VertexCollection> pvHandle;
338     try{
339     event.getByLabel(m_vertexSrc, pvHandle);
340     }catch (cms::Exception){
341     edm::LogError("")<< "Error! Can't get m_vertexSrc by label. ";
342     }
343     const reco::VertexCollection & vertices = *pvHandle.product();
344     numberOfPrimaryVertices =pvHandle ->size();
345    
346     // Get the RecHits collection :
347     Handle<CSCRecHit2DCollection> recHits;
348     event.getByLabel("csc2DRecHits",recHits);
349    
350     // get CSC segment collection
351     event.getByLabel("cscSegments", cscSegments);
352    
353     edm::Handle<CSCCorrelatedLCTDigiCollection> mpclcts;
354     try{
355     event.getByLabel("csctfunpacker","", mpclcts);
356     }catch (cms::Exception){
357     edm::LogError("")<< "Error! Can't get m_gTracksTag by label. ";
358     }
359    
360 zhangjin 1.5 /*
361     // get RPC and DT
362     setup.get<MuonGeometryRecord>().get(rpcGeo);
363    
364     edm::Handle<RPCRecHitCollection> rpcRecHits;
365     event.getByLabel("rpcRecHits",rpcRecHits);
366    
367     edm::Handle<DTRecSegment4DCollection> dtSegments;
368     event.getByLabel( "dt4DSegments", dtSegments );
369     */
370    
371 zhangjin 1.1 // muon trigger scales
372     edm::ESHandle<L1MuTriggerScales> trigscales_h;
373     setup.get<L1MuTriggerScalesRcd> ().get(trigscales_h);
374     theTriggerScales = trigscales_h.product();
375    
376 zhangjin 1.3 //if (! dtSegments.isValid()) throw cms::Exception("FatalError") << "Unable to find DTRecSegment4DCollection in event!\n";
377 zhangjin 1.1
378     std::vector<DetId> chamberIds;
379     std::vector<DetId>::const_iterator chamberIdIt;
380    
381     Handle<reco::TrackCollection> gTracks;
382     // Bool_t trkBool[2]; trkBool[0]= true;
383     try{
384     event.getByLabel(m_gTracksTag, gTracks);
385     }catch (cms::Exception){
386     edm::LogError("")<< "Error! Can't get m_gTracksTag by label. ";
387     // trkBool[0] = false;
388     }
389    
390     try{
391     event.getByLabel("muons", muons);
392     }catch (cms::Exception){
393     edm::LogError("")<< "Error! Can't get muons ";
394     }
395     Handle<ValueMap<DeDxData> > dEdxTrackHandle;
396     event.getByLabel(m_dEdxDiscrimTag, dEdxTrackHandle);
397     const ValueMap<DeDxData> dEdxTrack = *dEdxTrackHandle.product();
398    
399     // calo geometry
400     edm::ESHandle<CaloGeometry> calogeo;
401     setup.get<CaloGeometryRecord>().get(calogeo);
402     if (! calogeo.isValid()) throw cms::Exception("FatalError") << "Unable to find CaloGeometryRecord in event!\n";
403    
404     //=======Generation and Simulation information========
405     Handle< View<Track> > trackCollectionHV;
406     event.getByLabel(m_gTracksTag,trackCollectionHV);
407     //Simulated Vertices: the vertexId() is just the index
408     Handle<SimVertexContainer> SVCollectionH;
409     HepMC::GenEvent * HepGenEvent=NULL;
410    
411     //TrackingParticles
412     Handle<TrackingParticleCollection> TPCollectionH ;
413     RecoToSimCollection RecoToSimByHits;
414     ESHandle<TrackAssociatorBase> AssociatorByHits;
415    
416     vector< vector< vector<Int_t> > > TracksSimChains, MuTracksSimChains;
417    
418     numberOfPUVertices=0; // the number of pileup interactions that have been added to the event from this bunch crossing
419     numberOfPUVerticesMixingTruth=0;// the *true* mean number of pileup interactions for this event from which each bunch crossing has been sampled; same for all bunch crossings in an event
420     numberOfPUVerticesTot=0;
421     mcweight = 1.;
422     Handle<edm::HepMCProduct> HepMCH;
423     if (m_isMC) {
424     event.getByLabel("g4SimHits", SVCollectionH);
425     SVC = *SVCollectionH.product();
426     event.getByLabel(m_HepMCTag, HepMCH);
427     HepGenEvent=const_cast<HepMC::GenEvent *>( HepMCH->GetEvent() );
428     Handle<GenEventInfoProduct> hEvtInfo;
429     event.getByLabel("generator", hEvtInfo);
430     mcweight = hEvtInfo->weight();
431     event.getByLabel("mergedtruth",TPCollectionH);
432     //event.getByType(TPCollectionH);
433     setup.get<TrackAssociatorRecord>().get("TrackAssociatorByHits", AssociatorByHits);
434     RecoToSimByHits = AssociatorByHits->associateRecoToSim(trackCollectionHV,TPCollectionH,&event,&setup);
435     MCParticlesList.clear();
436     SavedSimTrk.clear();
437     SavedHepPar.clear();
438     /*Start of getting pileup information*/
439     edm::InputTag PileupSrc_("addPileupInfo");
440     Handle<std::vector< PileupSummaryInfo > > puInfo;
441     if ( event.getByLabel(PileupSrc_, puInfo) ) {
442     #ifdef GetPUFromEarlierThan_4_1_2
443     numberOfPUVertices = (*puInfo)[0].getPU_NumInteractions();
444     numberOfPUVerticesMixingTruth=numberOfPUVertices;
445     numberOfPUVerticesTot=numberOfPUVertices;
446     #else
447     for(std::vector<PileupSummaryInfo>::const_iterator PVI = puInfo->begin(); PVI != puInfo->end(); ++PVI) {
448     Int_t BX = PVI->getBunchCrossing();
449     if(BX == 0) {
450     numberOfPUVertices = PVI->getPU_NumInteractions();
451     #ifdef GetPUFromEarlierThan_4_4_0
452     numberOfPUVerticesMixingTruth = -1.;//not available
453     #else
454     numberOfPUVerticesMixingTruth = PVI->getTrueNumInteractions();
455     #endif
456     }
457     numberOfPUVerticesTot+=numberOfPUVertices;
458     }
459     #endif
460     }//====== End of getting pileup information =============
461     }//======= End of if m_isMC========
462    
463     //////////////////////////////////////////////
464     edm::ESHandle<L1GtTriggerMenu> menuRcd;
465     setup.get<L1GtTriggerMenuRcd>().get(menuRcd) ;
466     const L1GtTriggerMenu* menu = menuRcd.product();
467     Handle<L1GlobalTriggerReadoutRecord> gtBeforeMaskRecord;
468     event.getByLabel("gtDigis", gtBeforeMaskRecord);
469     trgSingle = false;
470     if (!gtBeforeMaskRecord.isValid()) {
471     LogInfo("PhysicsTrees: ") << " Error: no L1GlobalTriggerReadoutRecord found with input tag --> gtDigis" ;
472     } else {
473     const TechnicalTriggerWord techDecisionWord = gtBeforeMaskRecord->technicalTriggerWord(0);
474     const DecisionWord gtDecisionWordBeforeMask = gtBeforeMaskRecord->decisionWord(0);
475     #ifdef m_debug
476     Int_t nl1s = 0;
477     #endif
478     for (CItAlgo algo = menu->gtAlgorithmMap().begin(); algo!=menu->gtAlgorithmMap().end(); ++algo) {
479     #ifdef m_debug
480     if (nEventsAnalyzed <= 1) {
481     cout <<" L1Menu Item m1 = " << nl1s
482     <<" corresponds to AlgoName = "
483     << (algo->second).algoName() << " Alias: " << (algo->second).algoAlias()
484     << " and the result= " << menu->gtAlgorithmResult((algo->second).algoAlias(), gtDecisionWordBeforeMask)
485     << endl;
486     }
487     nl1s = nl1s + 1;
488     #endif
489     if((algo->second).algoName() == "L1_SingleMuOpen") trgSingle = true;
490     if((algo->second).algoName() == "L1_SingleMu5") trgSingle=false;
491     }
492     }
493    
494     /*-----------Start getting HLT results------------*/
495     Handle<TriggerResults> triggerResults;
496     Handle< trigger::TriggerEvent > handleTriggerEvent;
497     HLTDiMuAcceptance=false;
498     HLTMuAcceptance->clear();
499     try {
500     event.getByLabel(m_hlt, triggerResults);
501     if ( triggerResults.product()->wasrun() ){
502     LogInfo("")<<" At least one path out of " << triggerResults.product()->size() << " ran? " << triggerResults.product()->wasrun() << endl;
503     if ( triggerResults.product()->accept() ) {
504     for (vector<Int_t>::const_iterator iter=m_HLTMuTrgBit.begin();iter<m_HLTMuTrgBit.end();iter++)
505     HLTMuAcceptance->push_back( triggerResults.product()->accept(*iter) );
506     if ( m_HLTDiMuTrgBit>-1 ) HLTDiMuAcceptance=triggerResults.product()->accept( m_HLTDiMuTrgBit );
507     } // end if at least one triggerResult accepted
508     }// end if wasRun
509     } catch (...) {// some old codes, it is possibly not going to happen in >CMSSW_4_4_X versions
510     LogWarning("")<<"Not found HLT result, is HLT process name correct?"<< endl;
511     if(isRData == 0){
512     if(event.getByLabel( m_hltTrgEv, handleTriggerEvent )){
513     const trigger::TriggerObjectCollection & toc(handleTriggerEvent->getObjects());
514     for ( size_t ia = 0; ia < handleTriggerEvent->sizeFilters(); ++ ia) {
515     std::string fullname = handleTriggerEvent->filterTag(ia).encode();
516     std::string name;
517     size_t p = fullname.find_first_of(':');
518     if ( p != std::string::npos) name = fullname.substr(0, p);
519     else name = fullname;
520     if ( &toc !=0 ) {
521     HLTMuAcceptance->assign(m_HLTMuTrgBit.size(),false);
522     for (vector<string>::const_iterator iter=HLTMuObjModuleNames->begin(); iter<HLTMuObjModuleNames->end();iter++ )
523     if ( name == *iter ) HLTMuAcceptance->at( iter-HLTMuObjModuleNames->begin() )=true;
524     if ( name == *HLTDiMuObjModuleName ) HLTDiMuAcceptance=true;
525     }
526     }
527     }
528     }
529     }
530     Bool_t m_GotTrgObj=event.getByLabel( m_hltTrgEv, handleTriggerEvent );
531     /*-----------End getting HLT results------------*/
532    
533     if(!gTracks.isValid() ) return;
534     if(!muons.isValid() ) return;
535     if (gTracks->size() > MAXNTRACKS) return;
536    
537     #ifdef m_debug
538     cout << "Run: " << run_number << " Event: " << event_number << " LumiBlock: " << LumiBlock << " BX: " << bunchX
539     << " isRealDAT: " << isRData
540     << endl;
541     #endif
542    
543     Int_t trackNumber[2][4][4][36];
544     Bool_t trkVeto[MAXNTRACKS];
545    
546     for(Int_t i1 = 0; i1 < 2; i1++)
547     for(Int_t i2 = 0; i2 < 4; i2++)
548     for(Int_t i3 = 0; i3 < 4; i3++)
549     for(Int_t i4 = 0; i4 < 36; i4++)
550     trackNumber[i1][i2][i3][i4] = -1;
551    
552     for(Int_t i1 = 0; i1 < MAXNTRACKS; i1++)
553     trkVeto[i1] = false;
554    
555     nPosTrk = 0;
556     nNegTrk = 0;
557     nTotalTrks = gTracks->size();
558     for(reco::TrackCollection::const_iterator itTrack = gTracks->begin(); itTrack != gTracks->end(); itTrack++){//start loop tracks
559     UInt_t itrk=itTrack - gTracks->begin();
560     if(itTrack->charge() == 0) continue;
561     if(itTrack->p() < 3.0) continue;
562    
563     reco::TrackRef trackRef(gTracks, itrk );
564     tracks_eta = itTrack->eta(); tracks_phi = itTrack->phi();
565     if(tracks_phi < 0 )tracks_phi = tracks_phi + 2*M_PI;
566     tracks_chi2 = 9999.;
567     if(itTrack->ndof() != 0)tracks_chi2 = itTrack->chi2()/itTrack->ndof();
568     tracks_dxy = itTrack->dxy(); tracks_dz = itTrack->dz();
569     if(beamExists){
570     tracks_dxy = itTrack->dxy(beamSpot.position());
571     tracks_dz = itTrack->dz(beamSpot.position());
572     }
573    
574     tracks_numberOfValidHits = itTrack->numberOfValidHits();
575     if ( ! (tracks_numberOfValidHits>7 && fabs(tracks_dz)<24 && fabs(tracks_dxy)< 2.0 && tracks_chi2>0 && tracks_chi2<4) ) continue;
576     Bool_t ec= ( tracks_eta > 0 );
577     // if(fabs(tracks_eta) < 1.2 ) trackDT = true;
578     Bool_t GotCSCSegMatched = false;
579     if(fabs(tracks_eta) > 0.9 )//if it is a CSCTrack
580     for(UInt_t j =0; j < 6; j++){//start of matched segments check
581     /* not necessary codes, it will give the same result
582     Float_t zzPlaneME = 0.0;
583     if(trackCSC && MEZ[j] != 0){
584     zzPlaneME = MEZ[j];
585     if (!ec) zzPlaneME = -MEZ[j];
586     TrajectoryStateOnSurface tsos = surfExtrapTrkSam(trackRef, zzPlaneME);
587     if (!tsos.isValid()) continue;
588     Float_t trkEta = tsos.globalPosition().eta(), trkPhi = tsos.globalPosition().phi();
589     Int_t rg = ringCandidate(j>2?j-1:1, trkEta, trkPhi);
590     if (rg==0) continue;
591     if( thisChamberCandidate(st, rg, trkPhi) %2 == 0 ){
592     zzPlaneME = MEZEven[j];
593     if(!ec)zzPlaneME = -MEZEven[j];
594     tsos = surfExtrapTrkSam(trackRef, zzPlaneME);
595     }else{
596     zzPlaneME = MEZOdd[j];
597     if(!ec)zzPlaneME = -MEZOdd[j];
598     tsos = surfExtrapTrkSam(trackRef, zzPlaneME);
599     }
600     if (!tsos.isValid())continue;*/
601     CSCSegmentCollection::const_iterator cscSegOut;
602     if( !matchTTwithCSCSeg(ec, j, trackRef, cscSegments, cscSegOut) ) continue;
603     GotCSCSegMatched=true;
604     CSCDetId id = (CSCDetId) cscSegOut->cscDetId();
605     Byte_t endcapCSC = id.endcap() - 1,ringCSC = id.ring() - 1,stationCSC = id.station() - 1,chamberCSC = id.chamber() - 1;
606     if ( trackNumber[endcapCSC][stationCSC][ringCSC][chamberCSC] < 0 )
607     trackNumber[endcapCSC][stationCSC][ringCSC][chamberCSC] = itrk;
608     else {
609     trkVeto[ trackNumber[endcapCSC][stationCSC][ringCSC][chamberCSC] ]=true;
610     trkVeto[ itrk ]=true;
611     }
612     }//end of matched segments check
613    
614     if (GotCSCSegMatched) {
615     if(ec){
616     nPosTrk ++;
617     }else{
618     nNegTrk ++;
619     }
620     }
621     }//end of first track loop
622    
623 zhangjin 1.2 std::string trackExtractorName = trackExtractorPSet_.getParameter<std::string>("ComponentName");
624     reco::isodeposit::IsoDepositExtractor* muIsoExtractorTrack_ = IsoDepositExtractorFactory::get()->create( trackExtractorName, trackExtractorPSet_);
625 zhangjin 1.1 for (reco::MuonCollection::const_iterator muIter1 = muons->begin(); muIter1 != muons->end(); ++muIter1) {
626     if (!muIter1->isTrackerMuon() ) continue;
627     if(!muIter1->track().isNonnull()) continue;
628     MuTagPt = muIter1->track()->pt() ;
629     if (MuTagPt < 5.) continue;
630    
631     Float_t mu1dxy = 1000., mu1dz = 1000.;
632    
633     if(beamExists){
634     mu1dxy = muIter1->track()->dxy(beamSpot.position());
635     mu1dz = muIter1->track()->dz(beamSpot.position());
636     }else{
637     mu1dxy = muIter1->track()->dxy();
638     mu1dz = muIter1->track()->dz();
639     }
640     Float_t mu1Chi2 = muIter1->track()->normalizedChi2();
641     MuTagHitsTrkSys = muIter1->track()->hitPattern().numberOfValidTrackerHits();
642     Bool_t goodTrack = (fabs(mu1dxy) < 2.0 && fabs(mu1dz) < 24.0 && fabs(mu1Chi2) < 4.0 && MuTagHitsTrkSys > 7 ); //&& MuTagHitsMuSys > 3
643     if(!goodTrack)continue;
644    
645     MuTagnSegTrkArb = muIter1->numberOfMatches(); // get number of chambers with matched segments
646     if (MuTagnSegTrkArb < 2) continue;
647    
648     MuTagPx = muIter1->track()->px() ;
649     MuTagPy = muIter1->track()->py() ;
650     MuTagPz = muIter1->track()->pz() ;
651    
652     MuTagE = muIter1->track()->p() ;
653     MuTagEta = muIter1->track()->eta() ;
654     MuTagPhi = muIter1->track()->phi() ;
655    
656 zhangjin 1.2 Int_t MuTagcharge = muIter1->track()->charge() ;
657 zhangjin 1.1
658 zhangjin 1.2 // MuTagHitsPixSys = muIter1->track()->hitPattern().numberOfValidPixelHits();
659     // MuTagHitsRPCSys = muIter1->track()->hitPattern().numberOfValidMuonRPCHits();
660 zhangjin 1.1
661     /// check for HLT matching
662     minDRHLTDiMu=100.; minDRHLTAllSingleMu=100.;
663     minDRHLTMu->assign(HLTMuObjModuleNames->size(),100.);
664     Float_t PhiTemp1 = MuTagPhi<0?MuTagPhi + 2*M_PI:MuTagPhi;
665     if ( m_GotTrgObj ){
666     const trigger::TriggerObjectCollection & toc(handleTriggerEvent->getObjects());
667     for ( size_t ia = 0; ia < handleTriggerEvent->sizeFilters(); ++ ia) {
668     std::string fullname = handleTriggerEvent->filterTag(ia).encode();
669     std::string name;
670     size_t p = fullname.find_first_of(':');
671     if ( p != std::string::npos) name = fullname.substr(0, p);
672     else name = fullname;
673     if ( &toc ==0) continue;
674     const trigger::Keys & k = handleTriggerEvent->filterKeys(ia);
675     for (trigger::Keys::const_iterator ki = k.begin(); ki !=k.end(); ++ki ) {
676     double l3phi = toc[*ki].phi();
677     double l3eta = toc[*ki].eta();
678    
679     if(l3phi < 0 )l3phi = l3phi + 2*M_PI;
680    
681     Float_t deltaR_TTHLT = sqrt((l3eta - MuTagEta) * (l3eta - MuTagEta) + (l3phi - PhiTemp1) *(l3phi - PhiTemp1));
682     if ( deltaR_TTHLT > 0.4 ) continue;
683     if ( name == *HLTDiMuObjModuleName ) {
684     if ( deltaR_TTHLT < minDRHLTDiMu ){
685     minDRHLTDiMu = deltaR_TTHLT;
686     }
687     }
688     Byte_t idx=0;
689     for (vector<string>::const_iterator iter=HLTMuObjModuleNames->begin(); iter<HLTMuObjModuleNames->end();iter++,idx++ )
690     if ( name == *iter ) {
691     if ( deltaR_TTHLT < minDRHLTMu->at(idx) ){
692     minDRHLTMu->at(idx) = deltaR_TTHLT;
693     }
694     if ( deltaR_TTHLT < minDRHLTAllSingleMu ){
695     minDRHLTAllSingleMu = deltaR_TTHLT;
696     }
697     break;
698     }
699     }//end of loop ki
700     }//end of loop ia
701     }//end of if m_GotTrgObj
702 zhangjin 1.2 MuTagIsoR03Ratio = MuTagPt>0?muIter1->isolationR03().sumPt/MuTagPt:9999.;
703     MuTagIsoR05Ratio = MuTagPt>0?muIter1->isolationR05().sumPt/MuTagPt:9999.;
704 zhangjin 1.1 MuTagCaloL= muon::isGoodMuon(*muIter1,muon::TM2DCompatibilityLoose);
705     MuTagCaloT= muon::isGoodMuon(*muIter1,muon::TM2DCompatibilityTight);
706    
707     /*------------------------Start getting the Monte Carlo Truth--------------------------*/
708     MuTagtracktruth_pt = -9999.;
709     MuTagtracktruth_p = -9999.;
710     MuTagtracktruth_id = -9999.;
711     MuTagtracktruth_type = 0;
712     MuTagtracktruth_isPileup=false;
713     MuTagtracktruth_thesamewith=-1;
714     if ( m_isMC) {
715     //TrackingParticles
716     MuTracksSimChains.push_back(* new vector< vector<Int_t> >() );
717     if ( TPCollectionH.isValid() ) {
718     //SimToReco Tracks Association
719     reco::TrackBaseRef trackBaseRef(muIter1->track());
720     if ( RecoToSimByHits.find(trackBaseRef) != RecoToSimByHits.end() ) {
721     pair<TrackingParticleRef, double> BestMatch=RecoToSimByHits[trackBaseRef].front();
722     //vector<pair<TrackingParticleRef, double> > TPCByChi2=RecoToSimByChi2[trk];
723     TrackingParticleRef tpr = BestMatch.first;
724     //Simulated Tracks
725     MuTagtracktruth_pt=tpr->pt();
726     MuTagtracktruth_p=tpr->p();
727     MuTagtracktruth_id=tpr->pdgId();
728     MuTagtracktruth_isPileup=GetDecayChains(tpr,HepGenEvent,MuTagtracktruth_type,MuTagtracktruth_thesamewith, MuTracksSimChains);
729     }
730     }//end of TPCollection.isValid
731     }//end of m_isMC
732     /*------------------------End of getting the Monte Carlo Truth--------------------------*/
733    
734     CLHEP::Hep3Vector Mu1Vector(MuTagPx, MuTagPy, MuTagPz);
735    
736     Float_t etaMuVec[4] ={-9999., -9999., -9999., -9999.};
737     Float_t phiMuVec[4] ={-9999., -9999., -9999., -9999.};
738    
739     Float_t allCSC_mu = MEZ[0];
740     if(fabs(MuTagEta) < 1.5)allCSC_mu = MEZ[1];
741     if(MuTagEta < 0) allCSC_mu = -allCSC_mu;
742    
743     reco::TrackRef trackMuRef = muIter1->track();
744     TrajectoryStateOnSurface tsos = surfExtrapTrkSam(trackMuRef, allCSC_mu);
745     if(tsos.isValid()){
746     etaMuVec[0] = tsos.globalPosition().eta();
747     phiMuVec[0] = tsos.globalPosition().phi();
748     }
749     allCSC_mu = MEZ[3];
750     if(MuTagEta < 0) allCSC_mu = -allCSC_mu;
751     tsos = surfExtrapTrkSam(trackMuRef, allCSC_mu);
752     if(tsos.isValid()){
753     etaMuVec[1] = tsos.globalPosition().eta();
754     phiMuVec[1] = tsos.globalPosition().phi();
755     }
756    
757     allCSC_mu = MEZ[4];
758     if(MuTagEta < 0) allCSC_mu = -allCSC_mu;
759     tsos = surfExtrapTrkSam(trackMuRef, allCSC_mu);
760     if(tsos.isValid()){
761     etaMuVec[2] = tsos.globalPosition().eta();
762     phiMuVec[2] = tsos.globalPosition().phi();
763     }
764    
765     allCSC_mu = MEZ[5];
766     if(MuTagEta < 0) allCSC_mu = -allCSC_mu;
767     tsos = surfExtrapTrkSam(trackMuRef, allCSC_mu);
768     if(tsos.isValid()){
769     etaMuVec[3] = tsos.globalPosition().eta();
770     phiMuVec[3] = tsos.globalPosition().phi();
771     }
772    
773     Bool_t firsttrackmatchingtoMuTag=true;
774    
775     for(reco::TrackCollection::const_iterator itTrack = gTracks->begin(); itTrack != gTracks->end(); itTrack++){
776     UInt_t itrk = itTrack - gTracks->begin();
777     if(itTrack->charge() == 0) continue;
778     if(itTrack->p() < 3.0) continue;
779     trackVeto = trkVeto[itrk];
780     reco::TrackRef trackRef(gTracks, itrk );
781    
782     if(itTrack->charge()*MuTagcharge != -1) continue;
783    
784     tracks_eta = itTrack->eta();
785    
786     if(fabs(tracks_eta) > 0.9 ) {
787     if(fabs(tracks_eta) < 1.2 ) myRegion = 2;
788     else myRegion = 3;
789     }
790     else myRegion = 1;
791     if (myRegion == 1) continue;//currently, only CSC
792    
793     tracks_phi = itTrack->phi();
794     if(tracks_phi < 0 )tracks_phi = tracks_phi + 2*M_PI;
795    
796     tracks_chi2 = -9999.;
797     if(itTrack->ndof() != 0)tracks_chi2 = itTrack->chi2()/itTrack->ndof();
798     tracks_charge = itTrack->charge();
799    
800     tracks_dxy = itTrack->dxy(); tracks_dz = itTrack->dz();
801     if(beamExists){
802     tracks_dxy = itTrack->dxy(beamSpot.position()); tracks_dz = itTrack->dz(beamSpot.position());
803     }
804    
805     MuProbenHitsTrkSys = itTrack->hitPattern().numberOfValidTrackerHits();
806     MuProbenHitsPixSys = itTrack->hitPattern().numberOfValidPixelHits();
807    
808     goodTrack = ( fabs(itTrack->eta())< 2.4 && fabs(tracks_dz)< 24.0 &&
809     fabs(tracks_dxy)< 2.0 && tracks_chi2> 0.0 && tracks_chi2< 4.0 && MuProbenHitsTrkSys > 7 );
810    
811     if (!goodTrack) continue;
812     if(tracks_eta > 0) CSCEndCapPlus = true;
813     else CSCEndCapPlus = false;
814    
815     tracks_pt = itTrack->pt();
816     tracks_e = itTrack->p();
817     tracks_vx = itTrack->vx(); // x coordinate of the reference point on track
818     tracks_vy = itTrack->vy(); // y coordinate of the reference point on track
819     tracks_vz = itTrack->vz(); // z coordinate of the reference point on track
820 zhangjin 1.2 reco::IsoDeposit depTrk = muIsoExtractorTrack_->deposit(event, setup, *itTrack );
821     tracks_IsoR03Ratio = tracks_pt>0?depTrk.depositWithin(0.3)/tracks_pt:9999.;
822     tracks_IsoR05Ratio = tracks_pt>0?depTrk.depositWithin(0.5)/tracks_pt:9999.;
823 zhangjin 1.1 tracks_qoverp = itTrack->qoverp(); // q/p
824     tracks_lambda = itTrack->lambda();
825     tracks_recHitsSize= itTrack->recHitsSize();
826     tracks_qoverpError = itTrack->qoverpError();//TrackAlgorithm tAlg = itTrack->algo();
827     tracks_ptError = itTrack->ptError();/// error on Pt (set to 1000 TeV if charge==0 for safety)
828     tracks_thetaError = itTrack->thetaError();/// error on theta
829     tracks_lambdaError = itTrack->lambdaError(); /// error on lambda
830     tracks_etaError = itTrack->etaError(); tracks_phiError = itTrack->phiError(); tracks_dxyError = itTrack->dxyError();/// error on dxy
831     tracks_d0Error = itTrack->d0Error(); tracks_dszError = itTrack->dszError();tracks_dzError = itTrack->dzError();/// error on dz
832     tracks_numberOfValidHits = itTrack->numberOfValidHits(); ///unsigned short number of valid hits found
833     tracks_numberOfLostHits = itTrack->numberOfLostHits(); ///unsigned short number of cases where track crossed a layer without getting a hit.
834     if(tracks_phi < 0)tracks_phi = tracks_phi + 2*M_PI;
835     reco::MuonCollection::const_iterator matchedMu=matchTTwithMT(itTrack);
836     if ( matchedMu!=muons->end() ) {
837     tracks_isCaloMuTrk=matchedMu->isCaloMuon();
838     tracks_isTrackerMuTrk=matchedMu->isTrackerMuon();
839     }
840     else {
841     tracks_isCaloMuTrk=false;
842     tracks_isTrackerMuTrk=false;
843     }
844    
845     Bool_t trQuality = (fabs(MuTagEta) < 2.4 && fabs(tracks_eta) > 0.9 && fabs(tracks_eta) < 2.4
846     && tracks_etaError < 0.003 && tracks_phiError < 0.003
847     && tracks_ptError/tracks_pt < 0.05 && tracks_numberOfValidHits >= 10); // cuts removed from the SkimDPG.C file and put here...
848    
849     if(!trQuality)continue;
850    
851     Float_t mMu = 0.1134289256;
852     invMass = pow( ( sqrt(pow(itTrack->p(),2)+ mMu*mMu) + sqrt(pow(muIter1->track()->p(),2)+ mMu*mMu) ) ,2 ) -
853     (
854     pow((itTrack->px() + muIter1->track()->px()),2) +
855     pow((itTrack->py() + muIter1->track()->py()),2) +
856     pow((itTrack->pz() + muIter1->track()->pz()),2)
857     );
858    
859     if(invMass < 0) continue;
860     invMass = sqrt(invMass);
861     Bool_t gotMass = ((invMass > 2.5 && invMass < 3.6) || (invMass > 75.)) ;
862     if(!gotMass)continue;
863    
864     /*------------------------Start getting the Monte Carlo Truth--------------------------*/
865     tracktruth_pt = -9999.;
866     tracktruth_e = -9999.;
867     tracktruth_p = -9999.;
868     tracktruth_id = -9999.;
869     tracktruth_type = 0;
870     tracktruth_isPileup=false;
871     tracktruth_thesamewith=-1;
872    
873     if ( m_isMC) {
874     //TrackingParticles
875     if ( TPCollectionH.isValid() ) {
876     #ifdef jz_debug
877     // cout<<"track "<<i<<" has "<<tracks_numberOfValidHits << " hits" <<endl;
878     #endif
879     if (!firsttrackmatchingtoMuTag) MuTracksSimChains.push_back( MuTracksSimChains.back() );
880     TracksSimChains.push_back(* new vector< vector<Int_t> >() );
881     //SimToReco Tracks Association
882     reco::TrackBaseRef trackBaseRef(trackRef);
883     if ( RecoToSimByHits.find(trackBaseRef) != RecoToSimByHits.end() ) {
884     pair<TrackingParticleRef, double> BestMatch=RecoToSimByHits[trackBaseRef].front();
885     //vector<pair<TrackingParticleRef, double> > TPCByChi2=RecoToSimByChi2[trk];
886     TrackingParticleRef tpr = BestMatch.first;
887     //Simulated Tracks
888     tracktruth_pt=tpr->pt();
889     tracktruth_e=tpr->energy();
890     tracktruth_p=tpr->p();
891     tracktruth_id=tpr->pdgId();
892     tracktruth_isPileup=GetDecayChains(tpr,HepGenEvent,tracktruth_type,tracktruth_thesamewith,TracksSimChains);
893     }
894     }//end of TPCollection.isValid
895     }//end of m_isMC
896     /*------------------------End of getting the Monte Carlo Truth--------------------------*/
897    
898     CLHEP::Hep3Vector trackVector(itTrack->px(), itTrack->py(), itTrack->pz());
899     //////////// Check if they have the same good vertex...
900    
901     Bool_t gotVertexTrk1 = false, gotVertexTrk2 = false;
902    
903     iSameVtx = false;
904     vtx_r = -9999.; vtx_z = -9999.;
905     vtx_rError = -9999.; vtx_zError = -9999.;
906     vtx_normChi2 = 100000.; vtx_size = -1;
907    
908     for(reco::VertexCollection::const_iterator it=vertices.begin() ; it!=vertices.end() ; ++it) {
909     if(!it->isValid())continue;
910     if(it->isFake())continue;
911     for(std::vector<TrackBaseRef>::const_iterator itr=it->tracks_begin() ; itr!=it->tracks_end() ; ++itr) {
912     if ( & (*muIter1->track().get() ) == &( * const_cast<reco::Track *>(itr->get()) ) ) {
913     // cerr<<"Got MuTag trk matched"<<endl;
914     gotVertexTrk1 = true;
915     if (gotVertexTrk2) break;
916     }
917     if ( & (* itTrack) == & ( * (itr->get()) ) ) {
918     // cerr<<"Got TT trk matched"<<endl;
919     gotVertexTrk2 = true;
920     if (gotVertexTrk1) break;
921     }
922     }// tracks within vertex
923    
924     if(gotVertexTrk1 && gotVertexTrk2){
925     vtx_size = it->tracksSize();
926     vtx_r = sqrt(pow(it->x(),2)+ pow(it->y(),2)); vtx_z = it->z();
927     if(it->x() != 0 && it->y() != 0) vtx_rError = vtx_r*sqrt(pow((it->xError()/it->x()),2) + pow((it->yError()/it->y()),2));
928     if(it->x() != 0 && it->y() == 0) vtx_rError = it->xError();
929     if(it->x() == 0 && it->y() != 0) vtx_rError = it->yError();
930     vtx_zError = it->zError();
931     if(it->ndof() != 0) vtx_normChi2 = it->chi2()/it->ndof();
932     iSameVtx = true;
933     }
934     }// for loop over vertices..
935    
936     /////////// finished checking the vertex..
937    
938     nTrkCountCSCSeg=0;
939     for(Byte_t j =0; j < 4; j++){
940     /*CSC Chamber Candidates in each station*/
941     CSCRg[j]=-9999;
942     CSCChCand[j]=-9999;
943     CSCChBad[j] = false;
944     /*Extrapolated Tracks on CSC Chamber Candidates in each station*/
945 zhangjin 1.2 CSCDyProjHVGap[j]=9999.;
946     CSCDyErrProjHVGap[j]=-9999.;
947 zhangjin 1.1 CSCProjEdgeDist[j]=-9999.;
948     CSCProjEdgeDistErr[j]=-9999.;
949     /*Segments characteristics*/
950     CSCSegxLc[j]=-9999.;
951     CSCSegyLc[j]=-9999.;
952     CSCSegxErrLc[j]=-9999.;
953     CSCSegyErrLc[j]=-9999.;
954     CSCSegChisqProb[j]=-9999.;
955 zhangjin 1.2 CSCdXdZTTSeg[j]=-9999.;
956     CSCdYdZTTSeg[j]=-9999.;
957 zhangjin 1.1 CSCnSegHits[j]=-9999;
958     /*Distance from the Extrapolated Tracks to CSC Segments, 9999. for no CSC segment found*/
959 zhangjin 1.3 CSCDxTTSeg[j] = -9999.;
960     CSCDxErrTTSeg[j] = -9999.;
961     CSCDyTTSeg[j] = -9999.;
962     CSCDyErrTTSeg[j] = -9999.;
963     CSCDxyTTSeg[j] = -9999.;
964     CSCDxyErrTTSeg[j] = -9999.;
965 zhangjin 1.2 /*LCT characteristics*/
966 zhangjin 1.1 CSCLCTxLc[j] = -9999.;
967     CSCLCTyLc[j] = -9999.;
968     CSCLCTbx[j] = -9999;
969 zhangjin 1.2 /*Distance from the Extrapolated Tracks to LCT, 9999. for no LCT found*/
970     CSCDxTTLCT[j] = -9999.;
971 zhangjin 1.3 CSCDxErrTTLCT[j] = -9999.;
972 zhangjin 1.2 CSCDyTTLCT[j] = -9999.;
973 zhangjin 1.3 CSCDyErrTTLCT[j] = -9999.;
974     CSCDxyTTLCT[j] = -9999.;
975     CSCDxyErrTTLCT[j] = -9999.;
976 zhangjin 1.1 /*DetlaR between the extrapolated tracker track on muon system and the tagged muon*/
977     dRTkMu[j] = -9999.;
978     /*Default decision of whether a segment or LCT is found*/
979     segSt[j]=false;
980     lctSt[j]=false;
981     }
982    
983     for(UInt_t j =0; j < 6; j++) {
984    
985     if( MEZ[j] == 0)continue;
986    
987     Float_t zzPlaneME = MEZ[j];
988     if(!CSCEndCapPlus) zzPlaneME = -MEZ[j];
989     tsos = surfExtrapTrkSam(trackRef, zzPlaneME);
990     if (!tsos.isValid()) continue;
991    
992     Int_t st = j>2?j-2:0, ec=CSCEndCapPlus?1:2; // determine the station number...
993     Float_t trkEta = tsos.globalPosition().eta(), trkPhi = tsos.globalPosition().phi();
994    
995 zhangjin 1.4 Short_t rg = ringCandidate(st+1, trkEta, trkPhi);
996     if ( rg==-9999) continue;
997     if (!(
998     (j==0&&(rg==1||rg==4)) ||
999     (j==1&&rg==2) ||
1000     (j==2&&rg==3) ||
1001     (j>2)
1002     )) continue;//check if it is runing on the right ring for a certain Z
1003     else CSCRg[st]=rg;
1004 zhangjin 1.1
1005     //for chamber overlap region
1006     /* This part of code is useless. Just directly extrapolate to chamber
1007     cerr<< "CHK"<<thisChamberCandidate(st+1, rg, trkPhi);
1008     if ( thisChamberCandidate(st+1, rg, trkPhi)%2 == 0 ) zzPlaneME = MEZEven[j];
1009     else zzPlaneME = MEZOdd[j];
1010    
1011     if(!CSCEndCapPlus)zzPlaneME = -zzPlaneME;
1012    
1013     tsos = surfExtrapTrkSam(trackRef, zzPlaneME);
1014 zhangjin 1.4 if (!tsos.isValid()) continue;
1015     trkEta = tsos.globalPosition().eta(); trkPhi = tsos.globalPosition().phi();
1016     rg = ringCandidate(st+1, trkEta, trkPhi);
1017     if ( rg==-9999 ) continue;
1018     */
1019 zhangjin 1.1
1020 zhangjin 1.4 //Calculate the solid angle between the muon and this extrapolated track
1021 zhangjin 1.1 if(trkPhi < 0) trkPhi += 2*M_PI;
1022     /*dR between muon and track*/
1023     Float_t MPhi = phiMuVec[st];
1024 zhangjin 1.5 if (MPhi < 0 ) MPhi += 2*M_PI;
1025 zhangjin 1.1 Float_t TPhi = tsos.globalPosition().phi();
1026 zhangjin 1.5 if (TPhi < 0 ) TPhi += 2*M_PI;
1027 zhangjin 1.1 dRTkMu[st] = deltaR( etaMuVec[st], MPhi, tsos.globalPosition().eta() , TPhi);
1028 zhangjin 1.2 // printf("Mu(%f,%f),Trk(%f,%f)-->dR(%f)",etaMuVec[st], MPhi, tsos.globalPosition().eta() , TPhi,dRTkMu[st]);
1029 zhangjin 1.4 //Find the chamber candidate. If two chamber overlaps, simply divide them from middle. e.g. if chamber1 is from phi=1-3, chamber 2 is from phi=2-4. Then phi=1-2.5-->chamber 1; phi=2.5-4-->chamber 2. Since the distribution over phi is uniform, it won't bias the result.
1030     CSCChCand[st] = thisChamberCandidate(st+1, rg, trkPhi);
1031 zhangjin 1.2 CSCDetId Layer0Id=CSCDetId(ec, st+1, rg, CSCChCand[st], 0);//layer 0 is the mid point of the chamber. It is not a real layer.
1032     CSCChBad[st] = badChambers_->isInBadChamber( Layer0Id );
1033 zhangjin 1.5 //skip not-existing ME42 chambers
1034     if (CSCChBad[st]&&st==3&&rg==2) continue;
1035 zhangjin 1.1 #ifdef jz_debug
1036 zhangjin 1.4 if (CSCChBad[st]) cerr<<(CSCEndCapPlus?"ME+":"ME-")<<st+1<<"/"<<rg<<"/"<<CSCChBad[st]<<" is a dead chamber."<<endl;
1037 zhangjin 1.1 #endif
1038 zhangjin 1.4 /*Not necessary. Chamber search using phi is accurate enough.
1039     CSCDetId Layerid = CSCDetId( ec, st+1, rg, CSCChCand[st], 1 );
1040     vector<Float_t> EdgeAndDistToGap( GetEdgeAndDistToGap(trackRef,Layerid) );//values: 1-edge;2-err of edge;3-disttogap;4-err of dist to gap
1041     if (EdgeAndDistToGap[0]>0.||EdgeAndDistToGap[0]<-9990.) {
1042     cerr<<"ch"<<CSCChCand[st]<<", oldedge="<<EdgeAndDistToGap[0]<<"cm --> ";
1043     //try neighborhood chambers
1044     CSCDetId Layerid_plusone = CSCDetId( ec, st+1, rg, CSCChCand[st]+1, 1 );
1045     vector<Float_t> EdgeAndDistToGap_plusone( GetEdgeAndDistToGap(trackRef,Layerid_plusone) );
1046     CSCDetId Layerid_minusone = CSCDetId( ec, st+1, rg, CSCChCand[st]-1, 1 );
1047     vector<Float_t> EdgeAndDistToGap_minusone( GetEdgeAndDistToGap(trackRef,Layerid_minusone) );
1048     if (EdgeAndDistToGap_plusone[0]<EdgeAndDistToGap[0]&&EdgeAndDistToGap_plusone[0]>-9990.) {
1049     if (EdgeAndDistToGap_minusone[0]>EdgeAndDistToGap_plusone[0]) CSCChCand[st]+=1;
1050     else { if (EdgeAndDistToGap_minusone[0]>-9990.) CSCChCand[st]-=1;}
1051     }
1052     else { if (EdgeAndDistToGap_minusone[0]<EdgeAndDistToGap[0]&&EdgeAndDistToGap_minusone[0]>-9990.) CSCChCand[st]-=1;}
1053     cerr<<"ch"<<CSCChCand[st]<<", plusoneedge="<<EdgeAndDistToGap_plusone[0]<<"cm,"<<", minusoneedge="<<EdgeAndDistToGap_minusone[0]<<"cm."<<endl;
1054     }*/
1055 zhangjin 1.2 for (Int_t ly=1;ly<7;ly++) {
1056 zhangjin 1.4 CSCDetId Layerid = CSCDetId( ec, st+1, rg, CSCChCand[st], ly );
1057     vector<Float_t> EdgeAndDistToGap( GetEdgeAndDistToGap(trackRef,Layerid) );//values: 1-edge;2-err of edge;3-disttogap;4-err of dist to gap
1058 zhangjin 1.2 if (EdgeAndDistToGap[0]>CSCProjEdgeDist[st]) {
1059     CSCProjEdgeDist[st]=EdgeAndDistToGap[0];
1060     CSCProjEdgeDistErr[st]=EdgeAndDistToGap[1];
1061     }
1062     if (EdgeAndDistToGap[2]<CSCDyProjHVGap[st]) {
1063     CSCDyProjHVGap[st]=EdgeAndDistToGap[2];
1064     CSCDyErrProjHVGap[st]=EdgeAndDistToGap[3];
1065     }
1066 zhangjin 1.1 }
1067 zhangjin 1.2 //cerr<<"To Edge:"<<CSCProjEdgeDist[st]<<"; To HVGap:"<<CSCDyProjHVGap[st]<<endl;
1068     // Check the CSC segments in that region..
1069 zhangjin 1.1 CSCSegmentCollection::const_iterator cscSegOut;
1070 zhangjin 1.2 TrajectoryStateOnSurface *TrajToSeg = matchTTwithCSCSeg( trackRef, cscSegments, cscSegOut, Layer0Id);//update tsos with segment Z position, the segment z has little difference with layer 0 Z after the second or the third decimal place (in cm).
1071 zhangjin 1.1 if ( TrajToSeg!=NULL ) {
1072 zhangjin 1.2 /*
1073     const GeomDet* tmp_gdet=cscGeom->idToDet(cscSegOut->cscDetId());
1074     const CSCChamber* cscchamber = cscGeom->chamber(cscSegOut->cscDetId());
1075     cerr<<"CSCSEGDetID:"<<cscSegOut->cscDetId()<<" -- posZ: "<<tmp_gdet->surface().position().z()
1076     <<" -- CSCSeg posZ: "<< cscchamber->toGlobal(cscSegOut->localPosition()).z()<<endl;
1077     */
1078 zhangjin 1.1 /* Save the chamber ID */
1079     CSCDetId id = (CSCDetId) cscSegOut->cscDetId();
1080     /* Save the segment postion and direction */
1081     LocalPoint localSegPos = (*cscSegOut).localPosition();
1082     //GlobalPoint globalSegPosition = cscchamber->toGlobal( localSegPos );
1083     CSCSegxLc[st] = localSegPos.x();
1084     CSCSegyLc[st] = localSegPos.y();
1085     LocalError localSegErr = (*cscSegOut).localPositionError();
1086     CSCSegxErrLc[st] = sqrt(localSegErr.xx());
1087     CSCSegyErrLc[st] = sqrt(localSegErr.yy());
1088     //cerr<<"CSCSegxLc:"<<localSegPos.x()<<"+-"<<CSCSegxErrLc[st]<<endl;
1089     //cerr<<"CSCSegyLc:"<<localSegPos.y()<<"+-"<<CSCSegyErrLc[st]<<endl;
1090    
1091     /* Save the segment quality */
1092     CSCnSegHits[st] = cscSegOut->specificRecHits().size();
1093     Int_t nDOFCSC = 2*CSCnSegHits[st]-4;
1094     CSCSegChisqProb[st] = ChiSquaredProbability( double( (*cscSegOut).chi2() ), nDOFCSC );
1095    
1096     /* Save the difference between the ex-tracker track and the segment */
1097     const GeomDet* gdet=cscGeom->idToDet(id);
1098     LocalPoint localpCSC = gdet->surface().toLocal(TrajToSeg->freeState()->position());
1099     CSCDxTTSeg[st] = CSCSegxLc[st] - localpCSC.x();
1100     CSCDyTTSeg[st] = CSCSegyLc[st] - localpCSC.y();
1101 zhangjin 1.2 CSCDxyTTSeg[st] = sqrt(pow(CSCDxTTSeg[st],2)+pow(CSCDyTTSeg[st],2));
1102 zhangjin 1.1
1103     LocalError localTTErr =TrajToSeg->localError().positionError();
1104 zhangjin 1.3 CSCDxErrTTSeg[st] = localSegErr.xx() + localTTErr.xx(); //the x error of the distance between segment and track squared
1105     CSCDyErrTTSeg[st] = localSegErr.yy() + localTTErr.yy(); //the y error of the distance between segment and track squared
1106     CSCDxyErrTTSeg[st] = sqrt(pow(CSCDxTTSeg[st],2)*CSCDxErrTTSeg[st]+pow(CSCDyTTSeg[st],2)*CSCDyErrTTSeg[st])/CSCDxyTTSeg[st];
1107     CSCDxErrTTSeg[st] = sqrt(CSCDxErrTTSeg[st]); CSCDyErrTTSeg[st] = sqrt(CSCDyErrTTSeg[st]);
1108 zhangjin 1.1
1109     LocalVector trackLocalDir = TrajToSeg->localDirection();
1110     LocalVector segDir = (*cscSegOut).localDirection();
1111     if ( trackLocalDir.z()!=0. && segDir.z()!=0.) {
1112     Float_t dxdz_trk = trackLocalDir.x()/trackLocalDir.z();
1113     Float_t dydz_trk = trackLocalDir.y()/trackLocalDir.z();
1114     Float_t dxdz_seg = segDir.x()/segDir.z();
1115     Float_t dydz_seg = segDir.y()/segDir.z();
1116     if(fabs(id.station()) == 3 || fabs(id.station()) == 4) dydz_seg = -dydz_seg;
1117     CSCdXdZTTSeg[st] = dxdz_trk - dxdz_seg;
1118     CSCdYdZTTSeg[st] = dydz_trk - dydz_seg;
1119     }
1120     nTrkCountCSCSeg++;
1121 zhangjin 1.6 delete TrajToSeg;
1122 zhangjin 1.1 }
1123 zhangjin 1.2
1124 zhangjin 1.1 ////// Loop over MPC infromation to look for LCTs....
1125 zhangjin 1.6 CSCDetId Layer3id = CSCDetId( ec, st+1, rg, CSCChCand[st], 3 );//go to layer 3 that corresponds to the LCTPos
1126 zhangjin 1.2 const GeomDet* Layer3gdet=cscGeom->idToDet(Layer3id);
1127     tsos=surfExtrapTrkSam(trackRef, Layer3gdet->surface().position().z());
1128     if (tsos.isValid()) {
1129     LocalPoint localL3pCSC = Layer3gdet->surface().toLocal(tsos.freeState()->position());
1130     LocalPoint *LCTPos=matchTTwithLCTs( localL3pCSC.x(), localL3pCSC.y(), CSCEndCapPlus?1:2, st+1, CSCRg[st], CSCChCand[st], mpclcts, CSCDxyTTLCT[st], CSCLCTbx[st]);
1131     if (LCTPos!=NULL) {
1132     CSCLCTxLc[st]=LCTPos->x();
1133     CSCLCTyLc[st]=LCTPos->y();
1134     CSCDxTTLCT[st]=CSCLCTxLc[st]-localL3pCSC.x();
1135     CSCDyTTLCT[st]=CSCLCTyLc[st]-localL3pCSC.y();
1136     CSCDxyTTLCT[st] = sqrt(pow(CSCDxTTLCT[st],2)+pow(CSCDyTTLCT[st],2));
1137     LocalError localTTErr =tsos.localError().positionError();
1138 zhangjin 1.3 CSCDxErrTTLCT[st] = sqrt(localTTErr.xx()); CSCDyErrTTLCT[st] = sqrt(localTTErr.yy());
1139 zhangjin 1.2 CSCDxyErrTTLCT[st] =sqrt(pow(CSCDxTTLCT[st],2)*localTTErr.xx() + pow(CSCDyTTLCT[st],2)*localTTErr.yy())/CSCDxyTTLCT[st];
1140 zhangjin 1.6 delete LCTPos;
1141 zhangjin 1.4 //cerr<<"segZ_TTy,LCTZ_TTy:"<<CSCSegyLc[st]-CSCDyTTSeg[st]<<","<<localL3pCSC.y()<<";"<<endl;
1142     }//end of if found LCT
1143     }//end of if layer 3 extrapolation is available
1144 zhangjin 1.1 } // for loop for the stations -- j
1145     /*
1146     for (Byte_t st=0;st<4;st++) {
1147 zhangjin 1.2 lctSt[st] = ( CSCDxyTTLCT[st] >0. && CSCDxyTTLCT[st] < 40 )?1:0;
1148 zhangjin 1.1 segSt[st] = ( CSCDxyTTSeg[st] >0. && CSCDxyTTSeg[st] < 40)?1:0;
1149     }*/
1150 zhangjin 1.4 //cerr<<"eta="<<tracks_eta<<":ME1"<<CSCRg[0]<<":TTLCTx,TTLCTy,TTLCTxy:"<<CSCDxTTLCT[0]<<","<<CSCDyTTLCT[0]<<","<<CSCDxyTTLCT[0]<<endl;
1151 zhangjin 1.1 fractNtuple->Fill();
1152     firsttrackmatchingtoMuTag=false;
1153     } // loop over tracks...
1154     } // loop over muon tracks
1155     }
1156    
1157     // ------------ method called once each job just before starting event loop ------------
1158     void TPTrackMuonSys::beginJob() {}
1159     // ------------ method called once each job just after ending the event loop ------------
1160     void TPTrackMuonSys::endJob() {
1161     theFile->Write();
1162     theFile->Close();
1163     std::cout<<"Events in "<<nEventsAnalyzed<<std::endl;
1164     }
1165    
1166     //copied and modified from http://www.codeproject.com/KB/string/wildcmp.aspx
1167     //It does not belong to any class
1168     Bool_t wildcmp(const char *wild, const char *string) {
1169     // Written by Jack Handy - jakkhandy@hotmail.com
1170     const char *cp = NULL, *mp = NULL;
1171    
1172     while ((*string) && (*wild != '*')) {
1173     if ((*wild != *string) && (*wild != '?')) {
1174     return false;
1175     }
1176     wild++;
1177     string++;
1178     }
1179    
1180     while (*string) {
1181     if (*wild == '*') {
1182     if (!*++wild) {
1183     return true;
1184     }
1185     mp = wild;
1186     cp = string+1;
1187     } else if ((*wild == *string) || (*wild == '?')) {
1188     wild++;
1189     string++;
1190     } else {
1191     wild = mp;
1192     string = cp++;
1193     }
1194     }
1195    
1196     while (*wild == '*') {
1197     wild++;
1198     }
1199     return !*wild;
1200     }
1201    
1202     // ------------ method called in the beginning of each run ------------
1203     void TPTrackMuonSys::beginRun(const Run& r, const EventSetup& iSet)
1204     {
1205     run_number = r.runAuxiliary().run();
1206     iSet.get<CSCBadChambersRcd>().get(pBad);
1207     badChambers_=const_cast<CSCBadChambers*>(pBad.product());
1208     badChambersIndices=new vector<Int_t>( badChambers_->container() );
1209    
1210     char plotname[100],plottitle[100];
1211     sprintf(plotname,"Run%d_BadChambers",run_number);
1212     sprintf(plottitle,"Known BadChambers in Run %d; chamber number",run_number);
1213     /* Draw a badchamber plot and save it to the ntuple*/
1214     TH2F *TH2F_BadChambers=new TH2F(plotname,plottitle,36,1,37,18,-9,9);
1215     const char *chambers[36] = {"01","02","03","04","05","06","07","08","09","10","11","12","13","14","15","16","17","18","19","20","21","22","23","24","25","26","27","28","29","30","31","32","33","34","35","36"};
1216     const char *rings[18] = {"ME-42","ME-41","ME-32","ME-31","ME-22","ME-21","ME-13","ME-12","ME-11","ME+11","ME+12","ME+13","ME+21","ME+22","ME+31","ME+32","ME+41","ME+42"};
1217     for (Byte_t i=0;i<36;i++)
1218     TH2F_BadChambers->GetXaxis()->SetBinLabel(i+1,chambers[i]);
1219     for (Byte_t i=0;i<18;i++)
1220     TH2F_BadChambers->GetYaxis()->SetBinLabel(i+1,rings[i]);
1221     for( Short_t indexc = 1; indexc<=540; ++indexc ) {// chamber indices are in range 1-468 (CSCs 2008) or 469-540 (ME42)
1222     CSCDetId id = CSCIndexer().detIdFromChamberIndex( indexc );
1223     if ( !badChambers_->isInBadChamber( id ) ) continue;
1224     Byte_t ring=id.station()*10+id.ring();
1225     Float_t fillY;
1226     switch ( ring )
1227     {
1228     case 14:
1229     fillY=0.5;
1230     break;
1231     case 11:
1232     fillY=0.5;
1233     break;
1234     case 12:
1235     fillY=1.5;
1236     break;
1237     case 13:
1238     fillY=2.5;
1239     break;
1240     case 21:
1241     fillY=3.5;
1242     break;
1243     case 22:
1244     fillY=4.5;
1245     break;
1246     case 31:
1247     fillY=5.5;
1248     break;
1249     case 32:
1250     fillY=6.5;
1251     break;
1252     case 41:
1253     fillY=7.5;
1254     break;
1255     case 42:
1256     fillY=8.5;
1257     break;
1258     default:
1259     printf("Unexpected ring number: %d",ring);
1260     fillY=9.5;
1261     }
1262     if (id.endcap()==2) fillY*=-1;
1263     TH2F_BadChambers->Fill(id.chamber()+0.5,fillY);
1264     #ifdef jz_debug
1265     cerr<<(id.endcap()==1?"ME+":"ME-")<<Int_t(ring)<<"/"<<id.chamber()<<"("<<indexc<<")";
1266     #endif
1267     }
1268     // TCanvas *BadChambersView=new TCanvas("badch","badch",1200,1000);
1269     // BadChambersView->SetGrid();
1270     TH2F_BadChambers->SetStats(0);
1271     TH2F_BadChambers->SetMinimum(0);
1272     TH2F_BadChambers->SetMaximum(0.8);
1273     TH2F_BadChambers->Draw("colz");
1274     TH2F_BadChambers->SetLabelSize(0.035,"X");
1275     #ifndef GetCSCHitsBefore500
1276     theFile->cd();
1277     #endif
1278     TH2F_BadChambers->Write();
1279     // BadChambersView->Write("BadChambersPlot");
1280     /* End of drawing the badchamber plot*/
1281    
1282     Bool_t isConfigChanged = false;
1283     m_HLTMuTrgBit.clear();
1284     HLTMuNames->clear();
1285     HLTMuObjModuleNames->clear();
1286     m_HLTDiMuTrgBit=-1;
1287     HLTDiMuName=new string();
1288     HLTDiMuObjModuleName=new string();
1289     if ( hltConfigProvider_.init( r, iSet, m_hlt.process() , isConfigChanged ) ) {
1290     HLTTableName=new string( hltConfigProvider_.tableName() );
1291     const vector<string> & HLTNamesSet_=hltConfigProvider_.triggerNames();
1292     UInt_t idx=0;
1293     for ( vector<string>::const_iterator itertable=HLTNamesSet_.begin();itertable != HLTNamesSet_.end();itertable++,idx++ ) {
1294     #ifdef jz_debug
1295     cout<<endl<<idx<<":"<<*itertable;
1296     #endif
1297     Bool_t selected=false;
1298     for ( vector<string>::const_iterator iter=m_HLTMuTrgNames.begin();iter!=m_HLTMuTrgNames.end();iter++ ) {
1299     if ( wildcmp(iter->c_str(),itertable->c_str()) ) {
1300     selected=true;
1301     break;
1302     }
1303     }
1304     if (selected) {
1305     m_HLTMuTrgBit.push_back(idx);
1306     HLTMuNames->push_back(*itertable);
1307     HLTMuObjModuleNames->push_back( *(hltConfigProvider_.moduleLabels(idx).end()-2) );
1308     #ifdef jz_debug
1309     cout<<", saved for singlemu";
1310     #endif
1311     }
1312     if ( m_HLTDiMuTrgBit<0 && wildcmp(m_HLTDiMuTrgName.c_str(),itertable->c_str()) ) {
1313     m_HLTDiMuTrgBit=idx;
1314     HLTDiMuName->assign(*itertable);
1315     HLTDiMuObjModuleName->assign( *(hltConfigProvider_.moduleLabels(idx).end()-2) );
1316     #ifdef jz_debug
1317     cout<<", saved for doublemu";
1318     #endif
1319     }
1320     }//end of iter HLT table
1321     RunInfo->Fill();
1322     } else {
1323     // if init returns FALSE, initialisation has NOT succeeded, which indicates a problem
1324     // with the file and/or code and needs to be investigated!
1325     LogWarning("DataLost") << " HLT config extraction failure with process name " <<m_hlt.process();
1326     // In this case, all access methods will return empty values!
1327     }
1328     }
1329    
1330 zhangjin 1.2 vector<Float_t> TPTrackMuonSys::GetEdgeAndDistToGap(reco::TrackRef trackRef, CSCDetId & detid) {
1331     vector<Float_t> result(4,9999.);
1332     result[3]=-9999;
1333     const GeomDet* gdet=cscGeom->idToDet( detid );
1334     TrajectoryStateOnSurface tsos=surfExtrapTrkSam(trackRef, gdet->surface().position().z());
1335     if (!tsos.isValid()) return result;
1336     LocalPoint localTTPos = gdet->surface().toLocal(tsos.freeState()->position());
1337 zhangjin 1.6 const CSCWireTopology* wireTopology = cscGeom->layer(detid)->geometry()->wireTopology();
1338 zhangjin 1.2 Float_t wideWidth = wireTopology->wideWidthOfPlane();
1339     Float_t narrowWidth = wireTopology->narrowWidthOfPlane();
1340     Float_t length = wireTopology->lengthOfPlane();
1341     // If slanted, there is no y offset between local origin and symmetry center of wire plane
1342     Float_t yOfFirstWire = fabs(wireTopology->wireAngle())>1.E-06 ? -0.5*length : wireTopology->yOfWire(1);
1343     // y offset between local origin and symmetry center of wire plane
1344     Float_t yCOWPOffset = yOfFirstWire+0.5*length;
1345     // tangent of the incline angle from inside the trapezoid
1346     Float_t tangent = (wideWidth-narrowWidth)/(2.*length);
1347     // y position wrt bottom of trapezoid
1348     Float_t yPrime = localTTPos.y()+fabs(yOfFirstWire);
1349     // half trapezoid width at y' is 0.5 * narrowWidth + x side of triangle with the above tangent and side y'
1350     Float_t halfWidthAtYPrime = 0.5*narrowWidth+yPrime*tangent;
1351 zhangjin 1.5 // x offset between local origin and symmetry center of wire plane is zero
1352 zhangjin 1.7 // x offset of ME11s is also zero. x center of wire groups is not at zero, because it is not parallel to x. The wire groups of ME11s have a complex geometry, see the code in m_debug.
1353 zhangjin 1.2 Float_t edgex = fabs(localTTPos.x()) - halfWidthAtYPrime;
1354     Float_t edgey = fabs(localTTPos.y()-yCOWPOffset) - 0.5*length;
1355     LocalError localTTErr = tsos.localError().positionError();
1356 zhangjin 1.3 // cerr<<"x err = "<<sqrt(localTTErr.xx())<<" ; y err = "<<sqrt(localTTErr.yy())<<endl;
1357 zhangjin 1.2 if ( edgex > edgey ) {
1358     result[0] = edgex;
1359     result[1] = sqrt( localTTErr.xx() );
1360     //result[1] = sqrt(tsos.cartesianError().position().cxx());
1361     }
1362     else {
1363     result[0] = edgey;
1364     result[1] = sqrt( localTTErr.yy() );
1365     //result[1] = sqrt(tsos.cartesianError().position().cyy());
1366     }
1367     result[2]=YDistToHVDeadZone(localTTPos.y(), detid.station()*10+detid.ring());
1368     result[3]=sqrt( localTTErr.yy() );
1369     return result;//return values: 1-edge;2-err of edge;3-disttogap;4-err of dist to gap
1370     }
1371    
1372 zhangjin 1.1 ////////////////////////////////////////////
1373     reco::MuonCollection::const_iterator TPTrackMuonSys::matchTTwithMT(reco::TrackCollection::const_iterator &itrack)
1374     {
1375     for (reco::MuonCollection::const_iterator muIter = muons->begin(); muIter != muons->end(); muIter++) {
1376     if (muIter->combinedMuon().isNonnull() )
1377     if ( &( * muIter->combinedMuon().get() ) == & (*itrack) ) return muIter;
1378     if (muIter->track().isNonnull() )
1379     if ( &(* muIter->track().get() ) == & (*itrack) ) return muIter;
1380     if (muIter->standAloneMuon().isNonnull() )
1381     if ( &( *muIter->standAloneMuon().get() ) == & (*itrack) ) return muIter;
1382     }
1383     return muons->end();
1384     }
1385    
1386     ////// Match TT with RPCEndCapHit
1387     Bool_t TPTrackMuonSys::matchTTwithCSCRecHit(Bool_t trackDir,
1388     Int_t j,
1389     reco::TrackRef trackRef,
1390     edm::Handle<CSCRecHit2DCollection> recHits,
1391     //std::vector<CSCRecHit2DCollection> recHitOut,
1392     std::vector<CSCRecHit2D> & recHitOut,
1393     std::vector<Int_t >& deltaRecHitX,
1394     std::vector<Int_t >& deltaRecHitY)
1395     {
1396    
1397     Bool_t aMatch = false;
1398     CSCRecHit2D tmp[6];
1399    
1400     Float_t minDX[6]={999., 999., 999., 999., 999., 999.};
1401     Float_t minDY[6]={999., 999., 999., 999., 999., 999.};
1402     Float_t minDR[6]={999., 999., 999., 999., 999., 999.};
1403     recHitOut.clear();
1404    
1405     Float_t rCut = 50.;
1406    
1407     for (CSCRecHit2DCollection::const_iterator recIt = recHits->begin(); recIt != recHits->end(); recIt++) {
1408     CSCDetId id = (CSCDetId)(*recIt).cscDetId();
1409    
1410     if((trackDir && id.endcap() == 2) || (!trackDir && id.endcap() == 1)) continue;
1411     if(
1412     (j == 0 && id.station() == 1 && ((id.ring() == 1) || (id.ring() == 4 ))) || // ME1/1,4
1413     (j == 1 && id.station() == 1 && (id.ring() == 2)) || // ME1/2
1414     (j == 2 && id.station() == 1 && (id.ring() == 3)) || // ME1/3
1415     (j == 3 && id.station() == 2) || // ME2/1,2
1416     (j == 4 && id.station() == 3) || // ME3/1,2
1417     (j == 5 && id.station() == 4) // ME4/1
1418     ){
1419    
1420     // Get pointer to the layer:
1421     const CSCLayer* csclayer = cscGeom->layer( id );
1422     if (!csclayer)continue;
1423    
1424     // Transform hit position from local chamber geometry to global CMS geom
1425     LocalPoint rhitlocal = (*recIt).localPosition();
1426     GlobalPoint rhitglobal = csclayer->toGlobal(rhitlocal);
1427     Float_t RecHit_grecx = rhitglobal.x();
1428     Float_t RecHit_grecy = rhitglobal.y();
1429     TrajectoryStateOnSurface tsos = surfExtrapTrkSam(trackRef, rhitglobal.z());
1430     if (!tsos.isValid()) continue;
1431     Float_t cscdeltaX = RecHit_grecx - tsos.globalPosition().x();
1432     Float_t cscdeltaY = RecHit_grecy - tsos.globalPosition().y();
1433     Float_t cscdeltaR = sqrt(pow(cscdeltaX,2)+pow(cscdeltaY,2));
1434    
1435     Int_t mlayer = id.layer() - 1;
1436     if(fabs(cscdeltaR) < fabs(minDR[mlayer]) && fabs(cscdeltaR) < rCut){
1437     aMatch = true;
1438     minDX[mlayer] = cscdeltaX;
1439     minDY[mlayer] = cscdeltaY;
1440     minDR[mlayer] = cscdeltaR;
1441     tmp[mlayer] = (*recIt);
1442     }
1443     }
1444     }
1445    
1446     for (Int_t i = 0; i < 6; i++) {
1447     Float_t cscdeltaR = sqrt(pow(minDX[i],2)+pow(minDY[i],2));
1448     if(cscdeltaR < rCut) recHitOut.push_back(tmp[i]);
1449     }
1450     for (Int_t i = 0; i < 6; i++) {
1451     deltaRecHitX.push_back(minDX[i]);
1452     deltaRecHitY.push_back(minDY[i]);
1453     }
1454     return aMatch;
1455     }
1456    
1457     ////// Match TT with RPCEndCapHit
1458 zhangjin 1.5 /*
1459 zhangjin 1.1 Bool_t TPTrackMuonSys::matchTTwithRPCEChit(Bool_t trackDir,
1460     Int_t j,
1461     reco::TrackRef trackRef,
1462     edm::Handle<RPCRecHitCollection> rpcRecHits,
1463     RPCRecHitCollection::const_iterator &rpcHitOut)
1464     // Float_t deltaRPCX, Float_t deltaRPCY)
1465     {
1466     Bool_t aMatch = false;
1467    
1468     //Float_t deltaRPCX = 999.0, deltaRPCY = 999.0;
1469     Float_t deltaRPCR = 999.0;// deltaRPCPhi = 999.0;
1470    
1471     for (RPCRecHitCollection::const_iterator rpcIt = rpcRecHits->begin(); rpcIt != rpcRecHits->end(); rpcIt++) {
1472     RPCDetId id = (RPCDetId)(*rpcIt).rpcId();
1473     const GeomDet* gdet=rpcGeo->idToDet(id);
1474     const BoundPlane & surface = gdet->surface();
1475     if(id.region() == 0)continue;
1476     if((trackDir && id.region() == -1) || (!trackDir && id.region() == 1) ) continue;
1477     if(
1478     (j >= 1 && j <= 2 && id.station() == 1) ||
1479     (j == 3 && id.station() == 2) ||
1480     (j == 4 && id.station() == 3)
1481     ){
1482    
1483     LocalPoint localPos = (*rpcIt).localPosition();
1484     GlobalPoint globalPosition=surface.toGlobal(localPos);
1485     TrajectoryStateOnSurface tsos = surfExtrapTrkSam(trackRef, globalPosition.z());
1486     if (!tsos.isValid()) continue;
1487    
1488     Float_t RPCEdeltaXMin = globalPosition.x() - tsos.globalPosition().x();
1489     Float_t RPCEdeltaYMin = globalPosition.y() - tsos.globalPosition().y();
1490     //Float_t RPCEdeltaRMin = sqrt(pow(RPCEdeltaXMin,2)+pow(RPCEdeltaYMin,2));
1491    
1492     Float_t RPCEPhiProj = tsos.globalPosition().phi();
1493     Float_t RPCEPhiPos = globalPosition.phi();
1494    
1495     ////// New for RPCEC
1496     if(RPCEPhiProj < 0) RPCEPhiProj = RPCEPhiProj + 2*M_PI;
1497     if(RPCEPhiPos < 0) RPCEPhiPos = RPCEPhiPos + 2*M_PI;
1498    
1499     // Float_t RPCEdeltaPhiMin = fabs(RPCEPhiProj - RPCEPhiPos);//sqrt(pow(RPCEdeltaXMin,2)+pow(RPCEdeltaYMin,2));
1500    
1501     Float_t RPCEdeltaRMin = sqrt(pow(RPCEdeltaXMin,2)+pow(RPCEdeltaYMin,2));
1502     if(fabs(RPCEdeltaRMin) < fabs(deltaRPCR) && fabs(RPCEdeltaRMin) < 50. ){
1503     aMatch = true;
1504     // deltaRPCPhi = RPCEdeltaPhiMin;
1505     deltaRPCR = RPCEdeltaRMin;
1506     rpcHitOut = rpcIt;
1507     }
1508     }
1509     } // loop over RPCE rechits
1510    
1511     return aMatch;
1512     }
1513 zhangjin 1.5 */
1514 zhangjin 1.1 ////////////// Get the matching with LCTs...
1515 zhangjin 1.3 LocalPoint * TPTrackMuonSys::matchTTwithLCTs(Float_t xPos, Float_t yPos, Short_t ec, Short_t st, Short_t &rg, Short_t cham,
1516 zhangjin 1.1 edm::Handle<CSCCorrelatedLCTDigiCollection> mpclcts, Float_t &dRTrkLCT, Int_t &lctBX ) {
1517     LocalPoint *interSect=NULL;
1518    
1519     for (CSCCorrelatedLCTDigiCollection::DigiRangeIterator detMPCUnitIt = mpclcts->begin();
1520     detMPCUnitIt != mpclcts->end(); detMPCUnitIt++) {
1521 zhangjin 1.7 CSCDetId id = (*detMPCUnitIt).first;
1522 zhangjin 1.1
1523     if(ec != id.endcap())continue;
1524     if(st != id.station())continue;
1525     if(cham != id.chamber())continue;
1526    
1527     Bool_t ed1 = (st == 1) && ((rg == 1 || rg == 4) && (id.ring() == 1 || id.ring() == 4));
1528     Bool_t ed2 = (st == 1) && ((rg == 2 && id.ring() == 2) || (rg == 3 && id.ring() == 3));
1529     Bool_t ed3 = (st != 1) && (rg == id.ring());
1530 zhangjin 1.5 if ( !(ed1 || ed2 || ed3) ) continue;
1531 zhangjin 1.1 const CSCCorrelatedLCTDigiCollection::Range& MPCrange = (*detMPCUnitIt).second;
1532     for (CSCCorrelatedLCTDigiCollection::const_iterator mpcIt = MPCrange.first; mpcIt != MPCrange.second; mpcIt++) {
1533     Bool_t lct_valid = (*mpcIt).isValid();
1534     if(!lct_valid)continue;
1535 zhangjin 1.3 //In CSC offline/hlt software in general, is COUNT FROM ONE, such as CSCGeometry.
1536 zhangjin 1.6 //However, the LCT software counts from zero. strip_id is from 0 to 159. wireGroup_id is from 0 to 31(ME13),47(ME11),63(ME1234/2),95(ME31,41),111(ME21). So here we need to plus one.
1537 zhangjin 1.5 Byte_t wireGroup_id = (*mpcIt).getKeyWG()+1;
1538     Byte_t strip_id=(*mpcIt).getStrip()/2+1;
1539     //if ( id.ring()==4 ) cerr<<"Alert id.ring()==4"<<endl;
1540     Bool_t me11=(st == 1) && (id.ring() == 1 || id.ring() == 4),
1541     me11a = me11 && strip_id>64;
1542     //me11b = me11 && strip_id<=64;
1543     //http://cmssdt.cern.ch/SDT/lxr/source/CondFormats/CSCObjects/src/CSCChannelTranslator.cc
1544     // Translate a raw strip channel in range 1-80, iraw, into
1545     // corresponding geometry-oriented channel in which increasing
1546     // channel number <-> strip number increasing with +ve local x.
1547     //geomStripChannel( CSCDetId(ec, st+1, rg, CSCChCand[st], 0) )
1548     if ( me11a ) {
1549     strip_id-=64;
1550 zhangjin 1.7 // The CSCCorrelatedLCTDigi DetId does NOT distinguish ME11A and B. All of the DetIDs are labelled as ME11B (all ME11, none ME14)
1551     // However, stripWireGroupIntersection must know that since ME11A has 48 strips and ME11B has 64.
1552     id=CSCDetId(ec, 1, 4, cham, 3);
1553 zhangjin 1.6 //if ( id.endcap()==1 ) strip_id=17-strip_id;
1554 zhangjin 1.5 }
1555     //if ( me11b && id.endcap()!=1 ) strip_id=65-strip_id;
1556 zhangjin 1.7 const CSCLayerGeometry *layerGeom = cscGeom->chamber(id)->layer (3)->geometry ();
1557 zhangjin 1.5 for(Byte_t ii = 0; ii < 3; ii++){
1558     // if ( strip_id>64 ) LogWarning("Strip_id") << "Got "<<strip_id<<", but there are "<< Nstrips <<" strips in total." <<m_hlt.process();
1559     LocalPoint interSect_ = layerGeom->stripWireGroupIntersection(strip_id, wireGroup_id);
1560 zhangjin 1.1 // printf( "ME%d/%d: %.1f/%d, %d/%d: xLCT-xTT=%.2f-%.2f; yLCT-yTT=%.2f-%.2f \n",st,id.ring(),strip_id,Nstrips,wireGroup_id,layerGeom->numberOfWireGroups(),interSect_.x(),xPos,interSect_.y(),yPos);
1561     Float_t DeltaR_ = sqrt(pow((interSect_.x()-xPos),2) + pow((interSect_.y()-yPos),2));
1562     if( DeltaR_ < fabs(dRTrkLCT) ) {
1563 zhangjin 1.6 delete interSect;
1564 zhangjin 1.1 interSect=new LocalPoint(interSect_);
1565     dRTrkLCT = DeltaR_ ;
1566     lctBX = (*mpcIt).getBX();
1567 zhangjin 1.3 if (me11a) rg=4;
1568     else rg=id.ring();
1569 zhangjin 1.1 //cout << "1: BX = " << (*mpcIt).getBX() << " BX0 = " << (*mpcIt).getBX0() << std::endl;
1570     } // for the matching if statement...
1571 zhangjin 1.5 if (me11a) strip_id+=16;
1572 zhangjin 1.1 else break;
1573     }// end iteration over of ME11A triplet
1574     }// end iteration over lcts_mpc_data in one chamber
1575     }// end iteration over lcts_mpc_data
1576     return interSect;
1577     }
1578    
1579     inline Float_t TPTrackMuonSys::TrajectoryDistToSeg( TrajectoryStateOnSurface *TrajSuf, CSCSegmentCollection::const_iterator segIt) {
1580     if (!TrajSuf->isValid()) return 9999.;
1581     const GeomDet* gdet=cscGeom->idToDet( (CSCDetId)(*segIt).cscDetId() );
1582     LocalPoint localTTPos = gdet->surface().toLocal(TrajSuf->freeState()->position());
1583     LocalPoint localSegPos = (*segIt).localPosition();
1584     Float_t CSCdeltaX = localSegPos.x() - localTTPos.x();
1585     Float_t CSCdeltaY = localSegPos.y() - localTTPos.y();
1586     return sqrt(pow(CSCdeltaX,2)+pow(CSCdeltaY,2));
1587     }
1588    
1589     TrajectoryStateOnSurface *TPTrackMuonSys::matchTTwithCSCSeg( reco::TrackRef trackRef, edm::Handle<CSCSegmentCollection> cscSegments,
1590     CSCSegmentCollection::const_iterator &cscSegOut, CSCDetId & idCSC ) {
1591     TrajectoryStateOnSurface *TrajSuf=NULL;
1592 zhangjin 1.4 Float_t deltaCSCR = 9999.;
1593 zhangjin 1.1 for(CSCSegmentCollection::const_iterator segIt=cscSegments->begin(); segIt != cscSegments->end(); segIt++) {
1594     CSCDetId id = (CSCDetId)(*segIt).cscDetId();
1595     if(idCSC.endcap() != id.endcap())continue;
1596     if(idCSC.station() != id.station())continue;
1597     if(idCSC.chamber() != id.chamber())continue;
1598    
1599     Bool_t ed1 = (idCSC.station() == 1) && ((idCSC.ring() == 1 || idCSC.ring() == 4) && (id.ring() == 1 || id.ring() == 4));
1600     Bool_t ed2 = (idCSC.station() == 1) && ((idCSC.ring() == 2 && id.ring() == 2) || (idCSC.ring() == 3 && id.ring() == 3));
1601     Bool_t ed3 = (idCSC.station() != 1) && (idCSC.ring() == id.ring());
1602     Bool_t TMCSCMatch = (ed1 || ed2 || ed3);
1603     if(! TMCSCMatch)continue;
1604    
1605     const CSCChamber* cscchamber = cscGeom->chamber(id);
1606     if (!cscchamber) continue;
1607     TrajectoryStateOnSurface TrajSuf_ = surfExtrapTrkSam(trackRef, cscchamber->toGlobal( (*segIt).localPosition() ).z());
1608    
1609     Float_t dR_= fabs( TrajectoryDistToSeg( &TrajSuf_, segIt ) );
1610     if ( dR_ < deltaCSCR ){
1611 zhangjin 1.6 delete TrajSuf;
1612 zhangjin 1.1 TrajSuf=new TrajectoryStateOnSurface(TrajSuf_);
1613     deltaCSCR = dR_;
1614     cscSegOut = segIt;
1615     }
1616     }//loop over segments
1617 zhangjin 1.2
1618 zhangjin 1.1 return TrajSuf;
1619     }
1620     ////////////// Get the matching with CSC-sgements...
1621     Bool_t TPTrackMuonSys::matchTTwithCSCSeg(Bool_t trackDir, Int_t st_, reco::TrackRef trackRef, edm::Handle<CSCSegmentCollection> cscSegments,
1622     CSCSegmentCollection::const_iterator &cscSegOut ) {
1623     Bool_t aMatch = false;
1624     // Float_t deltaCSCX = 9999.0, deltaCSCY = 9999.0;
1625     Float_t deltaCSCR = 50.0;
1626     for(CSCSegmentCollection::const_iterator segIt=cscSegments->begin(); segIt != cscSegments->end(); segIt++) {
1627     CSCDetId id = (CSCDetId)(*segIt).cscDetId();
1628     if((trackDir && id.endcap() == 2) || (!trackDir && id.endcap() == 1)) continue;
1629     if(
1630     (st_ == 0 && id.station() == 1 && ((id.ring() == 1) || (id.ring() == 4 ))) || // ME1/1,4
1631     (st_ == 1 && id.station() == 1 && (id.ring() == 2)) || // ME1/2
1632     (st_ == 2 && id.station() == 1 && (id.ring() == 3)) || // ME1/3
1633     (st_ == 3 && id.station() == 2) || // ME2/1,2
1634     (st_ == 4 && id.station() == 3) || // ME3/1,2
1635     (st_ == 5 && id.station() == 4) // ME4/1
1636     ) {
1637     const CSCChamber* cscchamber = cscGeom->chamber(id);
1638     if (!cscchamber) continue;
1639     TrajectoryStateOnSurface TrajSuf = surfExtrapTrkSam(trackRef, cscchamber->toGlobal( (*segIt).localPosition() ).z());
1640    
1641     Float_t dR_= fabs( TrajectoryDistToSeg( &TrajSuf, segIt ) );
1642    
1643     if ( dR_ < deltaCSCR ){
1644     aMatch = true;
1645     deltaCSCR = dR_;
1646     cscSegOut = segIt;
1647     }
1648     }
1649     } // loop over segments
1650     return aMatch;
1651     }
1652    
1653     ////
1654     Int_t TPTrackMuonSys::getNLayerMatchedCSCSeg(CSCSegmentCollection::const_iterator &cscSegMatch,
1655     edm::Handle<CSCRecHit2DCollection> recHits,
1656     Float_t *delRecSegX,
1657     Float_t *delRecSegY,
1658     Int_t &nGhits
1659     )
1660     {
1661     Int_t nhits = 0;
1662     CSCDetId idCSC = (CSCDetId)(*cscSegMatch).cscDetId();
1663     Int_t ec = idCSC.endcap(), st = idCSC.station(), rg = idCSC.ring(), cham = idCSC.chamber();
1664     LocalPoint localPos = (*cscSegMatch).localPosition();
1665    
1666     Float_t cscx = localPos.x();
1667     Float_t cscy = localPos.y();
1668    
1669     for(Int_t i = 0; i < 6; i++){
1670     delRecSegX[i] = 999.;
1671     delRecSegY[i] = 999.;
1672     }
1673     Float_t minDeltaR = 999.;
1674    
1675     for (CSCRecHit2DCollection::const_iterator recIt = recHits->begin(); recIt != recHits->end(); recIt++) {
1676     CSCDetId id = (CSCDetId)(*recIt).cscDetId();
1677     if(ec != id.endcap())continue;
1678     if(st != id.station())continue;
1679     if(rg != id.ring())continue;
1680     if(cham != id.chamber())continue;
1681     LocalPoint rhitlocal = (*recIt).localPosition();
1682     Float_t recx = rhitlocal.x();
1683     Float_t recy = rhitlocal.y();
1684     Float_t myDeltaR = sqrt(pow((cscx - recx),2)+ pow((cscy - recy),2));
1685    
1686     Int_t layer = id.layer();
1687    
1688     if(myDeltaR < minDeltaR){
1689     minDeltaR = myDeltaR;
1690     delRecSegX[layer-1] = cscx - recx;
1691     delRecSegY[layer-1] = cscy - recy;
1692     }
1693     nhits = nhits + 1;
1694     }
1695    
1696     nGhits = 0;
1697     for(Int_t i = 0; i < 6; i++){
1698     Float_t myDeltaR = sqrt(pow(delRecSegX[i],2)+ pow(delRecSegY[i],2));
1699     if(myDeltaR < 15.)nGhits = nGhits + 1; /// look for this hit is within 15 cm.
1700     }
1701    
1702    
1703     return nhits; // this is probably not the right number of hits.
1704     }
1705    
1706    
1707    
1708    
1709     #ifdef GetCSCHitsBefore500
1710     void TPTrackMuonSys::getCSCSegWkeyHalfStrip(const std::vector<CSCRecHit2D> &theseRecHits, Float_t &cStrp, Float_t &ckWG){
1711    
1712     #ifdef m_debug
1713     cout << " Start of the function " << endl;
1714     #endif
1715    
1716     Float_t m_cStrp = 999.0, m_ckWG = 999.;
1717    
1718     Float_t strpSum =0.0, wkeySum = 0.0;
1719     Int_t nhits =0 ;
1720     Bool_t layer3 = false;
1721     Bool_t me11a = false;
1722    
1723     for ( std::vector<CSCRecHit2D>::const_iterator iRH = theseRecHits.begin(); iRH != theseRecHits.end(); iRH++) {
1724     CSCDetId idRH = (CSCDetId)(*iRH).cscDetId();
1725     Int_t mx_layer = idRH.layer();
1726    
1727     if (idRH.ring() == 4) me11a = true;
1728    
1729     /////////////////////////
1730     //
1731     // Get the strip number... ------> m_cStrp
1732     //
1733     /////////////////////////
1734     LocalPoint rhitlocal = (*iRH).localPosition();
1735     Float_t pWS = (*iRH).positionWithinStrip();
1736     // Find the strip containing this hit
1737     CSCRecHit2D::ChannelContainer hitstrips = (*iRH).channels();
1738    
1739     Int_t nStrips = hitstrips.size();
1740     // Int_t centerid = nStrips/2 + 1;
1741    
1742     if(nStrips == 3) m_cStrp = (int) (2.0*(hitstrips[1] + pWS - 0.5 ));
1743     else m_cStrp = (int) ( 2.0*(hitstrips[0] - pWS - 0.5 ));
1744    
1745     Bool_t evenLayer = (mx_layer % 2 == 0);
1746     if ( evenLayer )m_cStrp -= 1;
1747     if ( (idRH.station() == 1) && (idRH.layer() != 3) && evenLayer ) m_cStrp += 1;
1748     //m_cStrp = hitstrips[centerid - 1];
1749     /////////////////////////
1750     //
1751     // Get the wireKey number...------> m_ckWG
1752     //
1753     /////////////////////////
1754    
1755     CSCRecHit2D::ChannelContainer wiresg = (*iRH).wgroups();
1756     // m_ckWG = wiresg[0]-1;
1757     m_ckWG = wiresg[wiresg.size()/2]-1;//corrected from to wiresg[0] to [wiresg.size()/2]
1758    
1759     if(mx_layer == 3){
1760     cStrp = m_cStrp;
1761     ckWG = m_ckWG;
1762     layer3 = true;
1763     }
1764     strpSum = strpSum + m_cStrp;
1765     wkeySum = wkeySum + m_ckWG;
1766     nhits = nhits + 1;
1767     }
1768     if(! layer3 && nhits != 0){
1769     cStrp = strpSum/nhits;
1770     ckWG = wkeySum/nhits;
1771     }
1772     if (me11a)cStrp = ((int)cStrp - 1)%32 + 1;
1773     }
1774     #else
1775     void TPTrackMuonSys::getCSCSegWkeyHalfStrip(const vector<CSCRecHit2D> &theseRecHits, Float_t &cStrp, Float_t &ckWG){
1776     Float_t strpSum = 0., wkeySum = 0.;
1777     Int_t nhits = 0; Bool_t me11a=false;
1778     for ( vector<CSCRecHit2D>::const_iterator iRH = theseRecHits.begin(); iRH != theseRecHits.end(); iRH++,nhits++ ) {
1779     CSCDetId idRH = (CSCDetId)(*iRH).cscDetId();
1780     if (idRH.ring() == 4) me11a = true;
1781     Byte_t layer = idRH.layer();
1782     Float_t pWS = (*iRH).positionWithinStrip();
1783     Int_t m_cStrp = (Int_t) (2.0*(iRH->channels(1) + pWS - 0.5 ));
1784     if ( layer%2!=0 &&
1785     !( (idRH.station() == 1) && (idRH.layer() != 3) ) ) m_cStrp--;
1786    
1787     if( layer == 3 ) {
1788     cStrp=m_cStrp;
1789     ckWG=iRH->hitWire()-1;
1790     nhits=1;
1791     break;
1792     }
1793     else {
1794     strpSum += m_cStrp;
1795     wkeySum += iRH->hitWire()-1;
1796     }
1797     #ifdef m_debug
1798     clog << "ME" << idRH.station() << idRH.ring() <<":" << endl
1799     << "cstrips ("<< iRH->nStrips() <<"): " //should be always 3
1800     << iRH->channels(0) << "," << iRH->channels(1) << "," << iRH->channels(2)
1801     << "; cwire:" << iRH->hitWire() << endl;
1802     #endif
1803     }
1804     cStrp = strpSum/nhits;
1805     ckWG = wkeySum/nhits;
1806     if (me11a) cStrp = ( (Int_t) cStrp - 1)%32 + 1;
1807     #ifdef m_debug
1808     clog << "cStrip: "<< cStrp << "; cWire: " << ckWG << endl;
1809     #endif
1810     }
1811     #endif// end of GetCSCHitsBefore500
1812 zhangjin 1.5 /*
1813 zhangjin 1.1 Bool_t TPTrackMuonSys::matchCSCSegWithLCT(edm::Handle<CSCCorrelatedLCTDigiCollection> mpclcts,
1814     CSCDetId & idCSC,
1815     Int_t TT,
1816     Float_t TrkPhi, Float_t TrkEta,
1817     Float_t c1, Float_t w1,
1818     CSCCorrelatedLCTDigiCollection::const_iterator &mpcItOut,
1819     CSCCorrelatedLCTDigiCollection::const_iterator &mpcHsWkOut,
1820     Bool_t *xMatch,
1821     Float_t *mDAngle,
1822     Float_t *diffTrkEta,
1823     Float_t *diffTrkPhi,
1824     Float_t *delHStrp,
1825     Float_t *delWkey
1826     )
1827     {
1828     /// Input
1829     // idCSC, halfstrip and wireKey
1830    
1831     /// Output
1832     /// Whether there is a match based on halfstrip and wireKey
1833     /// or based on phi.
1834     /// also: minPhi, minDAngle;
1835    
1836     for(Int_t i = 0; i < 2; i++){
1837     xMatch[i] = false;
1838     mDAngle[i] = 999.;
1839     diffTrkEta[i] = 999.;
1840     diffTrkPhi[i] = 999.;
1841     delHStrp[i] = 99999.;
1842     delWkey[i] = 99999.;
1843     }
1844    
1845     Int_t ec = idCSC.endcap(), st = idCSC.station(), rg = idCSC.ring(), cham = idCSC.chamber();
1846     Bool_t me11a = false;
1847     if (rg == 4) me11a = true;
1848    
1849     //// For the minimization:
1850    
1851     for (CSCCorrelatedLCTDigiCollection::DigiRangeIterator detMPCUnitIt = mpclcts->begin(); detMPCUnitIt != mpclcts->end(); detMPCUnitIt++) {
1852     const CSCDetId& id = (*detMPCUnitIt).first;
1853    
1854     if(ec != id.endcap())continue;
1855     if(st != id.station())continue;
1856     if(cham != id.chamber())continue;
1857    
1858     Bool_t ed1 = (st == 1) && ((rg == 1 || rg == 4) && (id.ring() == 1 || id.ring() == 4));
1859     Bool_t ed2 = (st == 1) && ((rg == 2 && id.ring() == 2) || (rg == 3 && id.ring() == 3));
1860     Bool_t ed3 = (st != 1) && (rg == id.ring());
1861     Bool_t TMCSCMatch = (ed1 || ed2 || ed3);
1862     if(! TMCSCMatch)continue;
1863    
1864     const CSCCorrelatedLCTDigiCollection::Range& MPCrange = (*detMPCUnitIt).second;
1865     for (CSCCorrelatedLCTDigiCollection::const_iterator mpcIt = MPCrange.first; mpcIt != MPCrange.second; mpcIt++) {
1866     Bool_t lct_valid = (*mpcIt).isValid();
1867     if(!lct_valid)continue;
1868    
1869     Int_t station = id.station()-1;
1870     Int_t sector = id.triggerSector()-1;
1871     Int_t subSector = CSCTriggerNumbering::triggerSubSectorFromLabels(id);
1872     Int_t fpga = ( subSector ? subSector-1 : station+1 );
1873     Int_t endcap = id.endcap()-1;
1874     lclphidat lclPhi = srLUTs_[endcap][sector][fpga]->localPhi((*mpcIt).getStrip(),(*mpcIt).getPattern(),(*mpcIt).getQuality(),(*mpcIt).getBend() );
1875     gblphidat gblPhi = srLUTs_[endcap][sector][fpga]->globalPhiME( lclPhi.phi_local, (*mpcIt).getKeyWG(), id.triggerCscId() );
1876     gbletadat gblEta = srLUTs_[endcap][sector][fpga]->globalEtaME(lclPhi.phi_bend_local, lclPhi.phi_local,(*mpcIt).getKeyWG(), id.triggerCscId() );
1877    
1878     UInt_t mpcphi = gblPhi.global_phi;
1879     UInt_t mpceta = gblEta.global_eta;
1880     double geta = theTriggerScales->getRegionalEtaScale(2)->getCenter(mpceta); //Type 2 is CSC
1881     double radphi = ((mpcphi)/4096.)*(62./180.)*M_PI; // cscphi in rad
1882    
1883     double gphi = radphi + sector*M_PI/3.+ (14*M_PI/180.);//0.24434609;// Global Phi with respect to 0 degrees.
1884     if(sector == 5){
1885     if(radphi <=45*(M_PI/180.)) gphi = radphi + 315*M_PI/180.;
1886     else gphi = radphi - 45*M_PI/180.;
1887     }
1888     if(TrkPhi < 0)TrkPhi = TrkPhi + 2*M_PI;
1889     if(gphi < 0)gphi = gphi + 2*M_PI;
1890     Float_t DeltaAngle = sqrt(pow((TrkEta-geta),2) + pow((TrkPhi-gphi),2));
1891    
1892     Int_t m_strip = (*mpcIt).getStrip(); // halfstrip that goes from 0 to 31
1893     if (me11a)m_strip = (m_strip-1)%32+1;
1894     Float_t m_keyWG = (*mpcIt).getKeyWG(); //
1895     Float_t m_delHStrp = c1 - m_strip;
1896     Float_t m_delWkey = w1 - m_keyWG;
1897    
1898     if (me11a){ // the ganging of ME11a causes wraparound effects at the boundaries for delta strip
1899     if (m_delHStrp > 16) m_delHStrp -= 32;
1900     if (m_delHStrp < -16)m_delHStrp += 32;
1901     }
1902    
1903     Float_t phiDiff = TrkPhi-gphi;
1904     if( fabs(phiDiff) < fabs(diffTrkPhi[0]) ){
1905     xMatch[0] = true;
1906     mDAngle[0] = DeltaAngle;
1907     diffTrkEta[0] = TrkEta-geta;
1908     diffTrkPhi[0] = phiDiff;
1909     delHStrp[0] = m_delHStrp;
1910     delWkey[0] = m_delWkey;
1911     mpcItOut = mpcIt;
1912     } // for the matching if statement...
1913    
1914     if( (fabs(m_delHStrp) < fabs(delHStrp[1])) && (fabs(m_delWkey) < fabs(delWkey[1])) ){ // match strips at <=10 and wirekeys at <=5
1915     xMatch[1] = true;
1916     mDAngle[1] = DeltaAngle;
1917     diffTrkEta[1] = TrkEta-geta;
1918     diffTrkPhi[1] = TrkPhi-gphi;
1919     delHStrp[1] = m_delHStrp;
1920     delWkey[1] = m_delWkey;
1921     mpcHsWkOut = mpcIt;
1922     } // for the matching if statement...
1923    
1924     #ifdef m_debug
1925     std::cout << "MPC E: " << id.endcap() << " R:" << id.ring() << " S: " << id.station() << " C: " << id.chamber()
1926     << std::endl;
1927     #endif
1928     }
1929     }// end iteration over lcts_mpc_data
1930     return (xMatch[0] || xMatch[1]);
1931     }
1932 zhangjin 1.5 */
1933 zhangjin 1.1 void TPTrackMuonSys::chamberCandidates(Int_t station, Float_t feta, Float_t phi, std::vector <int> &coupleOfChambers){
1934     // yeah, hardcoded again...
1935     coupleOfChambers.clear();
1936    
1937     Int_t ring = ringCandidate(station, feta, phi);
1938     if(ring != -9999){
1939     Float_t phi_zero = 0.;// check! the phi at the "edge" of Ch 1
1940     Float_t phi_const = 2.*M_PI/36.;
1941     Int_t first_chamber = 1, last_chamber = 36;
1942     if(1 != station && 1==ring){ // 18 chambers in the ring
1943     phi_const*=2;
1944     last_chamber /= 2;
1945     }
1946     if(phi < 0.) phi += 2*M_PI;
1947    
1948     Float_t chamber_float = (phi - phi_zero)/phi_const;
1949     Int_t chamber_int = int(chamber_float);
1950     if (chamber_float - Float_t(chamber_int) -0.5 <0.){
1951    
1952     if(0!=chamber_int ) coupleOfChambers.push_back(chamber_int);
1953     else coupleOfChambers.push_back(last_chamber);
1954     coupleOfChambers.push_back(chamber_int+1);
1955    
1956     }else{
1957     coupleOfChambers.push_back(chamber_int+1);
1958     if(last_chamber!=chamber_int+1) coupleOfChambers.push_back(chamber_int+2);
1959     else coupleOfChambers.push_back(first_chamber);
1960     }
1961     }
1962     }
1963    
1964    
1965     Int_t TPTrackMuonSys::ringCandidate(Int_t station, Float_t feta, Float_t phi){
1966     switch (station){
1967     case 1:
1968     if(fabs(feta)>=0.85 && fabs(feta)<1.18){//ME13
1969 zhangjin 1.5 return 3;
1970 zhangjin 1.1 }
1971     if(fabs(feta)>=1.18 && fabs(feta)<=1.5){//ME12 if(fabs(feta)>1.18 && fabs(feta)<1.7){//ME12
1972 zhangjin 1.5 return 2;
1973 zhangjin 1.1 }
1974 zhangjin 1.4 if(fabs(feta)>1.5 && fabs(feta)<2.1){//ME11
1975 zhangjin 1.5 return 1;
1976 zhangjin 1.4 }
1977 zhangjin 1.5 if(fabs(feta)>=2.1 && fabs(feta)<2.45){//ME11
1978     return 4;
1979 zhangjin 1.1 }
1980     break;
1981     case 2:
1982     if(fabs(feta)>0.95 && fabs(feta)<1.6){//ME22
1983 zhangjin 1.5 return 2;
1984 zhangjin 1.1 }
1985 zhangjin 1.5 if(fabs(feta)>1.55 && fabs(feta)<2.45){//ME21
1986     return 1;
1987 zhangjin 1.1 }
1988     break;
1989     case 3:
1990     if(fabs(feta)>1.08 && fabs(feta)<1.72){//ME32
1991 zhangjin 1.5 return 2;
1992 zhangjin 1.1 }
1993 zhangjin 1.5 if(fabs(feta)>1.69 && fabs(feta)<2.45){//ME31
1994     return 1;
1995 zhangjin 1.1 }
1996     break;
1997     case 4:
1998 zhangjin 1.5 if(fabs(feta)>1.78 && fabs(feta) <2.45){//ME41
1999     return 1;
2000 zhangjin 1.1 }
2001     if(fabs(feta)>1.15 && fabs(feta) <=1.78){//ME42
2002 zhangjin 1.5 return 2;
2003 zhangjin 1.1 }
2004     break;
2005     default:
2006     LogError("")<<"Invalid station: "<<station<<endl;
2007     break;
2008     }
2009 zhangjin 1.5 return -9999;
2010 zhangjin 1.1 }
2011    
2012     Short_t TPTrackMuonSys::thisChamberCandidate(Short_t station, Short_t ring, Float_t phi){
2013 zhangjin 1.4 //search for chamber candidate based on CMS IN-2007/024
2014     //10 deg chambers are ME1,ME22,ME32,ME42 chambers; 20 deg chambers are ME21,31,41 chambers
2015 zhangjin 1.5 //Chambers one always starts from approx -5 deg.
2016 zhangjin 1.4 const Short_t nVal = (station>1 && ring == 1)?18:36;
2017     const Float_t ChamberSpan=2*M_PI/nVal;
2018 zhangjin 1.5 Float_t dphi = phi + M_PI/36;
2019     while (dphi >= 2*M_PI) dphi -= 2*M_PI;
2020 zhangjin 1.4 while (dphi < 0) dphi += 2*M_PI;
2021 zhangjin 1.5 Short_t ChCand=floor(dphi/ChamberSpan)+1;
2022     return ChCand>nVal?nVal:ChCand;
2023 zhangjin 1.1 }
2024    
2025     ///////////////////////
2026     // to get the track position info at a particular rho
2027     TrajectoryStateOnSurface TPTrackMuonSys::cylExtrapTrkSam(reco::TrackRef track, double rho)
2028     {
2029     Cylinder::PositionType pos(0, 0, 0);
2030     Cylinder::RotationType rot;
2031     Cylinder::CylinderPointer myCylinder = Cylinder::build(pos, rot, rho);
2032     try{
2033     FreeTrajectoryState recoStart = freeTrajStateMuon(track);
2034     TrajectoryStateOnSurface recoProp = propagatorAlong->propagate(recoStart, *myCylinder);
2035     if (!recoProp.isValid()) {
2036     recoProp = propagatorOpposite->propagate(recoStart, *myCylinder);
2037     }
2038     return recoProp;
2039     }
2040     catch(cms::Exception){
2041     edm::LogError("")<<"invalid track extrapolation to cylinder"<<endl;
2042     TrajectoryStateOnSurface recoProp;
2043     return recoProp;
2044     }
2045     }
2046    
2047     // to get track position at a particular (xy) plane given its z
2048     TrajectoryStateOnSurface TPTrackMuonSys::surfExtrapTrkSam(reco::TrackRef track, double z)
2049     {
2050     Plane::PositionType pos(0, 0, z);
2051     Plane::RotationType rot;
2052     Plane::PlanePointer myPlane = Plane::build(pos, rot);
2053     try{
2054     FreeTrajectoryState recoStart = freeTrajStateMuon(track);
2055     TrajectoryStateOnSurface recoProp = propagatorAlong->propagate(recoStart, *myPlane);
2056     if (!recoProp.isValid()) {
2057     recoProp = propagatorOpposite->propagate(recoStart, *myPlane);
2058     }
2059     return recoProp;
2060     }
2061     catch(cms::Exception){
2062     edm::LogError("")<<"invalid track extrapolation to plane"<<endl;
2063     TrajectoryStateOnSurface recoProp;
2064     return recoProp;
2065     }
2066     }
2067    
2068     FreeTrajectoryState TPTrackMuonSys::freeTrajStateMuon(reco::TrackRef track)
2069     {
2070     GlobalPoint innerPoint(track->innerPosition().x(), track->innerPosition().y(), track->innerPosition().z());
2071     GlobalVector innerVec (track->innerMomentum().x(), track->innerMomentum().y(), track->innerMomentum().z());
2072    
2073     GlobalTrajectoryParameters gtPars(innerPoint, innerVec, track->charge(), &*theBField);
2074    
2075     //FreeTrajectoryState recoStart(innerPoint, innerVec, track->charge(), &*theBField);
2076     //return recoStart;
2077    
2078     AlgebraicSymMatrix66 cov;
2079     cov *= 1e-20;
2080    
2081     CartesianTrajectoryError tCov(cov);
2082    
2083     return (cov.kRows == 6 ? FreeTrajectoryState(gtPars, tCov) : FreeTrajectoryState(gtPars)) ;
2084     }
2085    
2086    
2087     Bool_t TPTrackMuonSys::GetDecayChains(TrackingParticleRef tpr, HepMC::GenEvent *HepGenEvent, ULong64_t &truth_type, Int_t & truth_thesamewith, vector<vector< vector<Int_t> > > & ExistingSimChains) {
2088     Bool_t IsPileup=false;
2089     truth_thesamewith=-1;
2090     vector<TheTrackType> types;
2091     for (vector<SimTrack>::const_iterator g4Track_iter = tpr->g4Track_begin(); g4Track_iter != tpr->g4Track_end(); ++g4Track_iter ) {
2092     //g4Track loop begin
2093     DChain.clear();SimChains.clear();
2094     const SimTrack *thisTrk=&(*g4Track_iter);
2095     SimTrackDaughtersTree( thisTrk,tpr );
2096     Bool_t ChainEnd; TrackingParticleRef tpr_tmp=tpr;
2097     do {
2098     ChainEnd=true;
2099     if ( !thisTrk->noVertex() ) {
2100     TrackingVertexRef tvr=tpr_tmp->parentVertex();
2101     for ( TrackingParticleRefVector::iterator parenttp=tvr->sourceTracks_begin();parenttp!=tvr->sourceTracks_end();parenttp++ ) {
2102     for (vector<SimTrack>::const_iterator g4Trk_iter = (*parenttp)->g4Track_begin() ; g4Trk_iter != (*parenttp)->g4Track_end(); ++g4Trk_iter )
2103     if ( SVC[thisTrk->vertIndex()].parentIndex()==Int_t(g4Trk_iter->trackId()) && g4Trk_iter->eventId().rawId()==thisTrk->eventId().rawId()) {
2104     thisTrk=&(*g4Trk_iter);tpr_tmp=*parenttp;
2105     vector<const SimTrack *>::iterator SavedSimTrk_iter=find(SavedSimTrk.begin(),SavedSimTrk.end(),thisTrk);
2106     if (SavedSimTrk_iter==SavedSimTrk.end()) {
2107     DChain.push_back( MCParticlesList.size() );
2108     SavedSimTrk.push_back(thisTrk);
2109     MCParticlesList.push_back( MCParticleInfo_Creator(thisTrk,tpr_tmp) );
2110     }
2111     else DChain.push_back( FindSimTrackInMCParticlesList(SavedSimTrk_iter-SavedSimTrk.begin()));
2112     ChainEnd=false;
2113     break;
2114     }
2115     if (!ChainEnd) break;
2116     }
2117     }
2118     }while (!ChainEnd);
2119     for (vector< vector<Int_t> >::iterator SimChains_iter = SimChains.begin(); SimChains_iter != SimChains.end(); ++SimChains_iter )
2120     SimChains_iter->insert(SimChains_iter->begin(),DChain.rbegin(),DChain.rend());
2121     DChain.clear();
2122    
2123     //HepMC Particles
2124     HepMCChains.clear();
2125     if (!thisTrk->noGenpart() ) {
2126     HepMC::GenParticle *genPar=HepGenEvent->barcode_to_particle(thisTrk->genpartIndex());
2127     if (genPar!=NULL) {
2128     vector<const SimTrack *>::iterator SavedSimTrk_iter=find(SavedSimTrk.begin(),SavedSimTrk.end(),thisTrk);
2129     if (SavedSimTrk_iter!=SavedSimTrk.end()) MCParticlesList[FindSimTrackInMCParticlesList(SavedSimTrk_iter-SavedSimTrk.begin())].IsParticleFromGenerator=true;
2130     else LogError("CodeWrong")<<"Cannot find the simulated track in saved sim tracks.";
2131     HepMCParentTree( genPar );
2132     }
2133     else LogWarning("RefNull")<<"Either SimTrack::genpartIndex() or HepMC::GenParticle::barcode is wrong. Pilup track?";
2134     }
2135    
2136     //merge the HepMC and SimTrack Decay Chains
2137     for (vector< vector<Int_t> >::iterator SimChains_iter = SimChains.begin(); SimChains_iter != SimChains.end(); ++SimChains_iter )
2138     if ( !HepMCChains.empty() )
2139     for (vector< vector<Int_t> >::iterator HepMCChains_iter = HepMCChains.begin(); HepMCChains_iter != HepMCChains.end(); ++HepMCChains_iter ) {
2140     vector<Int_t> thisChain(HepMCChains_iter->rbegin(),HepMCChains_iter->rend());
2141     thisChain.insert(thisChain.end(),SimChains_iter->begin(),SimChains_iter->end());
2142     IsPileup=SaveAndClassify(thisChain,types, truth_thesamewith, ExistingSimChains);
2143     }
2144     else IsPileup=SaveAndClassify( *SimChains_iter,types, truth_thesamewith, ExistingSimChains );
2145     }//g4Track loop end
2146     for (vector <TheTrackType>::iterator type_iter=types.begin();type_iter!=types.end();type_iter++)
2147     truth_type=truth_type*100+Long64_t(*type_iter);
2148     return IsPileup;
2149     }
2150    
2151     void TPTrackMuonSys::SimTrackDaughtersTree(const SimTrack * thisTrk, TrackingParticleRef tpr)
2152     {
2153     // Find MC Truth Segment - the offical one use chi2 to match simtrk (MuonIdTruthInfo.cc) and it won't know the decay in flight segment truth
2154     // The particle type of the hit may differ from the particle type of the SimTrack with id trackId().
2155     // This happends if the hit was created by a secondary track(e.g. a delta ray) originating from the trackId() and not existing as aseparate SimTrack.
2156     // ( particle type match notice is from haiyun.teng@cern.ch )
2157     Bool_t ChainEnd=true;
2158     //To avoid duplicate particle saving
2159     vector<const SimTrack *>::iterator SavedSimTrk_iter=find(SavedSimTrk.begin(),SavedSimTrk.end(),thisTrk);
2160     if (SavedSimTrk_iter==SavedSimTrk.end()) {
2161     DChain.push_back( MCParticlesList.size() );
2162     SavedSimTrk.push_back(thisTrk);
2163     MCParticlesList.push_back( MCParticleInfo_Creator(thisTrk,tpr) );
2164     }
2165     else DChain.push_back( FindSimTrackInMCParticlesList(SavedSimTrk_iter-SavedSimTrk.begin()) );
2166    
2167     for ( TrackingVertexRefVector::iterator tvr=tpr->decayVertices().begin();tvr!=tpr->decayVertices().end();tvr++ )
2168     for ( TrackingParticleRefVector::iterator daughtertp=(*tvr)->daughterTracks_begin();daughtertp!=(*tvr)->daughterTracks_end();daughtertp++ )
2169     for (vector<SimTrack>::const_iterator g4Trk_iter = (*daughtertp)->g4Track_begin() ; g4Trk_iter != (*daughtertp)->g4Track_end(); ++g4Trk_iter )
2170     if ( SVC[g4Trk_iter->vertIndex()].parentIndex()==Int_t(thisTrk->trackId()) && g4Trk_iter->eventId().rawId()==thisTrk->eventId().rawId()) {
2171     ChainEnd=false;
2172     SimTrackDaughtersTree( &(*g4Trk_iter), *daughtertp );
2173     }
2174     if (ChainEnd) SimChains.push_back(DChain);
2175     DChain.pop_back();
2176     }
2177    
2178     void TPTrackMuonSys::HepMCParentTree(HepMC::GenParticle *genPar) {
2179     HepMC::GenVertex *thisVtx = genPar->production_vertex();
2180     Bool_t ChainEnd=true;
2181     if (thisVtx) {
2182     for (HepMC::GenVertex::particles_in_const_iterator pgenD = thisVtx->particles_in_const_begin(); pgenD != thisVtx->particles_in_const_end(); ++pgenD)
2183     if ((*pgenD)->pdg_id()!=92) {//Pythia special code for string, we only care about the particles after hadronization
2184     ChainEnd=false;
2185     vector<HepMC::GenParticle *>::iterator SavedHepPar_iter=find(SavedHepPar.begin(),SavedHepPar.end(),*pgenD);
2186     if (SavedHepPar_iter==SavedHepPar.end())
2187     {
2188     DChain.push_back(MCParticlesList.size());
2189     SavedHepPar.push_back(*pgenD);
2190     MCParticlesList.push_back( MCParticleInfo_Creator( (*pgenD) ) );
2191     }
2192     else DChain.push_back(FindHepMCInMCParticlesList(SavedHepPar_iter-SavedHepPar.begin()));
2193     HepMCParentTree(*pgenD);
2194     DChain.pop_back();
2195     }
2196     }
2197     if (ChainEnd) HepMCChains.push_back(DChain);
2198     }
2199    
2200     Bool_t TPTrackMuonSys::SaveAndClassify(vector<Int_t> &Chain, vector<TheTrackType> &types, Int_t &truth_thesamewith, vector< vector< vector<Int_t> > > &ExistingSimChains) {
2201     //Find out if another track is just a decay product or mother particle of this track
2202     truth_thesamewith=-1;
2203     Bool_t truth_isPileup=false;
2204     for ( vector< vector< vector<Int_t> > >::const_iterator atrack=ExistingSimChains.begin(); atrack!=ExistingSimChains.end(); atrack++ ) {
2205     for ( vector< vector<Int_t> >::const_iterator adecaychain=atrack->begin(); adecaychain!=atrack->end(); adecaychain++ )
2206     if ( IstheSameDChain(Chain,*adecaychain) ) {
2207     truth_thesamewith=atrack-ExistingSimChains.begin();
2208     break;
2209     }
2210     if ( truth_thesamewith>-1 ) break;
2211     }
2212    
2213     //Save
2214     ExistingSimChains.back().push_back(Chain);
2215    
2216     //Classification
2217     TheTrackType type=Classify(Chain);
2218     if ( !MCParticlesList[Chain[0]].IsParticleFromGenerator ) truth_isPileup=true;
2219     #ifdef jz_debug
2220     // if ( Int_t(type)<2||Int_t(type)>100|| truth_isPileup ) {
2221     cerr<<"======================================================="<<endl;
2222     for (vector<Int_t>::reverse_iterator iter = Chain.rbegin(); iter != Chain.rend(); iter++)
2223     cerr<<"("<<MCParticlesList[*iter].pdgId<<","<<MCParticlesList[*iter].DoesParticleHaveMuonHit<<") <--|";
2224     cerr<<endl;
2225     cerr<<"MuTagpdgID:"<<MuTagtracktruth_id<<"; pdgID:"<<tracktruth_id;
2226     cerr<<"; type is "<<Int_t(type)<<"; pileup: "<<Int_t(truth_isPileup)<<endl
2227     <<"======================================================="<<endl;
2228     // }
2229     #endif
2230     if ( types.empty() ) types.push_back(type);
2231     else if (type!=Others) {
2232     if ( find(types.begin(),types.end(),type)==types.end() ) {
2233     vector<TheTrackType>::iterator DeterminedAsOthers=find(types.begin(),types.end(),Others);
2234     if ( DeterminedAsOthers!=types.end() ) *DeterminedAsOthers=type;
2235     else {
2236     vector<TheTrackType>::iterator DeterminedAsNoMuSysHit=find(types.begin(),types.end(),Others);
2237     if ( DeterminedAsNoMuSysHit!=types.end() ) *DeterminedAsOthers=type;
2238     else types.push_back(type);
2239     }
2240     }
2241     }
2242     return truth_isPileup;
2243     }
2244    
2245     inline TPTrackMuonSys::ParticleType TPTrackMuonSys::ParticleCata(Int_t pid)
2246     {
2247     pid=pid>0?pid:pid*-1;
2248     if (pid==13) return Muon;
2249     if (pid==443) return JPsi;
2250     if (pid==23) return Z;
2251     if (pid==24) return W;
2252     if ((pid>110&&pid<900)||(pid>10000))
2253     {
2254     pid=pid%1000;
2255     if (pid<400) return LightMeson;
2256     if (pid>400&&pid<440) return CharmedMeson;
2257     if (pid>440&&pid<500) return ccbarMeson;
2258     if (pid>500&&pid<550) return BottomMeson;
2259     if (pid>550&&pid<600) return bbarMeson;
2260     }
2261     if (pid>1111&&pid<3350&&(pid%100)/10>0) return LightBaryon;
2262     if (pid>4111&&pid<4450&&(pid%100)/10>0) return CharmedBaryon;
2263     if (pid>5111&&pid<5560&&(pid%100)/10>0) return BottomBaryon;
2264     if (pid>1000&&pid<6000&&(pid%100)/10==0) return DiQuarks;
2265     if (pid>10&&pid<19) return Lepton;
2266     return Other;
2267     }
2268    
2269     TPTrackMuonSys::TheTrackType TPTrackMuonSys::Classify(vector<Int_t> &Chain) {
2270     Int_t MuPos=-1;
2271     for (vector<Int_t>::reverse_iterator iter = Chain.rbegin(); iter != Chain.rend(); iter++) {
2272     ParticleType ParType=ParticleCata(MCParticlesList[*iter].pdgId);
2273     if (ParType==Muon&&MuPos<0) {//only care of the last muon
2274     MuPos=*iter;
2275     if ( !MCParticlesList[MuPos].DoesParticleHaveMuonHit ) return NoMuSysHit;
2276     continue;
2277     }
2278     if (MuPos>=0&&(ParType==W||ParType==Z)) {
2279     if ( MCParticlesList[MuPos].IsParticleFromGenerator ) {
2280     if (ParType==W) return PromptMuFromW;
2281     else return PromptMuFromZ;
2282     }
2283     else return NotPromptMufromWZ;//should never happen
2284     }
2285     if (MuPos>=0&&(ParType==JPsi)) return PromptMuFromJPsi;
2286     if (MuPos<0&&ParType>=LightMeson&&ParType<=DiQuarks) {
2287     if ( MCParticlesList[*iter].DoesParticleHaveMuonHit ) return PunchThrough;
2288     else return NoMuSysHit;
2289     }
2290     if (MuPos>=0&&ParType>=LightMeson&&ParType<=BottomBaryon) {
2291     if ( MCParticlesList[MuPos].IsParticleFromGenerator||MCParticlesList[MuPos].IsParticleBornInsideOfARegion ) {//inside pixel detector
2292     if (ParType==LightMeson) return PromptMuFromLightMeson;
2293     if (ParType>LightMeson&&ParType<LightBaryon) return PromptMuFromHeavyMeson;
2294     if (ParType==LightBaryon) return PromptMuFromLightBaryon;
2295     if (ParType>LightBaryon&&ParType<=BottomBaryon) return PromptMuFromHeavyBaryon;
2296     }
2297     if ( MCParticlesList[*iter].DoesParticleHaveMuonHit ) return PunchThroughAndDecayInFlight;
2298     else {
2299     if (ParType==LightMeson) return DecayInFlightFromLightMeson;
2300     if (ParType>LightMeson&&ParType<LightBaryon) return DecayInFlightFromHeavyMeson;
2301     if (ParType==LightBaryon) return DecayInFlightFromLightBaryon;
2302     if (ParType>LightBaryon&&ParType<=BottomBaryon) return DecayInFlightFromHeavyBaryon;
2303     }
2304     }
2305     }
2306     if (MuPos>=0) return PromptMuFromOthers;
2307     else return Others;
2308     }
2309    
2310     Bool_t TPTrackMuonSys::IstheSameDChain(const vector<Int_t> &Chain1,const vector<Int_t> &Chain2) {//whether two chains include each other
2311     Bool_t ChainIncluded=false;
2312     vector<Int_t>::const_iterator Chain1_Particle = Chain1.begin(),Chain2_Particle = Chain2.begin();
2313     for (; Chain2_Particle != Chain2.end()&&Chain1_Particle != Chain1.end(); Chain2_Particle++) {
2314     if (ChainIncluded&&*Chain1_Particle!=*Chain2_Particle) ChainIncluded=false;
2315     if (Chain1.front() == *Chain2_Particle) {
2316     ChainIncluded=true;
2317     Chain1_Particle = Chain1.begin();
2318     }
2319     if (ChainIncluded) Chain1_Particle++;
2320     }
2321     if (!ChainIncluded) {
2322     Chain2_Particle = Chain2.begin(); Chain1_Particle = Chain1.begin();
2323     for (; Chain2_Particle != Chain2.end()&&Chain1_Particle != Chain1.end(); Chain1_Particle++) {
2324     if (ChainIncluded&&*Chain1_Particle!=*Chain2_Particle) ChainIncluded=false;
2325     if (Chain2.front() == *Chain1_Particle) {
2326     Chain2_Particle = Chain2.begin();
2327     ChainIncluded=true;
2328     }
2329     if (ChainIncluded) Chain2_Particle++;
2330     }
2331     }
2332     return ChainIncluded;
2333     }
2334    
2335     TPTrackMuonSys::MCParticleInfo TPTrackMuonSys::MCParticleInfo_Creator( const SimTrack * thisTrk, TrackingParticleRef tpr ) {
2336     MCParticleInfo TBA;
2337     TBA.IsThisFromSimTrk=true;
2338     TBA.IsParticleFromGenerator=false;TBA.DoesParticleHaveMuonHit=false;
2339     TBA.IsParticleBornInsideOfARegion=false;
2340     TBA.IsPileup=false;
2341     TBA.pdgId=thisTrk->type();
2342     for ( vector<PSimHit>::const_iterator g4Hit_iter=tpr->pSimHit_begin();g4Hit_iter!=tpr->pSimHit_end();g4Hit_iter++ )
2343     if ( g4Hit_iter->trackId()==thisTrk->trackId() && g4Hit_iter->eventId().rawId()==thisTrk->eventId().rawId() && g4Hit_iter->particleType() == thisTrk->type() ) {
2344     DetId DetectorId( g4Hit_iter->detUnitId() );
2345     if ( DetectorId.det() == DetId::Muon ) {
2346     TBA.DoesParticleHaveMuonHit=true;
2347     break;
2348     }
2349     }
2350     if (!thisTrk->noVertex()) {
2351     SimVertex thisVtx=SVC[thisTrk->vertIndex()];
2352     //if ( (thisVtx.position().Perp2()<161604.&&deltaZ<568.)||(deltaRPhi2>82024.96&&deltaRPhi2<161604.&&deltaZ<666.)) //inside HCAL
2353     if ( thisVtx.position().Perp2()<100&&
2354     fabs(thisVtx.position().z())<30 ) //inside pixel detector
2355     TBA.IsParticleBornInsideOfARegion=true;
2356     }
2357     else TBA.IsPileup=true;
2358     return TBA;
2359     }
2360    
2361 zhangjin 1.5 //deadzone center is according to http://cmssdt.cern.ch/SDT/lxr/source/RecoLocalMuon/CSCEfficiency/src/CSCEfficiency.cc#605
2362 zhangjin 1.1 //wire spacing is according to CSCTDR
2363     Float_t TPTrackMuonSys::YDistToHVDeadZone(Float_t yLocal, Int_t StationAndRing){
2364 zhangjin 1.5 //the ME11 wires are not parallel to x, but no gap
2365     //chamber edges are not included.
2366     const Float_t deadZoneCenterME1_2[2] = {-32.88305,32.867423};
2367     const Float_t deadZoneCenterME1_3[2] = {-22.7401,27.86665};
2368     const Float_t deadZoneCenterME2_1[2] = {-27.47,33.67};
2369     const Float_t deadZoneCenterME3_1[2] = {-36.21,23.68};
2370     const Float_t deadZoneCenterME4_1[2] = {-26.14,23.85};
2371     const Float_t deadZoneCenterME234_2[4] = {-81.8744,-21.18165,39.51105,100.2939};
2372 zhangjin 1.1 const Float_t *deadZoneCenter;
2373 zhangjin 1.5 Float_t deadZoneHeightHalf=0.32*7/2;// wire spacing * (wires missing + 1)/2
2374     Float_t minY=999999.;
2375     Byte_t nGaps=2;
2376 zhangjin 1.1 switch (abs(StationAndRing)) {
2377     case 11:
2378     case 14:
2379 zhangjin 1.5 return 162;//the height of ME11
2380 zhangjin 1.1 break;
2381     case 12:
2382     deadZoneCenter=deadZoneCenterME1_2;
2383     break;
2384     case 13:
2385     deadZoneCenter=deadZoneCenterME1_3;
2386     break;
2387     case 21:
2388     deadZoneCenter=deadZoneCenterME2_1;
2389     break;
2390     case 31:
2391     deadZoneCenter=deadZoneCenterME3_1;
2392     break;
2393     case 41:
2394     deadZoneCenter=deadZoneCenterME4_1;
2395     break;
2396     default:
2397     deadZoneCenter=deadZoneCenterME234_2;
2398 zhangjin 1.5 nGaps=4;
2399 zhangjin 1.1 }
2400     for ( Byte_t iGap=0;iGap<nGaps;iGap++ ) {
2401     Float_t newMinY=yLocal<deadZoneCenter[iGap]?deadZoneCenter[iGap]-deadZoneHeightHalf-yLocal:yLocal-(deadZoneCenter[iGap]+deadZoneHeightHalf);
2402     if ( newMinY<minY ) minY=newMinY;
2403     }
2404     return minY;
2405     }
2406    
2407     //define this as a plug-in
2408     DEFINE_FWK_MODULE(TPTrackMuonSys);
2409    
2410