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root/cvsroot/UserCode/MitPhysics/Utils/src/JetTools.cc
Revision: 1.2
Committed: Fri Jul 23 20:24:22 2010 UTC (14 years, 9 months ago) by ceballos
Content type: text/plain
Branch: MAIN
Changes since 1.1: +40 -3 lines
Log Message:
small update

File Contents

# User Rev Content
1 ceballos 1.1 #include "MitPhysics/Utils/interface/JetTools.h"
2    
3     ClassImp(mithep::JetTools)
4    
5     using namespace mithep;
6    
7     JetTools::JetTools()
8     {
9     // Constructor
10     }
11    
12     JetTools::~JetTools()
13     {
14     // Destructor.
15     }
16    
17     //Remember to remove the signal from particles before inputting into the function
18 ceballos 1.2 Double_t JetTools::NJettiness(const ParticleOArr *particles, const JetOArr *jets, bool UseQ, Double_t Y){
19     if(particles->GetEntries() <= 0) return 0.0;
20    
21 ceballos 1.1 Double_t fval = 0.0;
22     Double_t fvalpart;
23    
24     for(int i=0;i<int(particles->GetEntries());i++){
25     fvalpart = (particles->At(i)->Pt()) * TMath::Exp(-TMath::Abs(particles->At(i)->Eta()-Y));
26    
27     for(int j=0;j<int(jets->GetEntries());j++){
28     fvalpart = TMath::Min(fvalpart,(jets->At(j)->Pt()) *
29     (2 * TMath::CosH(TMath::Abs(jets->At(j)->Eta()-particles->At(i)->Eta()))
30     - 2 * TMath::Cos(MathUtils::DeltaPhi(jets->At(j)->Phi(),particles->At(i)->Phi()))));
31     }
32     fval = fval + fvalpart;
33     }
34 ceballos 1.2
35     if(UseQ == kTRUE) fval = fval / particles->At(0)->Pt();
36    
37 ceballos 1.1 return fval;
38     }
39    
40 ceballos 1.2 Double_t JetTools::NJettiness(const TrackOArr *tracks, const JetOArr *jets, bool UseQ, Double_t Y){
41     if(tracks->GetEntries() <= 0) return 0.0;
42    
43 ceballos 1.1 Double_t fval = 0.0;
44     Double_t fvalpart;
45    
46     for(int i=0;i<int(tracks->GetEntries());i++){
47     fvalpart = (tracks->At(i)->Pt()) * TMath::Exp(-TMath::Abs(tracks->At(i)->Eta()-Y));
48    
49     for(int j=0;j<int(jets->GetEntries());j++){
50     fvalpart = TMath::Min(fvalpart,(jets->At(j)->Pt()) *
51     (2 * TMath::CosH(TMath::Abs(jets->At(j)->Eta()-tracks->At(i)->Eta()))
52     - 2 * TMath::Cos(MathUtils::DeltaPhi(jets->At(j)->Phi(),tracks->At(i)->Phi()))));
53     }
54     fval = fval + fvalpart;
55     }
56 ceballos 1.2
57     if(UseQ == kTRUE) fval = fval / tracks->At(0)->Pt();
58    
59 ceballos 1.1 return fval;
60     }
61    
62 ceballos 1.2 Double_t JetTools::NJettiness(const JetOArr *jetsS, const JetOArr *jets, bool UseQ, Double_t Y){
63     if(jetsS->GetEntries() <= 0) return 0.0;
64    
65 ceballos 1.1 Double_t fval = 0.0;
66     Double_t fvalpart;
67    
68     for(int i=0;i<int(jetsS->GetEntries());i++){
69     fvalpart = (jetsS->At(i)->Pt()) * TMath::Exp(-TMath::Abs(jetsS->At(i)->Eta()-Y));
70    
71     for(int j=0;j<int(jets->GetEntries());j++){
72     fvalpart = TMath::Min(fvalpart,(jets->At(j)->Pt()) *
73     (2 * TMath::CosH(TMath::Abs(jets->At(j)->Eta()-jetsS->At(i)->Eta()))
74     - 2 * TMath::Cos(MathUtils::DeltaPhi(jets->At(j)->Phi(),jetsS->At(i)->Phi()))));
75     }
76     fval = fval + fvalpart;
77     }
78 ceballos 1.2
79     if(UseQ == kTRUE) fval = fval / jetsS->At(0)->Pt();
80    
81     return fval;
82     }
83    
84     Double_t JetTools::NJettiness(const CaloTowerOArr *calos, const JetOArr *jets, bool UseQ, Double_t Y){
85     if(calos->GetEntries() <= 0) return 0.0;
86    
87     Double_t fval = 0.0;
88     Double_t fvalpart;
89    
90     for(int i=0;i<int(calos->GetEntries());i++){
91     fvalpart = (calos->At(i)->Pt()) * TMath::Exp(-TMath::Abs(calos->At(i)->Eta()-Y));
92    
93     for(int j=0;j<int(jets->GetEntries());j++){
94     fvalpart = TMath::Min(fvalpart,(jets->At(j)->Pt()) *
95     (2 * TMath::CosH(TMath::Abs(jets->At(j)->Eta()-calos->At(i)->Eta()))
96     - 2 * TMath::Cos(MathUtils::DeltaPhi(jets->At(j)->Phi(),calos->At(i)->Phi()))));
97     }
98     fval = fval + fvalpart;
99     }
100    
101     if(UseQ == kTRUE) fval = fval / calos->At(0)->Pt();
102    
103 ceballos 1.1 return fval;
104     }
105    
106     //M_r
107     Double_t JetTools::M_r(const ParticleOArr *particles){
108    
109     if(particles->GetEntries() < 2) return -999.;
110    
111     Double_t E0 = particles->At(0)->E();
112     Double_t E1 = particles->At(1)->E();
113     Double_t Pz0 = particles->At(0)->Pz();
114     Double_t Pz1 = particles->At(1)->Pz();
115    
116     Double_t den = TMath::Power(Pz0-Pz1, 2) - TMath::Power(E0-E1,2);
117     if(den <= 0) return -100.;
118    
119     return 2.0*TMath::Sqrt(TMath::Power(E0*Pz1 - E1*Pz0, 2)/den);
120     }
121    
122     //Beta_r
123     Double_t JetTools::Beta_r(const ParticleOArr *particles){
124    
125     if(particles->GetEntries() < 2) return -999.;
126    
127     Double_t E0 = particles->At(0)->E();
128     Double_t E1 = particles->At(1)->E();
129     Double_t Pz0 = particles->At(0)->Pz();
130     Double_t Pz1 = particles->At(1)->Pz();
131    
132     return (E0-E1)/(Pz0-Pz1);
133     }
134    
135     //M_r_t
136     Double_t JetTools::M_r_t(const ParticleOArr *particles, const Met *met){
137    
138     if(particles->GetEntries() < 2) return -999.;
139    
140     Double_t Pt0 = particles->At(0)->Pt();
141     Double_t Pt1 = particles->At(1)->Pt();
142     Double_t etmiss = met->Pt();
143    
144     Double_t Px0 = particles->At(0)->Px();
145     Double_t Px1 = particles->At(1)->Px();
146     Double_t metx = met->Px();
147     Double_t Py0 = particles->At(0)->Py();
148     Double_t Py1 = particles->At(1)->Py();
149     Double_t mety = met->Py();
150    
151     return TMath::Sqrt(0.5*etmiss*(Pt0 + Pt1) - 0.5*(metx*(Px0 + Px1) + mety*(Py0 + Py1)));
152     }
153    
154     //Razor
155     Double_t JetTools::Razor(const ParticleOArr *particles, const Met *met){
156     if(particles->GetEntries() < 2) return -999.;
157    
158     Double_t mr = M_r(particles);
159     Double_t mrt = M_r_t(particles,met);
160    
161     if(mr != 0) return mrt/mr;
162    
163     return -999.;
164     }
165    
166     //Cosine Omega
167     Double_t JetTools::CosineOmega(const ParticleOArr *particles){
168     if(particles->GetEntries() < 2) return -999.;
169    
170     TLorentzVector v_L1(particles->At(0)->Px(),particles->At(0)->Py(),particles->At(0)->Pz(),particles->At(0)->E());
171     TLorentzVector v_L2(particles->At(1)->Px(),particles->At(1)->Py(),particles->At(1)->Pz(),particles->At(1)->E());
172    
173     Double_t beta = (v_L1.P()-v_L2.P())/(v_L1.Pz()-v_L2.Pz());
174    
175     TVector3 B;
176     B.SetXYZ(0.0,0.0,-1.0*beta);
177    
178     v_L1.Boost(B);
179     v_L2.Boost(B);
180    
181     Double_t cosomega = v_L1.Vect().Dot(v_L2.Vect())/(v_L1.P()*v_L2.P());
182    
183     return cosomega;
184     }
185    
186     //Transverse Higgs mass
187     Double_t JetTools::MtHiggs(const CompositeParticle *dilepton, const Met *met, int nsel){
188     double mtHiggs = -999.0;
189     double enell,enenn,enex,eney,mll,mnu;
190    
191     if (nsel == 0){ // Use of Mt mass and mnu == mll
192     enell = TMath::Sqrt(dilepton->Pt()*dilepton->Pt() + dilepton->Mt()*dilepton->Mt());
193     enenn = TMath::Sqrt(met->Pt() *met->Pt() + dilepton->Mt()*dilepton->Mt());
194     enex = dilepton->Px() + met->Px();
195     eney = dilepton->Py() + met->Py();
196     mll = dilepton->Mass();
197     mnu = mll;
198     }
199     else if(nsel == 1){ // Use of Mt mass and mnu == 0
200     enell = TMath::Sqrt(dilepton->Pt()*dilepton->Pt() + dilepton->Mt()*dilepton->Mt());
201     enenn = TMath::Sqrt(met->Pt() *met->Pt() + 0.0*0.0);
202     enex = dilepton->Px() + met->Px();
203     eney = dilepton->Py() + met->Py();
204     mll = dilepton->Mass();
205     mnu = 0.0;
206     }
207     else if(nsel == 2){ // Use of M mass and mnu == mll
208     enell = TMath::Sqrt(dilepton->Pt()*dilepton->Pt() + dilepton->Mass()*dilepton->Mass());
209     enenn = TMath::Sqrt(met->Pt() *met->Pt() + dilepton->Mass()*dilepton->Mass());
210     enex = dilepton->Px() + met->Px();
211     eney = dilepton->Py() + met->Py();
212     mll = dilepton->Mass();
213     mnu = mll;
214     }
215     else if(nsel == 3){ // Use of M mass and mnu == 0
216     enell = TMath::Sqrt(dilepton->Pt()*dilepton->Pt() + dilepton->Mass()*dilepton->Mass());
217     enenn = TMath::Sqrt(met->Pt() *met->Pt() + 0.0*0.0);
218     enex = dilepton->Px() + met->Px();
219     eney = dilepton->Py() + met->Py();
220     mll = dilepton->Mass();
221     mnu = 0.0;
222     }
223     else {
224     return -999.;
225     }
226    
227     mtHiggs = mll*mll + mnu*mnu + 2.0*(enell*enenn - enex*enex - eney*eney);
228     if(mtHiggs <= 0) mtHiggs = 0.0;
229     else mtHiggs = TMath::Sqrt(mtHiggs);
230    
231     return mtHiggs;
232     }