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source: git/classes/DelphesClasses.h@ de6d698

ImprovedOutputFile Timing dual_readout llp
Last change on this file since de6d698 was de6d698, checked in by Michele Selvaggi <michele.selvaggi@…>, 10 years ago

added Trimming, Pruning and SoftDrop in FastJetFinder

  • Property mode set to 100644
File size: 15.8 KB
Line 
1/*
2 * Delphes: a framework for fast simulation of a generic collider experiment
3 * Copyright (C) 2012-2014 Universite catholique de Louvain (UCL), Belgium
4 *
5 * This program is free software: you can redistribute it and/or modify
6 * it under the terms of the GNU General Public License as published by
7 * the Free Software Foundation, either version 3 of the License, or
8 * (at your option) any later version.
9 *
10 * This program is distributed in the hope that it will be useful,
11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13 * GNU General Public License for more details.
14 *
15 * You should have received a copy of the GNU General Public License
16 * along with this program. If not, see <http://www.gnu.org/licenses/>.
17 */
18
19#ifndef DelphesClasses_h
20#define DelphesClasses_h
21
22/**
23 *
24 * Definition of classes to be stored in the root tree.
25 * Function CompareXYZ sorts objects by the variable XYZ that MUST be
26 * present in the data members of the root tree class of the branch.
27 *
28 * \author P. Demin - UCL, Louvain-la-Neuve
29 *
30 */
31
32// Dependencies (#includes)
33
34#include "TRef.h"
35#include "TObject.h"
36#include "TRefArray.h"
37#include "TLorentzVector.h"
38
39#include "classes/SortableObject.h"
40
41class DelphesFactory;
42
43//---------------------------------------------------------------------------
44
45class Event: public TObject
46{
47public:
48
49 Long64_t Number; // event number
50
51 Float_t ReadTime;
52 Float_t ProcTime;
53
54 ClassDef(Event, 1)
55};
56
57//---------------------------------------------------------------------------
58
59class LHCOEvent: public Event
60{
61public:
62
63 Int_t Trigger; // trigger word
64
65 ClassDef(LHCOEvent, 1)
66};
67
68//---------------------------------------------------------------------------
69
70class LHEFEvent: public Event
71{
72public:
73
74 Int_t ProcessID; // subprocess code for the event | hepup.IDPRUP
75
76 Float_t Weight; // weight for the event | hepup.XWGTUP
77 Float_t ScalePDF; // scale in GeV used in the calculation of the PDFs in the event | hepup.SCALUP
78 Float_t AlphaQED; // value of the QED coupling used in the event | hepup.AQEDUP
79 Float_t AlphaQCD; // value of the QCD coupling used in the event | hepup.AQCDUP
80
81 ClassDef(LHEFEvent, 2)
82};
83
84//---------------------------------------------------------------------------
85
86class HepMCEvent: public Event
87{
88public:
89
90 Int_t ProcessID; // unique signal process id | signal_process_id()
91 Int_t MPI; // number of multi parton interactions | mpi ()
92
93 Float_t Weight; // weight for the event
94
95 Float_t Scale; // energy scale, see hep-ph/0109068 | event_scale()
96 Float_t AlphaQED; // QED coupling, see hep-ph/0109068 | alphaQED()
97 Float_t AlphaQCD; // QCD coupling, see hep-ph/0109068 | alphaQCD()
98
99 Int_t ID1; // flavour code of first parton | pdf_info()->id1()
100 Int_t ID2; // flavour code of second parton | pdf_info()->id2()
101
102 Float_t X1; // fraction of beam momentum carried by first parton ("beam side") | pdf_info()->x1()
103 Float_t X2; // fraction of beam momentum carried by second parton ("target side") | pdf_info()->x2()
104
105 Float_t ScalePDF; // Q-scale used in evaluation of PDF's (in GeV) | pdf_info()->scalePDF()
106
107 Float_t PDF1; // PDF (id1, x1, Q) | pdf_info()->pdf1()
108 Float_t PDF2; // PDF (id2, x2, Q) | pdf_info()->pdf2()
109
110 ClassDef(HepMCEvent, 2)
111};
112
113//---------------------------------------------------------------------------
114
115class GenParticle: public SortableObject
116{
117public:
118 Int_t PID; // particle HEP ID number | hepevt.idhep[number]
119
120 Int_t Status; // particle status | hepevt.isthep[number]
121 Int_t IsPU; // 0 or 1 for particles from pile-up interactions
122
123 Int_t M1; // particle 1st mother | hepevt.jmohep[number][0] - 1
124 Int_t M2; // particle 2nd mother | hepevt.jmohep[number][1] - 1
125
126 Int_t D1; // particle 1st daughter | hepevt.jdahep[number][0] - 1
127 Int_t D2; // particle last daughter | hepevt.jdahep[number][1] - 1
128
129 Int_t Charge; // particle charge
130
131 Float_t Mass; // particle mass
132
133 Float_t E; // particle energy | hepevt.phep[number][3]
134 Float_t Px; // particle momentum vector (x component) | hepevt.phep[number][0]
135 Float_t Py; // particle momentum vector (y component) | hepevt.phep[number][1]
136 Float_t Pz; // particle momentum vector (z component) | hepevt.phep[number][2]
137
138 Float_t PT; // particle transverse momentum
139 Float_t Eta; // particle pseudorapidity
140 Float_t Phi; // particle azimuthal angle
141
142 Float_t Rapidity; // particle rapidity
143
144 Float_t T; // particle vertex position (t component) | hepevt.vhep[number][3]
145 Float_t X; // particle vertex position (x component) | hepevt.vhep[number][0]
146 Float_t Y; // particle vertex position (y component) | hepevt.vhep[number][1]
147 Float_t Z; // particle vertex position (z component) | hepevt.vhep[number][2]
148
149 static CompBase *fgCompare; //!
150 const CompBase *GetCompare() const { return fgCompare; }
151
152 TLorentzVector P4();
153
154 ClassDef(GenParticle, 1)
155};
156
157//---------------------------------------------------------------------------
158
159class Vertex: public TObject
160{
161public:
162 Float_t T; // vertex position (t component)
163 Float_t X; // vertex position (x component)
164 Float_t Y; // vertex position (y component)
165 Float_t Z; // vertex position (z component)
166
167 ClassDef(Vertex, 1)
168};
169
170//---------------------------------------------------------------------------
171
172class MissingET: public TObject
173{
174public:
175 Float_t MET; // mising transverse energy
176 Float_t Eta; // mising energy pseudorapidity
177 Float_t Phi; // mising energy azimuthal angle
178
179 TLorentzVector P4();
180
181 ClassDef(MissingET, 1)
182};
183
184//---------------------------------------------------------------------------
185
186class ScalarHT: public TObject
187{
188public:
189 Float_t HT; // scalar sum of transverse momenta
190
191 ClassDef(ScalarHT, 1)
192};
193
194//---------------------------------------------------------------------------
195
196class Rho: public TObject
197{
198public:
199 Float_t Rho; // rho energy density
200 Float_t Edges[2]; // pseudorapidity range edges
201
202 ClassDef(Rho, 1)
203};
204
205//---------------------------------------------------------------------------
206
207class Weight: public TObject
208{
209public:
210 Float_t Weight; // weight for the event
211
212 ClassDef(Weight, 1)
213};
214
215//---------------------------------------------------------------------------
216
217class Photon: public SortableObject
218{
219public:
220
221 Float_t PT; // photon transverse momentum
222 Float_t Eta; // photon pseudorapidity
223 Float_t Phi; // photon azimuthal angle
224
225 Float_t E; // photon energy
226
227 Float_t T; //particle arrival time of flight
228
229 Float_t EhadOverEem; // ratio of the hadronic versus electromagnetic energy deposited in the calorimeter
230
231 TRefArray Particles; // references to generated particles
232
233 // Isolation variables
234
235 Float_t IsolationVar;
236 Float_t IsolationVarRhoCorr;
237 Float_t SumPtCharged;
238 Float_t SumPtNeutral;
239 Float_t SumPtChargedPU;
240 Float_t SumPt;
241
242 static CompBase *fgCompare; //!
243 const CompBase *GetCompare() const { return fgCompare; }
244
245 TLorentzVector P4();
246
247 ClassDef(Photon, 2)
248};
249
250//---------------------------------------------------------------------------
251
252class Electron: public SortableObject
253{
254public:
255
256 Float_t PT; // electron transverse momentum
257 Float_t Eta; // electron pseudorapidity
258 Float_t Phi; // electron azimuthal angle
259
260 Float_t T; //particle arrival time of flight
261
262 Int_t Charge; // electron charge
263
264 Float_t EhadOverEem; // ratio of the hadronic versus electromagnetic energy deposited in the calorimeter
265
266 TRef Particle; // reference to generated particle
267
268 // Isolation variables
269
270 Float_t IsolationVar;
271 Float_t IsolationVarRhoCorr;
272 Float_t SumPtCharged;
273 Float_t SumPtNeutral;
274 Float_t SumPtChargedPU;
275 Float_t SumPt;
276
277 static CompBase *fgCompare; //!
278 const CompBase *GetCompare() const { return fgCompare; }
279
280 TLorentzVector P4();
281
282 ClassDef(Electron, 2)
283};
284
285//---------------------------------------------------------------------------
286
287class Muon: public SortableObject
288{
289public:
290
291 Float_t PT; // muon transverse momentum
292 Float_t Eta; // muon pseudorapidity
293 Float_t Phi; // muon azimuthal angle
294
295 Float_t T; //particle arrival time of flight
296
297 Int_t Charge; // muon charge
298
299 TRef Particle; // reference to generated particle
300
301 // Isolation variables
302
303 Float_t IsolationVar;
304 Float_t IsolationVarRhoCorr;
305 Float_t SumPtCharged;
306 Float_t SumPtNeutral;
307 Float_t SumPtChargedPU;
308 Float_t SumPt;
309
310 static CompBase *fgCompare; //!
311 const CompBase *GetCompare() const { return fgCompare; }
312
313 TLorentzVector P4();
314
315 ClassDef(Muon, 2)
316};
317
318//---------------------------------------------------------------------------
319
320class Jet: public SortableObject
321{
322public:
323
324 Float_t PT; // jet transverse momentum
325 Float_t Eta; // jet pseudorapidity
326 Float_t Phi; // jet azimuthal angle
327
328 Float_t T; //particle arrival time of flight
329
330 Float_t Mass; // jet invariant mass
331
332 Float_t DeltaEta; // jet radius in pseudorapidity
333 Float_t DeltaPhi; // jet radius in azimuthal angle
334
335 UInt_t BTag; // 0 or 1 for a jet that has been tagged as containing a heavy quark
336 UInt_t TauTag; // 0 or 1 for a jet that has been tagged as a tau
337
338 Int_t Charge; // tau charge
339
340 Float_t EhadOverEem; // ratio of the hadronic versus electromagnetic energy deposited in the calorimeter
341
342 Int_t NCharged; // number of charged constituents
343 Int_t NNeutrals; // number of neutral constituents
344 Float_t Beta; // (sum pt of charged pile-up constituents)/(sum pt of charged constituents)
345 Float_t BetaStar; // (sum pt of charged constituents coming from hard interaction)/(sum pt of charged constituents)
346 Float_t MeanSqDeltaR; // average distance (squared) between constituent and jet weighted by pt (squared) of constituent
347 Float_t PTD; // average pt between constituent and jet weighted by pt of constituent
348 Float_t FracPt[5]; // (sum pt of constituents within a ring 0.1*i < DeltaR < 0.1*(i+1))/(sum pt of constituents)
349
350 Float_t Tau[5]; // N-subjettiness
351
352 TLorentzVector TrimmedP4[5]; //first entry (i = 0) is the total Trimmed Jet 4-momenta and from i = 1 to 4 are the trimmed subjets 4-momenta
353 TLorentzVector PrunedP4[5]; //first entry (i = 0) is the total Pruned Jet 4-momenta and from i = 1 to 4 are the pruned subjets 4-momenta
354 TLorentzVector SoftDroppedP4[5]; //first entry (i = 0) is the total SoftDropped Jet 4-momenta and from i = 1 to 4 are the pruned subjets 4-momenta
355
356 Int_t NSubJetsTrimmed; // number of subjets trimmed
357 Int_t NSubJetsPruned; // number of subjets pruned
358 Int_t NSubJetsSoftDropped; // number of subjets soft-dropped
359
360 TRefArray Constituents; // references to constituents
361 TRefArray Particles; // references to generated particles
362
363 static CompBase *fgCompare; //!
364 const CompBase *GetCompare() const { return fgCompare; }
365
366 TLorentzVector P4();
367 TLorentzVector Area;
368
369 ClassDef(Jet, 3)
370};
371
372//---------------------------------------------------------------------------
373
374class Track: public SortableObject
375{
376public:
377 Int_t PID; // HEP ID number
378
379 Int_t Charge; // track charge
380
381 Float_t PT; // track transverse momentum
382
383 Float_t Eta; // track pseudorapidity
384 Float_t Phi; // track azimuthal angle
385
386 Float_t EtaOuter; // track pseudorapidity at the tracker edge
387 Float_t PhiOuter; // track azimuthal angle at the tracker edge
388
389 Float_t X; // track vertex position (x component)
390 Float_t Y; // track vertex position (y component)
391 Float_t Z; // track vertex position (z component)
392 Float_t T; // track vertex position (z component)
393
394 Float_t XOuter; // track position (x component) at the tracker edge
395 Float_t YOuter; // track position (y component) at the tracker edge
396 Float_t ZOuter; // track position (z component) at the tracker edge
397 Float_t TOuter; // track position (z component) at the tracker edge
398
399 Float_t Dxy; // track signed transverse impact parameter
400 Float_t SDxy; // signed error on the track signed transverse impact parameter
401 Float_t Xd; // X coordinate of point of closest approach to vertex
402 Float_t Yd; // Y coordinate of point of closest approach to vertex
403 Float_t Zd; // Z coordinate of point of closest approach to vertex
404
405 TRef Particle; // reference to generated particle
406
407 static CompBase *fgCompare; //!
408 const CompBase *GetCompare() const { return fgCompare; }
409
410 TLorentzVector P4();
411
412 ClassDef(Track, 2)
413};
414
415//---------------------------------------------------------------------------
416
417class Tower: public SortableObject
418{
419public:
420 Float_t ET; // calorimeter tower transverse energy
421 Float_t Eta; // calorimeter tower pseudorapidity
422 Float_t Phi; // calorimeter tower azimuthal angle
423
424 Float_t E; // calorimeter tower energy
425
426 Float_t T; // ecal deposit time, averaged by sqrt(EM energy) over all particles, not smeared
427 Int_t Ntimes; // number of hits contributing to time measurement
428
429 Float_t Eem; // calorimeter tower electromagnetic energy
430 Float_t Ehad; // calorimeter tower hadronic energy
431
432 Float_t Edges[4]; // calorimeter tower edges
433
434 TRefArray Particles; // references to generated particles
435
436 static CompBase *fgCompare; //!
437 const CompBase *GetCompare() const { return fgCompare; }
438
439 TLorentzVector P4();
440
441 ClassDef(Tower, 1)
442};
443
444//---------------------------------------------------------------------------
445
446class HectorHit: public SortableObject
447{
448public:
449 Float_t E; // reconstructed energy [GeV]
450
451 Float_t Tx; // angle of the momentum in the horizontal (x,z) plane [urad]
452 Float_t Ty; // angle of the momentum in the verical (y,z) plane [urad]
453
454 Float_t T; // time of flight to the detector [s]
455
456 Float_t X; // horizontal distance to the beam [um]
457 Float_t Y; // vertical distance to the beam [um]
458 Float_t S; // distance to the interaction point [m]
459
460 TRef Particle; // reference to generated particle
461
462 static CompBase *fgCompare; //!
463 const CompBase *GetCompare() const { return fgCompare; }
464
465 ClassDef(HectorHit, 1)
466};
467
468//---------------------------------------------------------------------------
469
470class Candidate: public SortableObject
471{
472 friend class DelphesFactory;
473
474public:
475 Candidate();
476
477 Int_t PID;
478
479 Int_t Status;
480 Int_t M1, M2, D1, D2;
481
482 Int_t Charge;
483
484 Float_t Mass;
485
486 Int_t IsPU;
487 Int_t IsRecoPU;
488
489 Int_t IsConstituent;
490
491 UInt_t BTag;
492 UInt_t TauTag;
493
494 Float_t Eem;
495 Float_t Ehad;
496
497 Float_t Edges[4];
498 Float_t DeltaEta;
499 Float_t DeltaPhi;
500
501 TLorentzVector Momentum, Position, Area;
502
503 Float_t Dxy;
504 Float_t SDxy;
505 Float_t Xd;
506 Float_t Yd;
507 Float_t Zd;
508
509 // PileUpJetID variables
510
511 Int_t NCharged;
512 Int_t NNeutrals;
513 Float_t Beta;
514 Float_t BetaStar;
515 Float_t MeanSqDeltaR;
516 Float_t PTD;
517 Float_t FracPt[5];
518
519 //Timing information
520
521 Int_t Ntimes;
522 std::vector<std::pair<Float_t,Float_t> > Ecal_E_t;
523
524 // Isolation variables
525
526 Float_t IsolationVar;
527 Float_t IsolationVarRhoCorr;
528 Float_t SumPtCharged;
529 Float_t SumPtNeutral;
530 Float_t SumPtChargedPU;
531 Float_t SumPt;
532
533 // N-subjettiness variables
534
535 Float_t Tau[5];
536
537 // Other Substructure variables
538
539 TLorentzVector TrimmedP4[5]; //first entry (i = 0) is the total Trimmed Jet 4-momenta and from i = 1 to 4 are the trimmed subjets 4-momenta
540 TLorentzVector PrunedP4[5]; //first entry (i = 0) is the total Pruned Jet 4-momenta and from i = 1 to 4 are the pruned subjets 4-momenta
541 TLorentzVector SoftDroppedP4[5]; //first entry (i = 0) is the total SoftDropped Jet 4-momenta and from i = 1 to 4 are the pruned subjets 4-momenta
542
543 Int_t NSubJetsTrimmed; // number of subjets trimmed
544 Int_t NSubJetsPruned; // number of subjets pruned
545 Int_t NSubJetsSoftDropped; // number of subjets soft-dropped
546
547
548 static CompBase *fgCompare; //!
549 const CompBase *GetCompare() const { return fgCompare; }
550
551 void AddCandidate(Candidate *object);
552 TObjArray *GetCandidates();
553
554 Bool_t Overlaps(const Candidate *object) const;
555
556 virtual void Copy(TObject &object) const;
557 virtual TObject *Clone(const char *newname = "") const;
558 virtual void Clear(Option_t* option = "");
559
560private:
561 DelphesFactory *fFactory; //!
562 TObjArray *fArray; //!
563
564 void SetFactory(DelphesFactory *factory) { fFactory = factory; }
565
566 ClassDef(Candidate, 3)
567};
568
569#endif // DelphesClasses_h
570
571
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