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PFEGammaAlgo.cc
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23 #include <TFile.h>
24 #include <TVector2.h>
25 #include <iomanip>
26 #include <algorithm>
27 #include <TMath.h>
28 #include "TMVA/MethodBDT.h"
29 
30 // include combinations header (not yet included in boost)
31 #include "combination.hpp"
32 
33 // just for now do this
34 //#define PFLOW_DEBUG
35 
36 #ifdef PFLOW_DEBUG
37 #define docast(x,y) dynamic_cast<x>(y)
38 #define LOGVERB(x) edm::LogVerbatim(x)
39 #define LOGWARN(x) edm::LogWarning(x)
40 #define LOGERR(x) edm::LogError(x)
41 #define LOGDRESSED(x) edm::LogInfo(x)
42 #else
43 #define docast(x,y) reinterpret_cast<x>(y)
44 #define LOGVERB(x) LogTrace(x)
45 #define LOGWARN(x) edm::LogWarning(x)
46 #define LOGERR(x) edm::LogError(x)
47 #define LOGDRESSED(x) LogDebug(x)
48 #endif
49 
50 using namespace std;
51 using namespace reco;
52 
53 namespace {
54  typedef PFEGammaAlgo::PFSCElement SCElement;
55  typedef PFEGammaAlgo::EEtoPSAssociation EEtoPSAssociation;
56  typedef std::pair<CaloClusterPtr::key_type,CaloClusterPtr> EEtoPSElement;
57  typedef PFEGammaAlgo::PFClusterElement ClusterElement;
58  typedef PFEGammaAlgo::PFFlaggedElement PFFlaggedElement;
59  typedef PFEGammaAlgo::PFSCFlaggedElement SCFlaggedElement;
60  typedef PFEGammaAlgo::PFKFFlaggedElement KFFlaggedElement;
61  typedef PFEGammaAlgo::PFGSFFlaggedElement GSFFlaggedElement;
62  typedef PFEGammaAlgo::PFClusterFlaggedElement ClusterFlaggedElement;
63 
64  typedef std::unary_function<const ClusterFlaggedElement&,
65  bool> ClusterMatcher;
66 
67  typedef std::unary_function<const PFFlaggedElement&,
68  bool> PFFlaggedElementMatcher;
69  typedef std::binary_function<const PFFlaggedElement&,
70  const PFFlaggedElement&,
71  bool> PFFlaggedElementSorter;
72 
73  typedef std::unary_function<const reco::PFBlockElement&,
74  bool> PFElementMatcher;
75 
76  typedef std::unary_function<const PFEGammaAlgo::ProtoEGObject&,
77  bool> POMatcher;
78 
79  typedef std::unary_function<PFFlaggedElement&,
80  ClusterFlaggedElement> ClusterElementConverter;
81 
82  struct SumPSEnergy : public std::binary_function<double,
83  const ClusterFlaggedElement&,
84  double> {
86  SumPSEnergy(reco::PFBlockElement::Type type) : _thetype(type) {}
87  double operator()(double a,
88  const ClusterFlaggedElement& b) {
89 
90  return a + (_thetype == b.first->type())*b.first->clusterRef()->energy();
91  }
92  };
93 
94  bool comparePSMapByKey(const EEtoPSElement& a,
95  const EEtoPSElement& b) {
96  return a.first < b.first;
97  }
98 
99  struct UsableElementToPSCluster : public ClusterElementConverter {
100  ClusterFlaggedElement operator () (PFFlaggedElement& elem) {
101  const ClusterElement* pselemascluster =
102  docast(const ClusterElement*,elem.first);
103  if( reco::PFBlockElement::PS1 != pselemascluster->type() &&
104  reco::PFBlockElement::PS2 != pselemascluster->type() ) {
105  std::stringstream ps_err;
106  pselemascluster->Dump(ps_err,"\t");
107  throw cms::Exception("UseableElementToPSCluster()")
108  << "This element is not a PS cluster!" << std::endl
109  << ps_err.str() << std::endl;
110  }
111  if( elem.second == false ) {
112  std::stringstream ps_err;
113  pselemascluster->Dump(ps_err,"\t");
114  throw cms::Exception("UsableElementToPSCluster()")
115  << "PS Cluster matched to EE is already used! "
116  << "This should be impossible!" << std::endl
117  << ps_err.str() << std::endl;
118  }
119  elem.second = false; // flag as used!
120  return std::make_pair(pselemascluster,true);
121  }
122  };
123 
124  struct SeedMatchesToSCElement : public PFFlaggedElementMatcher {
125  reco::SuperClusterRef _scfromseed;
126  SeedMatchesToSCElement(const reco::ElectronSeedRef& s) {
127  _scfromseed = s->caloCluster().castTo<reco::SuperClusterRef>();
128  }
129  bool operator() (const PFFlaggedElement& elem) {
130  const SCElement* scelem = docast(const SCElement*,elem.first);
131  if( _scfromseed.isNull() || !elem.second || !scelem) return false;
132  return ( _scfromseed->seed()->seed() ==
133  scelem->superClusterRef()->seed()->seed() );
134  }
135  };
136 
137  struct SCSubClusterMatchesToElement : public PFFlaggedElementMatcher {
139  SCSubClusterMatchesToElement(const reco::CaloCluster_iterator& b,
140  const reco::CaloCluster_iterator& e) :
141  begin(b),
142  end(e) { }
143  bool operator() (const PFFlaggedElement& elem) {
144  const ClusterElement* cluselem =
145  docast(const ClusterElement*,elem.first);
146  if( !elem.second || !cluselem) return false;
148  for( ; cl != end; ++cl ) {
149  if((*cl)->seed() == cluselem->clusterRef()->seed()) {
150  return true;
151  }
152  }
153  return false;
154  }
155  };
156 
157  struct SeedMatchesToProtoObject : public POMatcher {
158  reco::SuperClusterRef _scfromseed;
159  bool _ispfsc;
160  SeedMatchesToProtoObject(const reco::ElectronSeedRef& s) {
161  _scfromseed = s->caloCluster().castTo<reco::SuperClusterRef>();
162  _ispfsc = false;
163  if( _scfromseed.isNonnull() ) {
164  const edm::Ptr<reco::PFCluster> testCast(_scfromseed->seed());
165  _ispfsc = testCast.isNonnull();
166  }
167  }
168  bool operator() (const PFEGammaAlgo::ProtoEGObject& po) {
169  if( _scfromseed.isNull() || !po.parentSC ) return false;
170  if( _ispfsc ) {
171  return ( _scfromseed->seed() ==
172  po.parentSC->superClusterRef()->seed() );
173  }
174  return ( _scfromseed->seed()->seed() ==
175  po.parentSC->superClusterRef()->seed()->seed() );
176  }
177  };
178 
179  template<bool useConvs=false>
180  bool elementNotCloserToOther(const reco::PFBlockRef& block,
181  const PFBlockElement::Type& keytype,
182  const size_t key,
183  const PFBlockElement::Type& valtype,
184  const size_t test,
185  const float EoPin_cut = 1.0e6) {
188  // this is inside out but I just want something that works right now
189  switch( keytype ) {
191  {
192  const reco::PFBlockElementGsfTrack* elemasgsf =
194  &(block->elements()[key]));
195  if( elemasgsf && valtype == PFBlockElement::ECAL ) {
196  const ClusterElement* elemasclus =
197  reinterpret_cast<const ClusterElement*>(&(block->elements()[test]));
198  float cluster_e = elemasclus->clusterRef()->correctedEnergy();
199  float trk_pin = elemasgsf->Pin().P();
200  if( cluster_e / trk_pin > EoPin_cut ) {
201  LOGDRESSED("elementNotCloserToOther")
202  << "GSF track failed EoP cut to match with cluster!";
203  return false;
204  }
205  }
206  }
207  break;
209  {
210  const reco::PFBlockElementTrack* elemaskf =
212  &(block->elements()[key]));
213  if( elemaskf && valtype == PFBlockElement::ECAL ) {
214  const ClusterElement* elemasclus =
215  reinterpret_cast<const ClusterElement*>(&(block->elements()[test]));
216  float cluster_e = elemasclus->clusterRef()->correctedEnergy();
217  float trk_pin =
218  std::sqrt(elemaskf->trackRef()->innerMomentum().mag2());
219  if( cluster_e / trk_pin > EoPin_cut ) {
220  LOGDRESSED("elementNotCloserToOther")
221  << "KF track failed EoP cut to match with cluster!";
222  return false;
223  }
224  }
225  }
226  break;
227  default:
228  break;
229  }
230 
231  const float dist =
232  block->dist(key,test,block->linkData(),reco::PFBlock::LINKTEST_ALL);
233  if( dist == -1.0f ) return false; // don't associate non-linked elems
234  std::multimap<double, unsigned> dists_to_val;
235  block->associatedElements(test,block->linkData(),dists_to_val,keytype,
237  for( const auto& valdist : dists_to_val ) {
238  const size_t idx = valdist.second;
239  // check track types for conversion info
240  switch( keytype ) {
242  {
243  const reco::PFBlockElementGsfTrack* elemasgsf =
245  &(block->elements()[idx]));
246  if( !useConvs && elemasgsf->trackType(ConvType) ) return false;
247  if( elemasgsf && valtype == PFBlockElement::ECAL ) {
248  const ClusterElement* elemasclus =
249  docast(const ClusterElement*,&(block->elements()[test]));
250  float cluster_e = elemasclus->clusterRef()->correctedEnergy();
251  float trk_pin = elemasgsf->Pin().P();
252  if( cluster_e / trk_pin > EoPin_cut ) continue;
253  }
254  }
255  break;
257  {
258  const reco::PFBlockElementTrack* elemaskf =
260  &(block->elements()[idx]));
261  if( !useConvs && elemaskf->trackType(ConvType) ) return false;
262  if( elemaskf && valtype == PFBlockElement::ECAL ) {
263  const ClusterElement* elemasclus =
264  reinterpret_cast<const ClusterElement*>(&(block->elements()[test]));
265  float cluster_e = elemasclus->clusterRef()->correctedEnergy();
266  float trk_pin =
267  std::sqrt(elemaskf->trackRef()->innerMomentum().mag2());
268  if( cluster_e / trk_pin > EoPin_cut ) continue;
269  }
270  }
271  break;
272  default:
273  break;
274  }
275  if( valdist.first < dist && idx != key ) {
276  LOGDRESSED("elementNotCloserToOther")
277  << "key element of type " << keytype
278  << " is closer to another element of type" << valtype
279  << std::endl;
280  return false; // false if closer element of specified type found
281  }
282  }
283  return true;
284  }
285 
286  struct CompatibleEoPOut : public PFFlaggedElementMatcher {
288  CompatibleEoPOut(const reco::PFBlockElementGsfTrack* c) : comp(c) {}
289  bool operator()(const PFFlaggedElement& e) const {
290  if( PFBlockElement::ECAL != e.first->type() ) return false;
291  const ClusterElement* elemascluster =
292  docast(const ClusterElement*,e.first);
293  const float gsf_eta_diff = std::abs(comp->positionAtECALEntrance().eta()-
294  comp->Pout().eta());
295  const reco::PFClusterRef cRef = elemascluster->clusterRef();
296  return ( gsf_eta_diff <= 0.3 && cRef->energy()/comp->Pout().t() <= 5 );
297  }
298  };
299 
300  template<class TrackElementType>
301  struct IsConversionTrack : PFFlaggedElementMatcher {
302  bool operator()(const PFFlaggedElement& e) {
305  const TrackElementType* elemastrk =
306  docast(const TrackElementType*,e.first);
307  return elemastrk->trackType(ConvType);
308  }
309  };
310 
311  template<PFBlockElement::Type keytype,
312  PFBlockElement::Type valtype,
313  bool useConv=false>
314  struct NotCloserToOther : public PFFlaggedElementMatcher {
315  const reco::PFBlockElement* comp;
316  const reco::PFBlockRef& block;
318  const float EoPin_cut;
319  NotCloserToOther(const reco::PFBlockRef& b,
320  const reco::PFBlock::LinkData& l,
321  const PFFlaggedElement* e,
322  const float EoPcut=1.0e6): comp(e->first),
323  block(b),
324  links(l),
325  EoPin_cut(EoPcut) {
326  }
327  NotCloserToOther(const reco::PFBlockRef& b,
328  const reco::PFBlock::LinkData& l,
329  const reco::PFBlockElement* e,
330  const float EoPcut=1.0e6): comp(e),
331  block(b),
332  links(l),
333  EoPin_cut(EoPcut) {
334  }
335  bool operator () (const PFFlaggedElement& e) {
336  if( !e.second || valtype != e.first->type() ) return false;
337  return elementNotCloserToOther<useConv>(block,
338  keytype,comp->index(),
339  valtype,e.first->index(),
340  EoPin_cut);
341  }
342  };
343 
344  struct LesserByDistance : public PFFlaggedElementSorter {
345  const reco::PFBlockElement* comp;
346  const reco::PFBlockRef& block;
348  LesserByDistance(const reco::PFBlockRef& b,
349  const reco::PFBlock::LinkData& l,
350  const PFFlaggedElement* e): comp(e->first),
351  block(b),
352  links(l) {}
353  LesserByDistance(const reco::PFBlockRef& b,
354  const reco::PFBlock::LinkData& l,
355  const reco::PFBlockElement* e): comp(e),
356  block(b),
357  links(l) {}
358  bool operator () (const PFFlaggedElement& e1,
359  const PFFlaggedElement& e2) {
360  double dist1 = block->dist(comp->index(),
361  e1.first->index(),
362  links,
364  double dist2 = block->dist(comp->index(),
365  e2.first->index(),
366  links,
368  dist1 = ( dist1 == -1.0 ? 1e6 : dist1 );
369  dist2 = ( dist2 == -1.0 ? 1e6 : dist2 );
370  return dist1 < dist2;
371  }
372  };
373 
374  bool isROLinkedByClusterOrTrack(const PFEGammaAlgo::ProtoEGObject& RO1,
375  const PFEGammaAlgo::ProtoEGObject& RO2 ) {
376  // also don't allow ROs where both have clusters
377  // and GSF tracks to merge (10 Dec 2013)
378  if(RO1.primaryGSFs.size() && RO2.primaryGSFs.size()) {
379  LOGDRESSED("isROLinkedByClusterOrTrack")
380  << "cannot merge, both have GSFs!" << std::endl;
381  return false;
382  }
383  // don't allow EB/EE to mix (11 Sept 2013)
384  if( RO1.ecalclusters.size() && RO2.ecalclusters.size() ) {
385  if(RO1.ecalclusters.front().first->clusterRef()->layer() !=
386  RO2.ecalclusters.front().first->clusterRef()->layer() ) {
387  LOGDRESSED("isROLinkedByClusterOrTrack")
388  << "cannot merge, different ECAL types!" << std::endl;
389  return false;
390  }
391  }
392  const reco::PFBlockRef& blk = RO1.parentBlock;
393  bool not_closer;
394  // check links track -> cluster
395  for( const auto& cluster: RO1.ecalclusters ) {
396  for( const auto& primgsf : RO2.primaryGSFs ) {
397  not_closer =
398  elementNotCloserToOther(blk,
399  cluster.first->type(),
400  cluster.first->index(),
401  primgsf.first->type(),
402  primgsf.first->index());
403  if( not_closer ) {
404  LOGDRESSED("isROLinkedByClusterOrTrack")
405  << "merged by cluster to primary GSF" << std::endl;
406  return true;
407  } else {
408  LOGDRESSED("isROLinkedByClusterOrTrack")
409  << "cluster to primary GSF failed since"
410  << " cluster closer to another GSF" << std::endl;
411  }
412  }
413  for( const auto& primkf : RO2.primaryKFs) {
414  not_closer =
415  elementNotCloserToOther(blk,
416  cluster.first->type(),
417  cluster.first->index(),
418  primkf.first->type(),
419  primkf.first->index());
420  if( not_closer ) {
421  LOGDRESSED("isROLinkedByClusterOrTrack")
422  << "merged by cluster to primary KF" << std::endl;
423  return true;
424  }
425  }
426  for( const auto& secdkf : RO2.secondaryKFs) {
427  not_closer =
428  elementNotCloserToOther(blk,
429  cluster.first->type(),
430  cluster.first->index(),
431  secdkf.first->type(),
432  secdkf.first->index());
433  if( not_closer ) {
434  LOGDRESSED("isROLinkedByClusterOrTrack")
435  << "merged by cluster to secondary KF" << std::endl;
436  return true;
437  }
438  }
439  // check links brem -> cluster
440  for( const auto& brem : RO2.brems ) {
441  not_closer = elementNotCloserToOther(blk,
442  cluster.first->type(),
443  cluster.first->index(),
444  brem.first->type(),
445  brem.first->index());
446  if( not_closer ) {
447  LOGDRESSED("isROLinkedByClusterOrTrack")
448  << "merged by cluster to brem KF" << std::endl;
449  return true;
450  }
451  }
452  }
453  // check links primary gsf -> secondary kf
454  for( const auto& primgsf : RO1.primaryGSFs ) {
455  for( const auto& secdkf : RO2.secondaryKFs) {
456  not_closer =
457  elementNotCloserToOther(blk,
458  primgsf.first->type(),
459  primgsf.first->index(),
460  secdkf.first->type(),
461  secdkf.first->index());
462  if( not_closer ) {
463  LOGDRESSED("isROLinkedByClusterOrTrack")
464  << "merged by GSF to secondary KF" << std::endl;
465  return true;
466  }
467  }
468  }
469  // check links primary kf -> secondary kf
470  for( const auto& primkf : RO1.primaryKFs ) {
471  for( const auto& secdkf : RO2.secondaryKFs) {
472  not_closer =
473  elementNotCloserToOther(blk,
474  primkf.first->type(),
475  primkf.first->index(),
476  secdkf.first->type(),
477  secdkf.first->index());
478  if( not_closer ) {
479  LOGDRESSED("isROLinkedByClusterOrTrack")
480  << "merged by primary KF to secondary KF" << std::endl;
481  return true;
482  }
483  }
484  }
485  // check links secondary kf -> secondary kf
486  for( const auto& secdkf1 : RO1.secondaryKFs ) {
487  for( const auto& secdkf2 : RO2.secondaryKFs) {
488  not_closer =
489  elementNotCloserToOther<true>(blk,
490  secdkf1.first->type(),
491  secdkf1.first->index(),
492  secdkf2.first->type(),
493  secdkf2.first->index());
494  if( not_closer ) {
495  LOGDRESSED("isROLinkedByClusterOrTrack")
496  << "merged by secondary KF to secondary KF" << std::endl;
497  return true;
498  }
499  }
500  }
501  return false;
502  }
503 
504  struct TestIfROMergableByLink : public POMatcher {
505  const PFEGammaAlgo::ProtoEGObject& comp;
506  TestIfROMergableByLink(const PFEGammaAlgo::ProtoEGObject& RO) :
507  comp(RO) {}
508  bool operator() (const PFEGammaAlgo::ProtoEGObject& ro) {
509  const bool result = ( isROLinkedByClusterOrTrack(comp,ro) ||
510  isROLinkedByClusterOrTrack(ro,comp) );
511  return result;
512  }
513  };
514 
515  std::vector<const ClusterElement*>
516  getSCAssociatedECALsSafe(const reco::SuperClusterRef& scref,
517  std::vector<PFFlaggedElement>& ecals) {
518  std::vector<const ClusterElement*> cluster_list;
519  auto sccl = scref->clustersBegin();
520  auto scend = scref->clustersEnd();
521  auto pfc = ecals.begin();
522  auto pfcend = ecals.end();
523  for( ; sccl != scend; ++sccl ) {
524  std::vector<const ClusterElement*> matched_pfcs;
525  const double eg_energy = (*sccl)->energy();
526 
527  for( pfc = ecals.begin(); pfc != pfcend; ++pfc ) {
528  const ClusterElement *pfcel =
529  docast(const ClusterElement*, pfc->first);
530  const bool matched =
531  ClusterClusterMapping::overlap(**sccl,*(pfcel->clusterRef()));
532  // need to protect against high energy clusters being attached
533  // to low-energy SCs
534  if( matched && pfcel->clusterRef()->energy() < 1.2*scref->energy()) {
535  matched_pfcs.push_back(pfcel);
536  }
537  }
538  std::sort(matched_pfcs.begin(),matched_pfcs.end());
539 
540  double min_residual = 1e6;
541  std::vector<const ClusterElement*> best_comb;
542  for( size_t i = 1; i <= matched_pfcs.size(); ++i ) {
543  //now we find the combination of PF-clusters which
544  //has the smallest energy residual with respect to the
545  //EG-cluster we are looking at now
546  do {
547  double energy = std::accumulate(matched_pfcs.begin(),
548  matched_pfcs.begin()+i,
549  0.0,
550  [](const double a,
551  const ClusterElement* c)
552  { return a + c->clusterRef()->energy(); });
553  const double resid = std::abs(energy - eg_energy);
554  if( resid < min_residual ) {
555  best_comb.clear();
556  best_comb.reserve(i);
557  min_residual = resid;
558  best_comb.insert(best_comb.begin(),
559  matched_pfcs.begin(),
560  matched_pfcs.begin()+i);
561  }
562  }while(boost::next_combination(matched_pfcs.begin(),
563  matched_pfcs.begin()+i,
564  matched_pfcs.end()));
565  }
566  for( const auto& clelem : best_comb ) {
567  reco::PFClusterRef clref = clelem->clusterRef();
568  if( std::find(cluster_list.begin(),cluster_list.end(),clelem) ==
569  cluster_list.end() ) {
570  cluster_list.push_back(clelem);
571  }
572  }
573  }
574  return cluster_list;
575  }
576  bool addPFClusterToROSafe(const ClusterElement* cl,
577  PFEGammaAlgo::ProtoEGObject& RO) {
578  if( !RO.ecalclusters.size() ) {
579  RO.ecalclusters.push_back(std::make_pair(cl,true));
580  return true;
581  } else {
582  const PFLayer::Layer clayer = cl->clusterRef()->layer();
583  const PFLayer::Layer blayer =
584  RO.ecalclusters.back().first->clusterRef()->layer();
585  if( clayer == blayer ) {
586  RO.ecalclusters.push_back(std::make_pair(cl,true));
587  return true;
588  }
589  }
590  return false;
591  }
592 
593  // sets the cluster best associated to the GSF track
594  // leave it null if no GSF track
595  void setROElectronCluster(PFEGammaAlgo::ProtoEGObject& RO) {
596  if( !RO.ecalclusters.size() ) return;
597  RO.lateBrem = -1;
598  RO.firstBrem = -1;
599  RO.nBremsWithClusters = -1;
600  const reco::PFBlockElementBrem *firstBrem = NULL, *lastBrem = NULL;
601  const reco::PFBlockElementCluster *bremCluster = NULL, *gsfCluster = NULL,
602  *kfCluster = NULL, *gsfCluster_noassc = NULL;
603  const reco::PFBlockRef& parent = RO.parentBlock;
604  int nBremClusters = 0;
605  constexpr float maxDist = 1e6;
606  float mDist_gsf(maxDist), mDist_gsf_noassc(maxDist), mDist_kf(maxDist);
607  for( const auto& cluster : RO.ecalclusters ) {
608  for( const auto& gsf : RO.primaryGSFs ) {
609  const bool hasclu = elementNotCloserToOther(parent,
610  gsf.first->type(),
611  gsf.first->index(),
612  cluster.first->type(),
613  cluster.first->index());
614  const float deta =
615  std::abs(cluster.first->clusterRef()->positionREP().eta() -
616  gsf.first->positionAtECALEntrance().eta());
617  const float dphi =
619  cluster.first->clusterRef()->positionREP().phi() -
620  gsf.first->positionAtECALEntrance().phi()));
621  const float dist = std::hypot(deta,dphi);
622  if( hasclu && dist < mDist_gsf ) {
623  gsfCluster = cluster.first;
624  mDist_gsf = dist;
625  } else if ( dist < mDist_gsf_noassc ) {
626  gsfCluster_noassc = cluster.first;
627  mDist_gsf_noassc = dist;
628  }
629  }
630  for( const auto& kf : RO.primaryKFs ) {
631  const bool hasclu = elementNotCloserToOther(parent,
632  kf.first->type(),
633  kf.first->index(),
634  cluster.first->type(),
635  cluster.first->index());
636  const float dist = parent->dist(cluster.first->index(),
637  kf.first->index(),
638  parent->linkData(),
640  if( hasclu && dist < mDist_kf ) {
641  kfCluster = cluster.first;
642  mDist_kf = dist;
643  }
644  }
645  for( const auto& brem : RO.brems ) {
646  const bool hasclu = elementNotCloserToOther(parent,
647  brem.first->type(),
648  brem.first->index(),
649  cluster.first->type(),
650  cluster.first->index());
651  if( hasclu ) {
652  ++nBremClusters;
653  if( !firstBrem ||
654  ( firstBrem->indTrajPoint() - 2 >
655  brem.first->indTrajPoint() - 2) ) {
656  firstBrem = brem.first;
657  }
658  if( !lastBrem ||
659  ( lastBrem->indTrajPoint() - 2 <
660  brem.first->indTrajPoint() - 2) ) {
661  lastBrem = brem.first;
662  bremCluster = cluster.first;
663  }
664  }
665  }
666  }
667  if( !gsfCluster && !kfCluster && !bremCluster ) {
668  gsfCluster = gsfCluster_noassc;
669  }
670  RO.nBremsWithClusters = nBremClusters;
671  RO.lateBrem = 0;
672  if( gsfCluster ) {
673  RO.electronClusters.push_back(gsfCluster);
674  } else if ( kfCluster ) {
675  RO.electronClusters.push_back(kfCluster);
676  }
677  if( bremCluster && !gsfCluster && !kfCluster ) {
678  RO.electronClusters.push_back(bremCluster);
679  }
680  if( firstBrem && RO.ecalclusters.size() > 1 ) {
681  RO.firstBrem = firstBrem->indTrajPoint() - 2;
682  if( bremCluster == gsfCluster ) RO.lateBrem = 1;
683  }
684  }
685 }
686 
689  cfg_(cfg),
690  isvalid_(false),
691  verbosityLevel_(Silent),
692  nlost(0.0), nlayers(0.0),
693  chi2(0.0), STIP(0.0), del_phi(0.0),HoverPt(0.0), EoverPt(0.0), track_pt(0.0),
694  mvaValue(0.0),
695  CrysPhi_(0.0), CrysEta_(0.0), VtxZ_(0.0), ClusPhi_(0.0), ClusEta_(0.0),
696  ClusR9_(0.0), Clus5x5ratio_(0.0), PFCrysEtaCrack_(0.0), logPFClusE_(0.0), e3x3_(0.0),
697  CrysIPhi_(0), CrysIEta_(0),
698  CrysX_(0.0), CrysY_(0.0),
699  EB(0.0),
700  eSeed_(0.0), e1x3_(0.0),e3x1_(0.0), e1x5_(0.0), e2x5Top_(0.0), e2x5Bottom_(0.0), e2x5Left_(0.0), e2x5Right_(0.0),
701  etop_(0.0), ebottom_(0.0), eleft_(0.0), eright_(0.0),
702  e2x5Max_(0.0),
703  PFPhoEta_(0.0), PFPhoPhi_(0.0), PFPhoR9_(0.0), PFPhoR9Corr_(0.0), SCPhiWidth_(0.0), SCEtaWidth_(0.0),
704  PFPhoEt_(0.0), RConv_(0.0), PFPhoEtCorr_(0.0), PFPhoE_(0.0), PFPhoECorr_(0.0), MustE_(0.0), E3x3_(0.0),
705  dEta_(0.0), dPhi_(0.0), LowClusE_(0.0), RMSAll_(0.0), RMSMust_(0.0), nPFClus_(0.0),
706  TotPS1_(0.0), TotPS2_(0.0),
707  nVtx_(0.0),
708  x0inner_(0.0), x0middle_(0.0), x0outer_(0.0),
709  excluded_(0.0), Mustache_EtRatio_(0.0), Mustache_Et_out_(0.0)
710 {
711  //Material Map
712  TFile *XO_File = new TFile(cfg_.X0_Map.c_str(),"READ");
713  X0_sum = (TH2D*)XO_File->Get("TrackerSum");
714  X0_inner = (TH2D*)XO_File->Get("Inner");
715  X0_middle = (TH2D*)XO_File->Get("Middle");
716  X0_outer = (TH2D*)XO_File->Get("Outer");
717 
718 }
719 
721  const reco::PFBlockRef& blockRef,
722  std::vector<bool>& active) {
723 
724  fifthStepKfTrack_.clear();
725  convGsfTrack_.clear();
726 
727  egCandidate_.clear();
728  egExtra_.clear();
729 
730  // define how much is printed out for debugging.
731  // ... will be setable via CFG file parameter
732  verbosityLevel_ = Chatty; // Chatty mode.
733 
734  buildAndRefineEGObjects(hoc, blockRef);
735 }
736 
737 float PFEGammaAlgo::
739  const reco::PFBlockRef& blockref,
740  const reco::Vertex& primaryvtx,
741  unsigned int track_index) {
742  const reco::PFBlock& block = *blockref;
744  //use this to store linkdata in the associatedElements function below
745  PFBlock::LinkData linkData = block.linkData();
746  //calculate MVA Variables
747  chi2=elements[track_index].trackRef()->chi2()/elements[track_index].trackRef()->ndof();
748  nlost=elements[track_index].trackRef()->hitPattern().numberOfLostHits(HitPattern::MISSING_INNER_HITS);
749  nlayers=elements[track_index].trackRef()->hitPattern().trackerLayersWithMeasurement();
750  track_pt=elements[track_index].trackRef()->pt();
751  STIP=elements[track_index].trackRefPF()->STIP();
752 
753  float linked_e=0;
754  float linked_h=0;
755  std::multimap<double, unsigned int> ecalAssoTrack;
756  block.associatedElements( track_index,linkData,
757  ecalAssoTrack,
760  std::multimap<double, unsigned int> hcalAssoTrack;
761  block.associatedElements( track_index,linkData,
762  hcalAssoTrack,
765  if(ecalAssoTrack.size() > 0) {
766  for(std::multimap<double, unsigned int>::iterator itecal = ecalAssoTrack.begin();
767  itecal != ecalAssoTrack.end(); ++itecal) {
768  linked_e=linked_e+elements[itecal->second].clusterRef()->energy();
769  }
770  }
771  if(hcalAssoTrack.size() > 0) {
772  for(std::multimap<double, unsigned int>::iterator ithcal = hcalAssoTrack.begin();
773  ithcal != hcalAssoTrack.end(); ++ithcal) {
774  linked_h=linked_h+elements[ithcal->second].clusterRef()->energy();
775  }
776  }
777  EoverPt=linked_e/elements[track_index].trackRef()->pt();
778  HoverPt=linked_h/elements[track_index].trackRef()->pt();
779  GlobalVector rvtx(elements[track_index].trackRef()->innerPosition().X()-primaryvtx.x(),
780  elements[track_index].trackRef()->innerPosition().Y()-primaryvtx.y(),
781  elements[track_index].trackRef()->innerPosition().Z()-primaryvtx.z());
782  double vtx_phi=rvtx.phi();
783  //delta Phi between conversion vertex and track
784  del_phi=fabs(deltaPhi(vtx_phi, elements[track_index].trackRef()->innerMomentum().Phi()));
785 
786  float vars[] = { del_phi, nlayers, chi2, EoverPt,
787  HoverPt, track_pt, STIP, nlost };
788 
789  mvaValue = hoc->gbrSingleLeg_->GetAdaBoostClassifier(vars);
790 
791  return mvaValue;
792 }
793 
795  switch( pfbe.type() ) {
797  {
798  auto& elements = _currentblock->elements();
799  std::multimap<double,unsigned> tks;
800  _currentblock->associatedElements(pfbe.index(),
802  tks,
805  for( const auto& tk : tks ) {
806  if( PFMuonAlgo::isMuon(elements[tk.second]) ) {
807  return true;
808  }
809  }
810  }
811  break;
813  return PFMuonAlgo::isMuon(pfbe);
814  break;
815  default:
816  break;
817  }
818  return false;
819 }
820 
822  const reco::PFBlockRef& block) {
823  LOGVERB("PFEGammaAlgo")
824  << "Resetting PFEGammaAlgo for new block and running!" << std::endl;
825  _splayedblock.clear();
826  _recoveredlinks.clear();
827  _refinableObjects.clear();
828  _finalCandidates.clear();
829  _splayedblock.resize(12); // make sure that we always have the SC entry
830 
832  _currentlinks = block->linkData();
833  //LOGDRESSED("PFEGammaAlgo") << *_currentblock << std::endl;
834  LOGVERB("PFEGammaAlgo") << "Splaying block" << std::endl;
835  //unwrap the PF block into a fast access map
836  for( const auto& pfelement : _currentblock->elements() ) {
837  if( isAMuon(pfelement) ) continue; // don't allow muons in our element list
838  const size_t itype = (size_t)pfelement.type();
839  if( itype >= _splayedblock.size() ) _splayedblock.resize(itype+1);
840  _splayedblock[itype].push_back(std::make_pair(&pfelement,true));
841  }
842 
843  // show the result of splaying the tree if it's really *really* needed
844 #ifdef PFLOW_DEBUG
845  std::stringstream splayout;
846  for( size_t itype = 0; itype < _splayedblock.size(); ++itype ) {
847  splayout << "\tType: " << itype << " indices: ";
848  for( const auto& flaggedelement : _splayedblock[itype] ) {
849  splayout << flaggedelement.first->index() << ' ';
850  }
851  if( itype != _splayedblock.size() - 1 ) splayout << std::endl;
852  }
853  LOGVERB("PFEGammaAlgo") << splayout.str();
854 #endif
855 
856  // precleaning of the ECAL clusters with respect to primary KF tracks
857  // we don't allow clusters in super clusters to be locked out this way
859 
861  LOGDRESSED("PFEGammaAlgo")
862  << "Initialized " << _refinableObjects.size() << " proto-EGamma objects"
863  << std::endl;
865 
866  //
867  // now we start the refining steps
868  //
869  //
870 
871  // --- Primary Linking Step ---
872  // since this is particle flow and we try to work from the pixels out
873  // we start by linking the tracks together and finding the ECAL clusters
874  for( auto& RO : _refinableObjects ) {
875  // find the KF tracks associated to GSF primary tracks
877  // do the same for HCAL clusters associated to the GSF
879  // link secondary KF tracks associated to primary KF tracks
881  // pick up clusters that are linked to the GSF primary
883  // link associated KF to ECAL (ECAL part grabs PS clusters too if able)
885  // now finally look for clusters associated to brem tangents
887  }
888 
889  LOGDRESSED("PFEGammaAlgo")
890  << "Dumping after GSF and KF Track (Primary) Linking : " << std::endl;
892 
893  // merge objects after primary linking
894  mergeROsByAnyLink(_refinableObjects);
895 
896  LOGDRESSED("PFEGammaAlgo")
897  << "Dumping after first merging operation : " << std::endl;
899 
900  // --- Secondary Linking Step ---
901  // after this we go through the ECAL clusters on the remaining tracks
902  // and try to link those in...
903  for( auto& RO : _refinableObjects ) {
904  // look for conversion legs
907  // look for tracks that complement conversion legs
909  // look again for ECAL clusters (this time with an e/p cut)
911  }
912 
913  LOGDRESSED("PFEGammaAlgo")
914  << "Dumping after ECAL to Track (Secondary) Linking : " << std::endl;
916 
917  // merge objects after primary linking
918  mergeROsByAnyLink(_refinableObjects);
919 
920  LOGDRESSED("PFEGammaAlgo")
921  << "There are " << _refinableObjects.size()
922  << " after the 2nd merging step." << std::endl;
924 
925  // -- unlinking and proto-object vetos, final sorting
926  for( auto& RO : _refinableObjects ) {
927  // remove secondary KFs (and possibly ECALs) matched to HCAL clusters
929  // remove secondary KFs and ECALs linked to them that have bad E/p_in
930  // and spoil the resolution
932  // put things back in order after partitioning
933  std::sort(RO.ecalclusters.begin(), RO.ecalclusters.end(),
934  [](const PFClusterFlaggedElement& a,
935  const PFClusterFlaggedElement& b)
936  { return ( a.first->clusterRef()->correctedEnergy() >
937  b.first->clusterRef()->correctedEnergy() ) ; });
938  setROElectronCluster(RO);
939  }
940 
941  LOGDRESSED("PFEGammaAlgo")
942  << "There are " << _refinableObjects.size()
943  << " after the unlinking and vetos step." << std::endl;
945 
946  // fill the PF candidates and then build the refined SC
947  fillPFCandidates(hoc,_refinableObjects,outcands_,outcandsextra_);
948 
949 }
950 
951 void PFEGammaAlgo::
952 initializeProtoCands(std::list<PFEGammaAlgo::ProtoEGObject>& egobjs) {
953  // step 1: build SC based proto-candidates
954  // in the future there will be an SC Et requirement made here to control
955  // block size
956  for( auto& element : _splayedblock[PFBlockElement::SC] ) {
957  LOGDRESSED("PFEGammaAlgo")
958  << "creating SC-based proto-object" << std::endl
959  << "\tSC at index: " << element.first->index()
960  << " has type: " << element.first->type() << std::endl;
961  element.second = false;
962  ProtoEGObject fromSC;
963  fromSC.nBremsWithClusters = -1;
964  fromSC.firstBrem = -1;
965  fromSC.lateBrem = -1;
966  fromSC.parentBlock = _currentblock;
967  fromSC.parentSC = docast(const PFSCElement*,element.first);
968  // splay the supercluster so we can knock out used elements
969  bool sc_success =
970  unwrapSuperCluster(fromSC.parentSC,fromSC.ecalclusters,fromSC.ecal2ps);
971  if( sc_success ) {
972  /*
973  auto ins_pos = std::lower_bound(_refinableObjects.begin(),
974  _refinableObjects.end(),
975  fromSC,
976  [&](const ProtoEGObject& a,
977  const ProtoEGObject& b){
978  const double a_en =
979  a.parentSC->superClusterRef()->energy();
980  const double b_en =
981  b.parentSC->superClusterRef()->energy();
982  return a_en < b_en;
983  });
984  */
985  _refinableObjects.insert(_refinableObjects.end(),fromSC);
986  }
987  }
988  // step 2: build GSF-seed-based proto-candidates
989  reco::GsfTrackRef gsfref_forextra;
990  reco::TrackExtraRef gsftrk_extra;
991  reco::ElectronSeedRef theseedref;
992  std::list<ProtoEGObject>::iterator objsbegin, objsend;
993  for( auto& element : _splayedblock[PFBlockElement::GSF] ) {
994  LOGDRESSED("PFEGammaAlgo")
995  << "creating GSF-based proto-object" << std::endl
996  << "\tGSF at index: " << element.first->index()
997  << " has type: " << element.first->type() << std::endl;
998  const PFGSFElement* elementAsGSF =
999  docast(const PFGSFElement*,element.first);
1000  if( elementAsGSF->trackType(reco::PFBlockElement::T_FROM_GAMMACONV) ) {
1001  continue; // for now, do not allow dedicated brems to make proto-objects
1002  }
1003  element.second = false;
1004 
1005  ProtoEGObject fromGSF;
1006  fromGSF.nBremsWithClusters = -1;
1007  fromGSF.firstBrem = -1;
1008  fromGSF.lateBrem = 0;
1009  gsfref_forextra = elementAsGSF->GsftrackRef();
1010  gsftrk_extra = ( gsfref_forextra.isAvailable() ?
1011  gsfref_forextra->extra() : reco::TrackExtraRef() );
1012  theseedref = ( gsftrk_extra.isAvailable() ?
1013  gsftrk_extra->seedRef().castTo<reco::ElectronSeedRef>() :
1014  reco::ElectronSeedRef() );
1015  fromGSF.electronSeed = theseedref;
1016  // exception if there's no seed
1017  if(fromGSF.electronSeed.isNull() || !fromGSF.electronSeed.isAvailable()) {
1018  std::stringstream gsf_err;
1019  elementAsGSF->Dump(gsf_err,"\t");
1020  throw cms::Exception("PFEGammaAlgo::initializeProtoCands()")
1021  << "Found a GSF track with no seed! This should not happen!"
1022  << std::endl << gsf_err.str() << std::endl;
1023  }
1024  // flag this GSF element as globally used and push back the track ref
1025  // into the protocand
1026  element.second = false;
1027  fromGSF.parentBlock = _currentblock;
1028  fromGSF.primaryGSFs.push_back(std::make_pair(elementAsGSF,true));
1029  // add the directly matched brem tangents
1030  for( auto& brem : _splayedblock[PFBlockElement::BREM] ) {
1031  float dist = _currentblock->dist(elementAsGSF->index(),
1032  brem.first->index(),
1033  _currentlinks,
1035  if( dist == 0.001f ) {
1036  const PFBremElement* eAsBrem =
1037  docast(const PFBremElement*,brem.first);
1038  fromGSF.brems.push_back(std::make_pair(eAsBrem,true));
1039  fromGSF.localMap.push_back( ElementMap::value_type(eAsBrem,elementAsGSF) );
1040  fromGSF.localMap.push_back( ElementMap::value_type(elementAsGSF,eAsBrem) );
1041  brem.second = false;
1042  }
1043  }
1044  // if this track is ECAL seeded reset links or import cluster
1045  // tracker (this is pixel only, right?) driven seeds just get the GSF
1046  // track associated since this only branches for ECAL Driven seeds
1047  if( fromGSF.electronSeed->isEcalDriven() ) {
1048  // step 2a: either merge with existing ProtoEG object with SC or add
1049  // SC directly to this proto EG object if not present
1050  LOGDRESSED("PFEGammaAlgo")
1051  << "GSF-based proto-object is ECAL driven, merging SC-cand"
1052  << std::endl;
1053  LOGVERB("PFEGammaAlgo")
1054  << "ECAL Seed Ptr: " << fromGSF.electronSeed.get()
1055  << " isAvailable: " << fromGSF.electronSeed.isAvailable()
1056  << " isNonnull: " << fromGSF.electronSeed.isNonnull()
1057  << std::endl;
1058  SeedMatchesToProtoObject sctoseedmatch(fromGSF.electronSeed);
1059  objsbegin = _refinableObjects.begin();
1060  objsend = _refinableObjects.end();
1061  // this auto is a std::list<ProtoEGObject>::iterator
1062  auto clusmatch = std::find_if(objsbegin,objsend,sctoseedmatch);
1063  if( clusmatch != objsend ) {
1064  fromGSF.parentSC = clusmatch->parentSC;
1065  fromGSF.ecalclusters = std::move(clusmatch->ecalclusters);
1066  fromGSF.ecal2ps = std::move(clusmatch->ecal2ps);
1067  _refinableObjects.erase(clusmatch);
1068  } else if (fromGSF.electronSeed.isAvailable() &&
1069  fromGSF.electronSeed.isNonnull()) {
1070  // link tests in the gap region can current split a gap electron
1071  // HEY THIS IS A WORK AROUND FOR A KNOWN BUG IN PFBLOCKALGO
1072  // MAYBE WE SHOULD FIX IT??????????????????????????????????
1073  LOGDRESSED("PFEGammaAlgo")
1074  << "Encountered the known GSF-SC splitting bug "
1075  << " in PFBlockAlgo! We should really fix this!" << std::endl;
1076  } else { // SC was not in a earlier proto-object
1077  std::stringstream gsf_err;
1078  elementAsGSF->Dump(gsf_err,"\t");
1079  throw cms::Exception("PFEGammaAlgo::initializeProtoCands()")
1080  << "Expected SuperCluster from ECAL driven GSF seed "
1081  << "was not found in the block!" << std::endl
1082  << gsf_err.str() << std::endl;
1083  } // supercluster in block
1084  } // is ECAL driven seed?
1085  /*
1086  auto ins_pos = std::lower_bound(_refinableObjects.begin(),
1087  _refinableObjects.end(),
1088  fromGSF,
1089  [&](const ProtoEGObject& a,
1090  const ProtoEGObject& b){
1091  const double a_en = ( a.parentSC ?
1092  a.parentSC->superClusterRef()->energy() :
1093  a.primaryGSFs[0].first->GsftrackRef()->pt() );
1094  const double b_en = ( b.parentSC ?
1095  b.parentSC->superClusterRef()->energy() :
1096  b.primaryGSFs[0].first->GsftrackRef()->pt() );
1097  return a_en < b_en;
1098  });
1099  */
1100  _refinableObjects.insert(_refinableObjects.end(),fromGSF);
1101  } // end loop on GSF elements of block
1102 }
1103 
1104  bool PFEGammaAlgo::
1106  std::vector<PFClusterFlaggedElement>& ecalclusters,
1107  ClusterMap& ecal2ps) {
1108  ecalclusters.clear();
1109  ecal2ps.clear();
1110  LOGVERB("PFEGammaAlgo")
1111  << "Pointer to SC element: 0x"
1112  << std::hex << thesc << std::dec << std::endl
1113  << "cleared ecalclusters and ecal2ps!" << std::endl;
1114  auto ecalbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1115  auto ecalend = _splayedblock[reco::PFBlockElement::ECAL].end();
1116  if( ecalbegin == ecalend ) {
1117  LOGERR("PFEGammaAlgo::unwrapSuperCluster()")
1118  << "There are no ECAL elements in a block with imported SC!"
1119  << " This is a bug we should fix this!"
1120  << std::endl;
1121  return false;
1122  }
1123  reco::SuperClusterRef scref = thesc->superClusterRef();
1124  const bool is_pf_sc = thesc->fromPFSuperCluster();
1125  if( !(scref.isAvailable() && scref.isNonnull()) ) {
1126  throw cms::Exception("PFEGammaAlgo::unwrapSuperCluster()")
1127  << "SuperCluster pointed to by block element is null!"
1128  << std::endl;
1129  }
1130  LOGDRESSED("PFEGammaAlgo")
1131  << "Got a valid super cluster ref! 0x"
1132  << std::hex << scref.get() << std::dec << std::endl;
1133  const size_t nscclusters = scref->clustersSize();
1134  const size_t nscpsclusters = scref->preshowerClustersSize();
1135  size_t npfpsclusters = 0;
1136  size_t npfclusters = 0;
1137  LOGDRESSED("PFEGammaAlgo")
1138  << "Precalculated cluster multiplicities: "
1139  << nscclusters << ' ' << nscpsclusters << std::endl;
1140  NotCloserToOther<reco::PFBlockElement::SC,reco::PFBlockElement::ECAL>
1141  ecalClustersInSC(_currentblock,_currentlinks,thesc);
1142  auto firstnotinsc = std::partition(ecalbegin,ecalend,ecalClustersInSC);
1143  //reset the begin and end iterators
1144  ecalbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1145  ecalend = _splayedblock[reco::PFBlockElement::ECAL].end();
1146 
1147  //get list of associated clusters by det id and energy matching
1148  //(only needed when using non-pf supercluster)
1149  std::vector<const ClusterElement*> safePFClusters = is_pf_sc ? std::vector<const ClusterElement*>() : getSCAssociatedECALsSafe(scref,_splayedblock[reco::PFBlockElement::ECAL]);
1150 
1151  if( firstnotinsc == ecalbegin ) {
1152  LOGERR("PFEGammaAlgo::unwrapSuperCluster()")
1153  << "No associated block elements to SuperCluster!"
1154  << " This is a bug we should fix!"
1155  << std::endl;
1156  return false;
1157  }
1158  npfclusters = std::distance(ecalbegin,firstnotinsc);
1159  // ensure we have found the correct number of PF ecal clusters in the case
1160  // that this is a PF supercluster, otherwise all bets are off
1161  if( is_pf_sc && nscclusters != npfclusters ) {
1162  std::stringstream sc_err;
1163  thesc->Dump(sc_err,"\t");
1164  throw cms::Exception("PFEGammaAlgo::unwrapSuperCluster()")
1165  << "The number of found ecal elements ("
1166  << nscclusters << ") in block is not the same as"
1167  << " the number of ecal PF clusters reported by the PFSuperCluster"
1168  << " itself (" << npfclusters
1169  << ")! This should not happen!" << std::endl
1170  << sc_err.str() << std::endl;
1171  }
1172  for( auto ecalitr = ecalbegin; ecalitr != firstnotinsc; ++ecalitr ) {
1173  const PFClusterElement* elemascluster =
1174  docast(const PFClusterElement*,ecalitr->first);
1175 
1176  // reject clusters that really shouldn't be associated to the SC
1177  // (only needed when using non-pf-supercluster)
1178  if(!is_pf_sc && std::find(safePFClusters.begin(),safePFClusters.end(),elemascluster) ==
1179  safePFClusters.end() ) continue;
1180 
1181  //add cluster
1182  ecalclusters.push_back(std::make_pair(elemascluster,true));
1183  //mark cluster as used
1184  ecalitr->second = false;
1185 
1186  // process the ES elements
1187  // auto is a pair<Iterator,bool> here, bool is false when placing fails
1188  auto emplaceresult = ecal2ps.emplace(elemascluster,
1189  ClusterMap::mapped_type());
1190  if( !emplaceresult.second ) {
1191  std::stringstream clus_err;
1192  elemascluster->Dump(clus_err,"\t");
1193  throw cms::Exception("PFEGammaAlgo::unwrapSuperCluster()")
1194  << "List of pointers to ECAL block elements contains non-unique items!"
1195  << " This is very bad!" << std::endl
1196  << "cluster ptr = 0x" << std::hex << elemascluster << std::dec
1197  << std::endl << clus_err.str() << std::endl;
1198  }
1199  ClusterMap::mapped_type& eslist = emplaceresult.first->second;
1200  npfpsclusters += attachPSClusters(elemascluster,eslist);
1201  } // loop over ecal elements
1202 
1203  /*
1204  if( is_pf_sc && nscpsclusters != npfpsclusters) {
1205  std::stringstream sc_err;
1206  thesc->Dump(sc_err,"\t");
1207  throw cms::Exception("PFEGammaAlgo::unwrapSuperCluster()")
1208  << "The number of found PF preshower elements ("
1209  << npfpsclusters << ") in block is not the same as"
1210  << " the number of preshower clusters reported by the PFSuperCluster"
1211  << " itself (" << nscpsclusters << ")! This should not happen!"
1212  << std::endl
1213  << sc_err.str() << std::endl;
1214  }
1215  */
1216 
1217  LOGDRESSED("PFEGammaAlgo")
1218  << " Unwrapped SC has " << npfclusters << " ECAL sub-clusters"
1219  << " and " << npfpsclusters << " PreShower layers 1 & 2 clusters!"
1220  << std::endl;
1221  return true;
1222  }
1223 
1224 
1225 
1226  int PFEGammaAlgo::attachPSClusters(const ClusterElement* ecalclus,
1227  ClusterMap::mapped_type& eslist) {
1228  if( ecalclus->clusterRef()->layer() == PFLayer::ECAL_BARREL ) return 0;
1229  edm::Ptr<reco::PFCluster> clusptr = refToPtr(ecalclus->clusterRef());
1230  EEtoPSElement ecalkey = std::make_pair(clusptr.key(),clusptr);
1231  auto assc_ps = std::equal_range(eetops_->cbegin(),
1232  eetops_->cend(),
1233  ecalkey,
1234  comparePSMapByKey);
1235  for( const auto& ps1 : _splayedblock[reco::PFBlockElement::PS1] ) {
1236  edm::Ptr<reco::PFCluster> temp = refToPtr(ps1.first->clusterRef());
1237  for( auto pscl = assc_ps.first; pscl != assc_ps.second; ++pscl ) {
1238  if( pscl->second == temp ) {
1239  const ClusterElement* pstemp =
1240  docast(const ClusterElement*,ps1.first);
1241  eslist.push_back( PFClusterFlaggedElement(pstemp,true) );
1242  }
1243  }
1244  }
1245  for( const auto& ps2 : _splayedblock[reco::PFBlockElement::PS2] ) {
1246  edm::Ptr<reco::PFCluster> temp = refToPtr(ps2.first->clusterRef());
1247  for( auto pscl = assc_ps.first; pscl != assc_ps.second; ++pscl ) {
1248  if( pscl->second == temp ) {
1249  const ClusterElement* pstemp =
1250  docast(const ClusterElement*,ps2.first);
1251  eslist.push_back( PFClusterFlaggedElement(pstemp,true) );
1252  }
1253  }
1254  }
1255  return eslist.size();
1256  }
1257 
1259  #ifdef PFLOW_DEBUG
1260  edm::LogVerbatim("PFEGammaAlgo")
1261  //<< "Dumping current block: " << std::endl << *_currentblock << std::endl
1262  << "Dumping " << _refinableObjects.size()
1263  << " refinable objects for this block: " << std::endl;
1264  for( const auto& ro : _refinableObjects ) {
1265  std::stringstream info;
1266  info << "Refinable Object:" << std::endl;
1267  if( ro.parentSC ) {
1268  info << "\tSuperCluster element attached to object:" << std::endl
1269  << '\t';
1270  ro.parentSC->Dump(info,"\t");
1271  info << std::endl;
1272  }
1273  if( ro.electronSeed.isNonnull() ) {
1274  info << "\tGSF element attached to object:" << std::endl;
1275  ro.primaryGSFs.front().first->Dump(info,"\t");
1276  info << std::endl;
1277  info << "firstBrem : " << ro.firstBrem
1278  << " lateBrem : " << ro.lateBrem
1279  << " nBrems with cluster : " << ro.nBremsWithClusters
1280  << std::endl;;
1281  if( ro.electronClusters.size() && ro.electronClusters[0] ) {
1282  info << "electron cluster : ";
1283  ro.electronClusters[0]->Dump(info,"\t");
1284  info << std::endl;
1285  } else {
1286  info << " no electron cluster." << std::endl;
1287  }
1288  }
1289  if( ro.primaryKFs.size() ) {
1290  info << "\tPrimary KF tracks attached to object: " << std::endl;
1291  for( const auto& kf : ro.primaryKFs ) {
1292  kf.first->Dump(info,"\t");
1293  info << std::endl;
1294  }
1295  }
1296  if( ro.secondaryKFs.size() ) {
1297  info << "\tSecondary KF tracks attached to object: " << std::endl;
1298  for( const auto& kf : ro.secondaryKFs ) {
1299  kf.first->Dump(info,"\t");
1300  info << std::endl;
1301  }
1302  }
1303  if( ro.brems.size() ) {
1304  info << "\tBrem tangents attached to object: " << std::endl;
1305  for( const auto& brem : ro.brems ) {
1306  brem.first->Dump(info,"\t");
1307  info << std::endl;
1308  }
1309  }
1310  if( ro.ecalclusters.size() ) {
1311  info << "\tECAL clusters attached to object: " << std::endl;
1312  for( const auto& clus : ro.ecalclusters ) {
1313  clus.first->Dump(info,"\t");
1314  info << std::endl;
1315  if( ro.ecal2ps.find(clus.first) != ro.ecal2ps.end() ) {
1316  for( const auto& psclus : ro.ecal2ps.at(clus.first) ) {
1317  info << "\t\t Attached PS Cluster: ";
1318  psclus.first->Dump(info,"");
1319  info << std::endl;
1320  }
1321  }
1322  }
1323  }
1324  edm::LogVerbatim("PFEGammaAlgo") << info.str();
1325  }
1326  #endif
1327  }
1328 
1329  // look through our KF tracks in this block and match
1330  void PFEGammaAlgo::
1334  std::multimap<double, unsigned> matchedGSFs, matchedECALs;
1335  for( auto& kftrack : _splayedblock[reco::PFBlockElement::TRACK] ) {
1336  matchedGSFs.clear();
1337  _currentblock->associatedElements(kftrack.first->index(), _currentlinks,
1338  matchedGSFs,
1341  if( !matchedGSFs.size() ) { // only run this is we aren't associated to GSF
1342  LesserByDistance closestTrackToECAL(_currentblock,_currentlinks,
1343  &kftrack);
1344  auto ecalbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1345  auto ecalend = _splayedblock[reco::PFBlockElement::ECAL].end();
1346  std::partial_sort(ecalbegin,ecalbegin+1,ecalend,closestTrackToECAL);
1347  PFFlaggedElement& closestECAL =
1349  const float dist = _currentblock->dist(kftrack.first->index(),
1350  closestECAL.first->index(),
1351  _currentlinks,
1353  bool inSC = false;
1354  for( auto& sc : _splayedblock[reco::PFBlockElement::SC] ) {
1355  float dist_sc = _currentblock->dist(sc.first->index(),
1356  closestECAL.first->index(),
1357  _currentlinks,
1359  if( dist_sc != -1.0f) { inSC = true; break; }
1360  }
1361 
1362  if( dist != -1.0f && closestECAL.second ) {
1363  bool gsflinked = false;
1364  // check that this cluster is not associated to a GSF track
1365  for(const auto& gsfflag : _splayedblock[reco::PFBlockElement::GSF]) {
1366  const reco::PFBlockElementGsfTrack* elemasgsf =
1367  docast(const reco::PFBlockElementGsfTrack*,gsfflag.first);
1369  continue; // keep clusters that have a found conversion GSF near
1370  }
1371  matchedECALs.clear();
1372  _currentblock->associatedElements(elemasgsf->index(), _currentlinks,
1373  matchedECALs,
1376  if( matchedECALs.size() ) {
1377  if( matchedECALs.begin()->second == closestECAL.first->index() ) {
1378  gsflinked = true;
1379  break;
1380  }
1381  }
1382  } // loop over primary GSF tracks
1383  if( !gsflinked && !inSC) {
1384  // determine if we should remove the matched cluster
1385  const reco::PFBlockElementTrack * kfEle =
1386  docast(const reco::PFBlockElementTrack*,kftrack.first);
1387  const reco::TrackRef trackref = kfEle->trackRef();
1388  const unsigned Algo = trackref->algo();
1389  const int nexhits =
1390  trackref->hitPattern().numberOfLostHits(HitPattern::MISSING_INNER_HITS);
1391  bool fromprimaryvertex = false;
1392  for( auto vtxtks = cfg_.primaryVtx->tracks_begin();
1393  vtxtks != cfg_.primaryVtx->tracks_end(); ++ vtxtks ) {
1394  if( trackref == vtxtks->castTo<reco::TrackRef>() ) {
1395  fromprimaryvertex = true;
1396  break;
1397  }
1398  }// loop over tracks in primary vertex
1399  // if associated to good non-GSF matched track remove this cluster
1400  if( Algo < 9 && nexhits == 0 && fromprimaryvertex ) {
1401  closestECAL.second = false;
1402  } else { // otherwise associate the cluster and KF track
1403  _recoveredlinks.push_back( ElementMap::value_type(closestECAL.first,kftrack.first) );
1404  _recoveredlinks.push_back( ElementMap::value_type(kftrack.first,closestECAL.first) );
1405  }
1406  }
1407  } // found a good closest ECAL match
1408  } // no GSF track matched to KF
1409  } // loop over KF elements
1410  }
1411 
1412  void PFEGammaAlgo::
1413  mergeROsByAnyLink(std::list<PFEGammaAlgo::ProtoEGObject>& ROs) {
1414  if( ROs.size() < 2 ) return; // nothing to do with one or zero ROs
1415  bool check_for_merge = true;
1416  while( check_for_merge ) {
1417  // bugfix for early termination merging loop (15 April 2014)
1418  // check all pairwise combinations in the list
1419  // if one has a merge shuffle it to the front of the list
1420  // if there are no merges left to do we can terminate
1421  for( auto it1 = ROs.begin(); it1 != ROs.end(); ++it1 ) {
1422  TestIfROMergableByLink mergeTest(*it1);
1423  auto find_start = it1; ++find_start;
1424  auto has_merge = std::find_if(find_start,ROs.end(),mergeTest);
1425  if( has_merge != ROs.end() && it1 != ROs.begin() ) {
1426  std::swap(*(ROs.begin()),*it1);
1427  break;
1428  }
1429  }// ensure mergables are shuffled to the front
1430  ProtoEGObject& thefront = ROs.front();
1431  TestIfROMergableByLink mergeTest(thefront);
1432  auto mergestart = ROs.begin(); ++mergestart;
1433  auto nomerge = std::partition(mergestart,ROs.end(),mergeTest);
1434  if( nomerge != mergestart ) {
1435  LOGDRESSED("PFEGammaAlgo::mergeROsByAnyLink()")
1436  << "Found objects " << std::distance(mergestart,nomerge)
1437  << " to merge by links to the front!" << std::endl;
1438  for( auto roToMerge = mergestart; roToMerge != nomerge; ++roToMerge) {
1439  thefront.ecalclusters.insert(thefront.ecalclusters.end(),
1440  roToMerge->ecalclusters.begin(),
1441  roToMerge->ecalclusters.end());
1442  thefront.ecal2ps.insert(roToMerge->ecal2ps.begin(),
1443  roToMerge->ecal2ps.end());
1444  thefront.secondaryKFs.insert(thefront.secondaryKFs.end(),
1445  roToMerge->secondaryKFs.begin(),
1446  roToMerge->secondaryKFs.end());
1447 
1448  thefront.localMap.insert(thefront.localMap.end(),
1449  roToMerge->localMap.begin(),
1450  roToMerge->localMap.end());
1451  // TO FIX -> use best (E_gsf - E_clustersum)/E_GSF
1452  if( !thefront.parentSC && roToMerge->parentSC ) {
1453  thefront.parentSC = roToMerge->parentSC;
1454  }
1455  if( thefront.electronSeed.isNull() &&
1456  roToMerge->electronSeed.isNonnull() ) {
1457  thefront.electronSeed = roToMerge->electronSeed;
1458  thefront.primaryGSFs.insert(thefront.primaryGSFs.end(),
1459  roToMerge->primaryGSFs.begin(),
1460  roToMerge->primaryGSFs.end());
1461  thefront.primaryKFs.insert(thefront.primaryKFs.end(),
1462  roToMerge->primaryKFs.begin(),
1463  roToMerge->primaryKFs.end());
1464  thefront.brems.insert(thefront.brems.end(),
1465  roToMerge->brems.begin(),
1466  roToMerge->brems.end());
1467  thefront.electronClusters = roToMerge->electronClusters;
1468  thefront.nBremsWithClusters = roToMerge->nBremsWithClusters;
1469  thefront.firstBrem = roToMerge->firstBrem;
1470  thefront.lateBrem = roToMerge->lateBrem;
1471  } else if ( thefront.electronSeed.isNonnull() &&
1472  roToMerge->electronSeed.isNonnull()) {
1473  LOGWARN("PFEGammaAlgo::mergeROsByAnyLink")
1474  << "Need to implement proper merging of two gsf candidates!"
1475  << std::endl;
1476  }
1477  }
1478  ROs.erase(mergestart,nomerge);
1479  // put the merged element in the back of the cleaned list
1480  ROs.push_back(ROs.front());
1481  ROs.pop_front();
1482  } else {
1483  check_for_merge = false;
1484  }
1485  }
1486  LOGDRESSED("PFEGammaAlgo::mergeROsByAnyLink()")
1487  << "After merging by links there are: " << ROs.size()
1488  << " refinable EGamma objects!" << std::endl;
1489  }
1490 
1491 // pull in KF tracks associated to the RO but not closer to another
1492 // NB: in initializeProtoCands() we forced the GSF tracks not to be
1493 // from a conversion, but we will leave a protection here just in
1494 // case things change in the future
1495 void PFEGammaAlgo::
1500  auto KFbegin = _splayedblock[reco::PFBlockElement::TRACK].begin();
1501  auto KFend = _splayedblock[reco::PFBlockElement::TRACK].end();
1502  for( auto& gsfflagged : RO.primaryGSFs ) {
1503  const PFGSFElement* seedtk = gsfflagged.first;
1504  // don't process SC-only ROs or secondary seeded ROs
1505  if( RO.electronSeed.isNull() || seedtk->trackType(convType) ) continue;
1506  NotCloserToOther<reco::PFBlockElement::GSF,reco::PFBlockElement::TRACK>
1507  gsfTrackToKFs(_currentblock,_currentlinks,seedtk);
1508  // get KF tracks not closer to another and not already used
1509  auto notlinked = std::partition(KFbegin,KFend,gsfTrackToKFs);
1510  // attach tracks and set as used
1511  for( auto kft = KFbegin; kft != notlinked; ++kft ) {
1512  const PFKFElement* elemaskf =
1513  docast(const PFKFElement*,kft->first);
1514  // don't care about things that aren't primaries or directly
1515  // associated secondary tracks
1516  if( isPrimaryTrack(*elemaskf,*seedtk) &&
1517  !elemaskf->trackType(convType) ) {
1518  kft->second = false;
1519  RO.primaryKFs.push_back(std::make_pair(elemaskf,true));
1520  RO.localMap.push_back( ElementMap::value_type(seedtk,elemaskf) );
1521  RO.localMap.push_back( ElementMap::value_type(elemaskf,seedtk) );
1522  } else if ( elemaskf->trackType(convType) ) {
1523  kft->second = false;
1524  RO.secondaryKFs.push_back(std::make_pair(elemaskf,true));
1525  RO.localMap.push_back( ElementMap::value_type(seedtk,elemaskf) );
1526  RO.localMap.push_back( ElementMap::value_type(elemaskf,seedtk) );
1527  }
1528  }// loop on closest KFs not closer to other GSFs
1529  } // loop on GSF primaries on RO
1530 }
1531 
1532 void PFEGammaAlgo::
1537  auto KFbegin = _splayedblock[reco::PFBlockElement::TRACK].begin();
1538  auto KFend = _splayedblock[reco::PFBlockElement::TRACK].end();
1539  for( auto& kfflagged : RO.primaryKFs ) {
1540  const PFKFElement* primkf = kfflagged.first;
1541  // don't process SC-only ROs or secondary seeded ROs
1542  if( primkf->trackType(convType) ) {
1543  throw cms::Exception("PFEGammaAlgo::linkRefinableObjectPrimaryKFsToSecondaryKFs()")
1544  << "A KF track from conversion has been assigned as a primary!!"
1545  << std::endl;
1546  }
1547  NotCloserToOther<reco::PFBlockElement::TRACK,reco::PFBlockElement::TRACK,true>
1548  kfTrackToKFs(_currentblock,_currentlinks,primkf);
1549  // get KF tracks not closer to another and not already used
1550  auto notlinked = std::partition(KFbegin,KFend,kfTrackToKFs);
1551  // attach tracks and set as used
1552  for( auto kft = KFbegin; kft != notlinked; ++kft ) {
1553  const PFKFElement* elemaskf =
1554  docast(const PFKFElement*,kft->first);
1555  // don't care about things that aren't primaries or directly
1556  // associated secondary tracks
1557  if( elemaskf->trackType(convType) ) {
1558  kft->second = false;
1559  RO.secondaryKFs.push_back(std::make_pair(elemaskf,true));
1560  RO.localMap.push_back( ElementMap::value_type(primkf,elemaskf) );
1561  RO.localMap.push_back( ElementMap::value_type(elemaskf,primkf) );
1562  }
1563  }// loop on closest KFs not closer to other KFs
1564  } // loop on KF primaries on RO
1565 }
1566 
1567 // try to associate the tracks to cluster elements which are not used
1568 void PFEGammaAlgo::
1571  RO.electronClusters.push_back(NULL);
1572  return;
1573  }
1574  auto ECALbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1575  auto ECALend = _splayedblock[reco::PFBlockElement::ECAL].end();
1576  for( auto& primgsf : RO.primaryGSFs ) {
1577  NotCloserToOther<reco::PFBlockElement::GSF,reco::PFBlockElement::ECAL>
1578  gsfTracksToECALs(_currentblock,_currentlinks,primgsf.first);
1579  CompatibleEoPOut eoverp_test(primgsf.first);
1580  // get set of matching ecals not already in SC
1581  auto notmatched_blk = std::partition(ECALbegin,ECALend,gsfTracksToECALs);
1582  notmatched_blk = std::partition(ECALbegin,notmatched_blk,eoverp_test);
1583  // get set of matching ecals already in the RO
1584  auto notmatched_sc = std::partition(RO.ecalclusters.begin(),
1585  RO.ecalclusters.end(),
1586  gsfTracksToECALs);
1587  notmatched_sc = std::partition(RO.ecalclusters.begin(),
1588  notmatched_sc,
1589  eoverp_test);
1590  // look inside the SC for the ECAL cluster
1591  for( auto ecal = RO.ecalclusters.begin(); ecal != notmatched_sc; ++ecal ) {
1592  const PFClusterElement* elemascluster =
1593  docast(const PFClusterElement*,ecal->first);
1594  PFClusterFlaggedElement temp(elemascluster,true);
1595  LOGDRESSED("PFEGammaAlgo::linkGSFTracktoECAL()")
1596  << "Found a cluster already in RO by GSF extrapolation"
1597  << " at ECAL surface!" << std::endl
1598  << *elemascluster << std::endl;
1599 
1600  RO.localMap.push_back(ElementMap::value_type(primgsf.first,temp.first));
1601  RO.localMap.push_back(ElementMap::value_type(temp.first,primgsf.first));
1602  }
1603  // look outside the SC for the ecal cluster
1604  for( auto ecal = ECALbegin; ecal != notmatched_blk; ++ecal ) {
1605  const PFClusterElement* elemascluster =
1606  docast(const PFClusterElement*,ecal->first);
1607  LOGDRESSED("PFEGammaAlgo::linkGSFTracktoECAL()")
1608  << "Found a cluster not already in RO by GSF extrapolation"
1609  << " at ECAL surface!" << std::endl
1610  << *elemascluster << std::endl;
1611  if( addPFClusterToROSafe(elemascluster,RO) ) {
1612  attachPSClusters(elemascluster,RO.ecal2ps[elemascluster]);
1613  RO.localMap.push_back(ElementMap::value_type(primgsf.first,elemascluster));
1614  RO.localMap.push_back(ElementMap::value_type(elemascluster,primgsf.first));
1615  ecal->second = false;
1616  }
1617  }
1618  }
1619 }
1620 
1621 // try to associate the tracks to cluster elements which are not used
1622 void PFEGammaAlgo::
1624  if( !_splayedblock[reco::PFBlockElement::HCAL].size() ) return;
1625  auto HCALbegin = _splayedblock[reco::PFBlockElement::HCAL].begin();
1626  auto HCALend = _splayedblock[reco::PFBlockElement::HCAL].end();
1627  for( auto& primgsf : RO.primaryGSFs ) {
1628  NotCloserToOther<reco::PFBlockElement::GSF,reco::PFBlockElement::HCAL>
1629  gsfTracksToHCALs(_currentblock,_currentlinks,primgsf.first);
1630  CompatibleEoPOut eoverp_test(primgsf.first);
1631  auto notmatched = std::partition(HCALbegin,HCALend,gsfTracksToHCALs);
1632  for( auto hcal = HCALbegin; hcal != notmatched; ++hcal ) {
1633  const PFClusterElement* elemascluster =
1634  docast(const PFClusterElement*,hcal->first);
1635  PFClusterFlaggedElement temp(elemascluster,true);
1636  LOGDRESSED("PFEGammaAlgo::linkGSFTracktoECAL()")
1637  << "Found an HCAL cluster associated to GSF extrapolation"
1638  << std::endl;
1639  RO.hcalClusters.push_back(temp);
1640  RO.localMap.push_back( ElementMap::value_type(primgsf.first,temp.first) );
1641  RO.localMap.push_back( ElementMap::value_type(temp.first,primgsf.first) );
1642  hcal->second = false;
1643  }
1644  }
1645 }
1646 
1647 // try to associate the tracks to cluster elements which are not used
1648 void PFEGammaAlgo::
1650  if( !_splayedblock[reco::PFBlockElement::ECAL].size() ) return;
1651  for( auto& primkf : RO.primaryKFs ) linkKFTrackToECAL(primkf,RO);
1652  for( auto& secdkf : RO.secondaryKFs ) linkKFTrackToECAL(secdkf,RO);
1653 }
1654 
1655 void
1656 PFEGammaAlgo::linkKFTrackToECAL(const KFFlaggedElement& kfflagged,
1657  ProtoEGObject& RO) {
1658  std::vector<PFClusterFlaggedElement>& currentECAL = RO.ecalclusters;
1659  auto ECALbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1660  auto ECALend = _splayedblock[reco::PFBlockElement::ECAL].end();
1661  NotCloserToOther<reco::PFBlockElement::TRACK,reco::PFBlockElement::ECAL>
1662  kfTrackToECALs(_currentblock,_currentlinks,kfflagged.first);
1663  NotCloserToOther<reco::PFBlockElement::GSF,reco::PFBlockElement::ECAL>
1664  kfTrackGSFToECALs(_currentblock,_currentlinks,kfflagged.first);
1665  //get the ECAL elements not used and not closer to another KF
1666  auto notmatched_sc = std::partition(currentECAL.begin(),
1667  currentECAL.end(),
1668  kfTrackToECALs);
1669  //get subset ECAL elements not used or closer to another GSF of any type
1670  notmatched_sc = std::partition(currentECAL.begin(),
1671  notmatched_sc,
1672  kfTrackGSFToECALs);
1673  for( auto ecalitr = currentECAL.begin(); ecalitr != notmatched_sc;
1674  ++ecalitr ) {
1675  const PFClusterElement* elemascluster =
1676  docast(const PFClusterElement*,ecalitr->first);
1677  PFClusterFlaggedElement flaggedclus(elemascluster,true);
1678 
1679  LOGDRESSED("PFEGammaAlgo::linkKFTracktoECAL()")
1680  << "Found a cluster already in RO by KF extrapolation"
1681  << " at ECAL surface!" << std::endl
1682  << *elemascluster << std::endl;
1683  RO.localMap.push_back(ElementMap::value_type(elemascluster,
1684  kfflagged.first));
1685  RO.localMap.push_back(ElementMap::value_type(kfflagged.first,
1686  elemascluster));
1687  }
1688  //get the ECAL elements not used and not closer to another KF
1689  auto notmatched_blk = std::partition(ECALbegin,ECALend,kfTrackToECALs);
1690  //get subset ECAL elements not used or closer to another GSF of any type
1691  notmatched_blk = std::partition(ECALbegin,notmatched_blk,kfTrackGSFToECALs);
1692  for( auto ecalitr = ECALbegin; ecalitr != notmatched_blk; ++ecalitr ) {
1693  const PFClusterElement* elemascluster =
1694  docast(const PFClusterElement*,ecalitr->first);
1695  if( addPFClusterToROSafe(elemascluster,RO) ) {
1696  attachPSClusters(elemascluster,RO.ecal2ps[elemascluster]);
1697  ecalitr->second = false;
1698 
1699  LOGDRESSED("PFEGammaAlgo::linkKFTracktoECAL()")
1700  << "Found a cluster not in RO by KF extrapolation"
1701  << " at ECAL surface!" << std::endl
1702  << *elemascluster << std::endl;
1703  RO.localMap.push_back(ElementMap::value_type(elemascluster,
1704  kfflagged.first));
1705  RO.localMap.push_back( ElementMap::value_type(kfflagged.first,
1706  elemascluster));
1707  }
1708  }
1709 }
1710 
1711 void PFEGammaAlgo::
1713  if( !RO.brems.size() ) return;
1714  int FirstBrem = -1;
1715  int TrajPos = -1;
1716  int lastBremTrajPos = -1;
1717  for( auto& bremflagged : RO.brems ) {
1718  bool has_clusters = false;
1719  TrajPos = (bremflagged.first->indTrajPoint())-2;
1720  auto ECALbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1721  auto ECALend = _splayedblock[reco::PFBlockElement::ECAL].end();
1722  NotCloserToOther<reco::PFBlockElement::BREM,reco::PFBlockElement::ECAL>
1723  BremToECALs(_currentblock,_currentlinks,bremflagged.first);
1724  // check for late brem using clusters already in the SC
1725  auto RSCBegin = RO.ecalclusters.begin();
1726  auto RSCEnd = RO.ecalclusters.end();
1727  auto notmatched_rsc = std::partition(RSCBegin,RSCEnd,BremToECALs);
1728  for( auto ecal = RSCBegin; ecal != notmatched_rsc; ++ecal ) {
1729  float deta =
1730  std::abs( ecal->first->clusterRef()->positionREP().eta() -
1731  bremflagged.first->positionAtECALEntrance().eta() );
1732  if( deta < 0.015 ) {
1733  has_clusters = true;
1734  if( lastBremTrajPos == -1 || lastBremTrajPos < TrajPos ) {
1735  lastBremTrajPos = TrajPos;
1736  }
1737  if( FirstBrem == -1 || TrajPos < FirstBrem ) { // set brem information
1738  FirstBrem = TrajPos;
1739  RO.firstBrem = TrajPos;
1740  }
1741  LOGDRESSED("PFEGammaAlgo::linkBremToECAL()")
1742  << "Found a cluster already in SC linked to brem extrapolation"
1743  << " at ECAL surface!" << std::endl;
1744  RO.localMap.push_back( ElementMap::value_type(ecal->first,bremflagged.first) );
1745  RO.localMap.push_back( ElementMap::value_type(bremflagged.first,ecal->first) );
1746  }
1747  }
1748  // grab new clusters from the block (ensured to not be late brem)
1749  auto notmatched_block = std::partition(ECALbegin,ECALend,BremToECALs);
1750  for( auto ecal = ECALbegin; ecal != notmatched_block; ++ecal ) {
1751  float deta =
1752  std::abs( ecal->first->clusterRef()->positionREP().eta() -
1753  bremflagged.first->positionAtECALEntrance().eta() );
1754  if( deta < 0.015 ) {
1755  has_clusters = true;
1756  if( lastBremTrajPos == -1 || lastBremTrajPos < TrajPos ) {
1757  lastBremTrajPos = TrajPos;
1758  }
1759  if( FirstBrem == -1 || TrajPos < FirstBrem ) { // set brem information
1760 
1761  FirstBrem = TrajPos;
1762  RO.firstBrem = TrajPos;
1763  }
1764  const PFClusterElement* elemasclus =
1765  docast(const PFClusterElement*,ecal->first);
1766  if( addPFClusterToROSafe(elemasclus,RO) ) {
1767  attachPSClusters(elemasclus,RO.ecal2ps[elemasclus]);
1768 
1769  RO.localMap.push_back( ElementMap::value_type(ecal->first,bremflagged.first) );
1770  RO.localMap.push_back( ElementMap::value_type(bremflagged.first,ecal->first) );
1771  ecal->second = false;
1772  LOGDRESSED("PFEGammaAlgo::linkBremToECAL()")
1773  << "Found a cluster not already associated by brem extrapolation"
1774  << " at ECAL surface!" << std::endl;
1775  }
1776 
1777  }
1778  }
1779  if(has_clusters) {
1780  if( RO.nBremsWithClusters == -1 ) RO.nBremsWithClusters = 0;
1781  ++RO.nBremsWithClusters;
1782  }
1783  }
1784 }
1785 
1786 void PFEGammaAlgo::
1788  IsConversionTrack<reco::PFBlockElementTrack> isConvKf;
1789  auto KFbegin = _splayedblock[reco::PFBlockElement::TRACK].begin();
1790  auto KFend = _splayedblock[reco::PFBlockElement::TRACK].end();
1791  auto BeginROskfs = RO.secondaryKFs.begin();
1792  auto EndROskfs = RO.secondaryKFs.end();
1793  auto ronotconv = std::partition(BeginROskfs,EndROskfs,isConvKf);
1794  size_t convkfs_end = std::distance(BeginROskfs,ronotconv);
1795  for( size_t idx = 0; idx < convkfs_end; ++idx ) {
1796  const std::vector<PFKFFlaggedElement>& secKFs = RO.secondaryKFs; //we want the entry at the index but we allocate to secondaryKFs in loop which invalidates all iterators, references and pointers, hence we need to get the entry fresh each time
1797  NotCloserToOther<reco::PFBlockElement::TRACK,
1799  true>
1800  TracksToTracks(_currentblock,_currentlinks, secKFs[idx].first);
1801  auto notmatched = std::partition(KFbegin,KFend,TracksToTracks);
1802  notmatched = std::partition(KFbegin,notmatched,isConvKf);
1803  for( auto kf = KFbegin; kf != notmatched; ++kf ) {
1804  const reco::PFBlockElementTrack* elemaskf =
1805  docast(const reco::PFBlockElementTrack*,kf->first);
1806  RO.secondaryKFs.push_back( std::make_pair(elemaskf,true) );
1807  RO.localMap.push_back( ElementMap::value_type(secKFs[idx].first,kf->first) );
1808  RO.localMap.push_back( ElementMap::value_type(kf->first,secKFs[idx].first) );
1809  kf->second = false;
1810  }
1811  }
1812 }
1813 
1814 void PFEGammaAlgo::
1816  ProtoEGObject& RO) {
1817  IsConversionTrack<reco::PFBlockElementTrack> isConvKf;
1818  auto KFbegin = _splayedblock[reco::PFBlockElement::TRACK].begin();
1819  auto KFend = _splayedblock[reco::PFBlockElement::TRACK].end();
1820  for( auto& ecal : RO.ecalclusters ) {
1821  NotCloserToOther<reco::PFBlockElement::ECAL,
1823  true>
1824  ECALToTracks(_currentblock,_currentlinks,ecal.first);
1825  auto notmatchedkf = std::partition(KFbegin,KFend,ECALToTracks);
1826  auto notconvkf = std::partition(KFbegin,notmatchedkf,isConvKf);
1827  // add identified KF conversion tracks
1828  for( auto kf = KFbegin; kf != notconvkf; ++kf ) {
1829  const reco::PFBlockElementTrack* elemaskf =
1830  docast(const reco::PFBlockElementTrack*,kf->first);
1831  RO.secondaryKFs.push_back( std::make_pair(elemaskf,true) );
1832  RO.localMap.push_back( ElementMap::value_type(ecal.first,elemaskf) );
1833  RO.localMap.push_back( ElementMap::value_type(elemaskf,ecal.first) );
1834  kf->second = false;
1835  }
1836  // go through non-conv-identified kfs and check MVA to add conversions
1837  for( auto kf = notconvkf; kf != notmatchedkf; ++kf ) {
1838  float mvaval = EvaluateSingleLegMVA(hoc,_currentblock,
1839  *cfg_.primaryVtx,
1840  kf->first->index());
1841  if(mvaval > cfg_.mvaConvCut) {
1842  const reco::PFBlockElementTrack* elemaskf =
1843  docast(const reco::PFBlockElementTrack*,kf->first);
1844  RO.secondaryKFs.push_back( std::make_pair(elemaskf,true) );
1845  RO.localMap.push_back( ElementMap::value_type(ecal.first,elemaskf) );
1846  RO.localMap.push_back( ElementMap::value_type(elemaskf,ecal.first) );
1847  kf->second = false;
1848 
1849  RO.singleLegConversionMvaMap.insert(std::make_pair(elemaskf, mvaval));
1850  }
1851  }
1852  }
1853 }
1854 
1855 void PFEGammaAlgo::
1857  auto ECALbegin = _splayedblock[reco::PFBlockElement::ECAL].begin();
1858  auto ECALend = _splayedblock[reco::PFBlockElement::ECAL].end();
1859  for( auto& skf : RO.secondaryKFs ) {
1860  NotCloserToOther<reco::PFBlockElement::TRACK,
1862  false>
1863  TracksToECALwithCut(_currentblock,_currentlinks,skf.first,1.5f);
1864  auto notmatched = std::partition(ECALbegin,ECALend,TracksToECALwithCut);
1865  for( auto ecal = ECALbegin; ecal != notmatched; ++ecal ) {
1866  const reco::PFBlockElementCluster* elemascluster =
1867  docast(const reco::PFBlockElementCluster*,ecal->first);
1868  if( addPFClusterToROSafe(elemascluster,RO) ) {
1869  attachPSClusters(elemascluster,RO.ecal2ps[elemascluster]);
1870  RO.localMap.push_back(ElementMap::value_type(skf.first,elemascluster));
1871  RO.localMap.push_back(ElementMap::value_type(elemascluster,skf.first));
1872  ecal->second = false;
1873  }
1874  }
1875  }
1876 }
1877 
1878 void PFEGammaAlgo::
1880  const std::list<PFEGammaAlgo::ProtoEGObject>& ROs,
1881  reco::PFCandidateCollection& egcands,
1883  // reset output collections
1884  egcands.clear();
1885  egxs.clear();
1886  refinedscs_.clear();
1887  egcands.reserve(ROs.size());
1888  egxs.reserve(ROs.size());
1889  refinedscs_.reserve(ROs.size());
1890  for( auto& RO : ROs ) {
1891  if( RO.ecalclusters.size() == 0 &&
1893 
1894  reco::PFCandidate cand;
1896  if( RO.primaryGSFs.size() || RO.primaryKFs.size() ) {
1897  cand.setPdgId(-11); // anything with a primary track is an electron
1898  } else {
1899  cand.setPdgId(22); // anything with no primary track is a photon
1900  }
1901  if( RO.primaryKFs.size() ) {
1902  cand.setCharge(RO.primaryKFs[0].first->trackRef()->charge());
1903  xtra.setKfTrackRef(RO.primaryKFs[0].first->trackRef());
1904  cand.setTrackRef(RO.primaryKFs[0].first->trackRef());
1905  cand.addElementInBlock(_currentblock,RO.primaryKFs[0].first->index());
1906  }
1907  if( RO.primaryGSFs.size() ) {
1908  cand.setCharge(RO.primaryGSFs[0].first->GsftrackRef()->chargeMode());
1909  xtra.setGsfTrackRef(RO.primaryGSFs[0].first->GsftrackRef());
1910  cand.setGsfTrackRef(RO.primaryGSFs[0].first->GsftrackRef());
1911  cand.addElementInBlock(_currentblock,RO.primaryGSFs[0].first->index());
1912  }
1913  if( RO.parentSC ) {
1914  xtra.setSuperClusterPFECALRef(RO.parentSC->superClusterRef());
1915  // we'll set to the refined supercluster back up in the producer
1916  cand.setSuperClusterRef(RO.parentSC->superClusterRef());
1917  xtra.setSuperClusterRef(RO.parentSC->superClusterRef());
1918  cand.addElementInBlock(_currentblock,RO.parentSC->index());
1919  }
1920  // add brems
1921  for( const auto& bremflagged : RO.brems ) {
1922  const PFBremElement* brem = bremflagged.first;
1923  cand.addElementInBlock(_currentblock,brem->index());
1924  }
1925  // add clusters and ps clusters
1926  for( const auto& ecal : RO.ecalclusters ) {
1927  const PFClusterElement* clus = ecal.first;
1928  cand.addElementInBlock(_currentblock,clus->index());
1929  for( auto& ps : RO.ecal2ps.at(clus) ) {
1930  const PFClusterElement* psclus = ps.first;
1931  cand.addElementInBlock(_currentblock,psclus->index());
1932  }
1933  }
1934  // add secondary tracks
1935  for( const auto& secdkf : RO.secondaryKFs ) {
1936  const PFKFElement* kf = secdkf.first;
1938  const reco::ConversionRefVector& convrefs = kf->convRefs();
1939  bool no_conv_ref = true;
1940  for( const auto& convref : convrefs ) {
1941  if( convref.isNonnull() && convref.isAvailable() ) {
1942  xtra.addConversionRef(convref);
1943  no_conv_ref = false;
1944  }
1945  }
1946  if( no_conv_ref ) {
1947  //single leg conversions
1948 
1949  //look for stored mva value in map or else recompute
1950  const auto &mvavalmapped = RO.singleLegConversionMvaMap.find(kf);
1951  //FIXME: Abuse single mva value to store both provenance and single leg mva score
1952  //by storing 3.0 + mvaval
1953  float mvaval = ( mvavalmapped != RO.singleLegConversionMvaMap.end() ?
1954  mvavalmapped->second :
1956  *cfg_.primaryVtx,
1957  kf->index()) );
1958 
1959  xtra.addSingleLegConvTrackRefMva(std::make_pair(kf->trackRef(),mvaval));
1960  }
1961  }
1962 
1963  // build the refined supercluster from those clusters left in the cand
1964  refinedscs_.push_back(buildRefinedSuperCluster(RO));
1965 
1966  const reco::SuperCluster& the_sc = refinedscs_.back();
1967  // with the refined SC in hand we build a naive candidate p4
1968  // and set the candidate ECAL position to either the barycenter of the
1969  // supercluster (if super-cluster present) or the seed of the
1970  // new SC generated by the EGAlgo
1971  const double scE = the_sc.energy();
1972  if( scE != 0.0 ) {
1973  const math::XYZPoint& seedPos = the_sc.seed()->position();
1974  math::XYZVector egDir = the_sc.position()-cfg_.primaryVtx->position();
1975  egDir = egDir.Unit();
1976  cand.setP4(math::XYZTLorentzVector(scE*egDir.x(),
1977  scE*egDir.y(),
1978  scE*egDir.z(),
1979  scE ));
1980  math::XYZPointF ecalPOS_f(seedPos.x(),seedPos.y(),seedPos.z());
1981  cand.setPositionAtECALEntrance(ecalPOS_f);
1982  cand.setEcalEnergy(the_sc.rawEnergy(),the_sc.energy());
1983  } else if ( cfg_.produceEGCandsWithNoSuperCluster &&
1984  RO.primaryGSFs.size() ) {
1985  const PFGSFElement* gsf = RO.primaryGSFs[0].first;
1986  reco::GsfTrackRef gref = gsf->GsftrackRef();
1987  math::XYZTLorentzVector p4(gref->pxMode(),gref->pyMode(),
1988  gref->pzMode(),gref->pMode());
1989  cand.setP4(p4);
1991  } else if ( cfg_.produceEGCandsWithNoSuperCluster &&
1992  RO.primaryKFs.size() ) {
1993  const PFKFElement* kf = RO.primaryKFs[0].first;
1994  reco::TrackRef kref = RO.primaryKFs[0].first->trackRef();
1995  math::XYZTLorentzVector p4(kref->px(),kref->py(),kref->pz(),kref->p());
1996  cand.setP4(p4);
1998  }
1999  const float ele_mva_value = calculate_ele_mva(hoc,RO,xtra);
2000  fill_extra_info(RO,xtra);
2001  //std::cout << "PFEG ele_mva: " << ele_mva_value << std::endl;
2002  xtra.setMVA(ele_mva_value);
2003  cand.set_mva_e_pi(ele_mva_value);
2004  egcands.push_back(cand);
2005  egxs.push_back(xtra);
2006  }
2007 }
2008 
2009 float PFEGammaAlgo::
2011  const PFEGammaAlgo::ProtoEGObject& RO,
2013  if( !RO.primaryGSFs.size() ) return -2.0f;
2014  const PFGSFElement* gsfElement = RO.primaryGSFs.front().first;
2015  const PFKFElement* kfElement = NULL;
2016  if( RO.primaryKFs.size() ) kfElement = RO.primaryKFs.front().first;
2017  reco::GsfTrackRef RefGSF= gsfElement->GsftrackRef();
2018  reco::TrackRef RefKF;
2019  constexpr float m_el = 0.000511;
2020  const double Ein_gsf = std::hypot(RefGSF->pMode(),m_el);
2021  double deta_gsfecal = 1e6;
2022  double sigmaEtaEta = 1e-14;
2023  const double Ene_hcalgsf = std::accumulate(RO.hcalClusters.begin(),
2024  RO.hcalClusters.end(),
2025  0.0,
2026  [](const double a,
2027  const PFClusterFlaggedElement& b)
2028  { return a + b.first->clusterRef()->energy(); }
2029  );
2030  if( RO.primaryKFs.size() ) {
2031  RefKF = RO.primaryKFs.front().first->trackRef();
2032  }
2033  const double Eout_gsf = gsfElement->Pout().t();
2034  const double Etaout_gsf = gsfElement->positionAtECALEntrance().eta();
2035  double FirstEcalGsfEnergy(0.0), OtherEcalGsfEnergy(0.0), EcalBremEnergy(0.0);
2036  //shower shape of cluster closest to gsf track
2037  std::vector<const reco::PFCluster*> gsfcluster;
2038  for( const auto& ecal : RO.ecalclusters ) {
2039  const double cenergy = ecal.first->clusterRef()->correctedEnergy();
2040  ElementMap::value_type gsfToEcal(gsfElement,ecal.first);
2041  ElementMap::value_type kfToEcal(kfElement,ecal.first);
2042  bool hasgsf =
2043  ( std::find(RO.localMap.begin(), RO.localMap.end(), gsfToEcal) ==
2044  RO.localMap.end() );
2045  bool haskf =
2046  ( std::find(RO.localMap.begin(), RO.localMap.end(), kfToEcal) ==
2047  RO.localMap.end() );
2048  bool hasbrem = false;
2049  for( const auto& brem : RO.brems ) {
2050  ElementMap::value_type bremToEcal(brem.first,ecal.first);
2051  if( std::find(RO.localMap.begin(), RO.localMap.end(), bremToEcal) !=
2052  RO.localMap.end() ) {
2053  hasbrem = true;
2054  }
2055  }
2056  if( hasbrem && ecal.first != RO.electronClusters[0] ) {
2057  EcalBremEnergy += cenergy;
2058  }
2059  if( !hasbrem && ecal.first != RO.electronClusters[0] ) {
2060  if( hasgsf ) OtherEcalGsfEnergy += cenergy;
2061  if( haskf ) EcalBremEnergy += cenergy; // from conv. brem!
2062  if( !(hasgsf || haskf) ) OtherEcalGsfEnergy += cenergy; // stuff from SC
2063  }
2064  }
2065 
2066  if( RO.electronClusters[0] ) {
2067  reco::PFClusterRef cref = RO.electronClusters[0]->clusterRef();
2069  FirstEcalGsfEnergy = cref->correctedEnergy();
2070  deta_gsfecal = cref->positionREP().eta() - Etaout_gsf;
2071  gsfcluster.push_back(&*cref);
2072  PFClusterWidthAlgo pfwidth(gsfcluster);
2073  sigmaEtaEta = pfwidth.pflowSigmaEtaEta();
2074  }
2075 
2076  // brem sequence information
2077  lateBrem = firstBrem = earlyBrem = -1.0f;
2078  if(RO.nBremsWithClusters > 0) {
2079  if (RO.lateBrem == 1) lateBrem = 1.0f;
2080  else lateBrem = 0.0f;
2081  firstBrem = RO.firstBrem;
2082  if(RO.firstBrem < 4) earlyBrem = 1.0f;
2083  else earlyBrem = 0.0f;
2084  }
2085  xtra.setEarlyBrem(earlyBrem);
2086  xtra.setLateBrem(lateBrem);
2087  if( FirstEcalGsfEnergy > 0.0 ) {
2088  if( RefGSF.isNonnull() ) {
2089  xtra.setGsfTrackPout(gsfElement->Pout());
2090  // normalization observables
2091  const float Pt_gsf = RefGSF->ptMode();
2092  lnPt_gsf = std::log(Pt_gsf);
2093  Eta_gsf = RefGSF->etaMode();
2094  // tracking observables
2095  const double ptModeErrorGsf = RefGSF->ptModeError();
2096  dPtOverPt_gsf = (ptModeErrorGsf > 0. ? ptModeErrorGsf/Pt_gsf : 1.0);
2097  nhit_gsf = RefGSF->hitPattern().trackerLayersWithMeasurement();
2098  chi2_gsf = RefGSF->normalizedChi2();
2099  DPtOverPt_gsf = (Pt_gsf - gsfElement->Pout().pt())/Pt_gsf;
2100  // kalman filter vars
2101  nhit_kf = 0;
2102  chi2_kf = -0.01;
2103  DPtOverPt_kf = -0.01;
2104  if( RefKF.isNonnull() ) {
2105  nhit_kf = RefKF->hitPattern().trackerLayersWithMeasurement();
2106  chi2_kf = RefKF->normalizedChi2();
2107  // not used for moment, weird behavior of variable
2108  // DPtOverPt_kf = (RefKF->pt() - RefKF->outerPt())/RefKF->pt();
2109  }
2110  //tracker + calorimetry observables
2111  const double EcalETot =
2112  (FirstEcalGsfEnergy+OtherEcalGsfEnergy+EcalBremEnergy);
2113  EtotPinMode = EcalETot / Ein_gsf;
2114  EGsfPoutMode = FirstEcalGsfEnergy / Eout_gsf;
2115  EtotBremPinPoutMode = ( (EcalBremEnergy + OtherEcalGsfEnergy) /
2116  (Ein_gsf - Eout_gsf) );
2117  DEtaGsfEcalClust = std::abs(deta_gsfecal);
2118  SigmaEtaEta = std::log(sigmaEtaEta);
2120  xtra.setSigmaEtaEta(sigmaEtaEta);
2121 
2122  HOverHE = Ene_hcalgsf/(Ene_hcalgsf + FirstEcalGsfEnergy);
2123  HOverPin = Ene_hcalgsf / Ein_gsf;
2124  xtra.setHadEnergy(Ene_hcalgsf);
2125 
2126  // Apply bounds to variables and calculate MVA
2130  chi2_gsf = std::min(chi2_gsf,10.0f);
2133  chi2_kf = std::min(chi2_kf,10.0f);
2141  SigmaEtaEta = std::max(SigmaEtaEta,-14.0f);
2142  HOverPin = std::max(HOverPin,0.0f);
2143  HOverPin = std::min(HOverPin,5.0f);
2144  /*
2145  std::cout << " **** PFEG BDT observables ****" << endl;
2146  std::cout << " < Normalization > " << endl;
2147  std::cout << " Pt_gsf " << Pt_gsf << " Pin " << Ein_gsf
2148  << " Pout " << Eout_gsf << " Eta_gsf " << Eta_gsf << endl;
2149  std::cout << " < PureTracking > " << endl;
2150  std::cout << " dPtOverPt_gsf " << dPtOverPt_gsf
2151  << " DPtOverPt_gsf " << DPtOverPt_gsf
2152  << " chi2_gsf " << chi2_gsf
2153  << " nhit_gsf " << nhit_gsf
2154  << " DPtOverPt_kf " << DPtOverPt_kf
2155  << " chi2_kf " << chi2_kf
2156  << " nhit_kf " << nhit_kf << endl;
2157  std::cout << " < track-ecal-hcal-ps " << endl;
2158  std::cout << " EtotPinMode " << EtotPinMode
2159  << " EGsfPoutMode " << EGsfPoutMode
2160  << " EtotBremPinPoutMode " << EtotBremPinPoutMode
2161  << " DEtaGsfEcalClust " << DEtaGsfEcalClust
2162  << " SigmaEtaEta " << SigmaEtaEta
2163  << " HOverHE " << HOverHE << " Hcal energy " << Ene_hcalgsf
2164  << " HOverPin " << HOverPin
2165  << " lateBrem " << lateBrem
2166  << " firstBrem " << firstBrem << endl;
2167  */
2168 
2169  float vars[] = { lnPt_gsf, Eta_gsf, dPtOverPt_gsf, DPtOverPt_gsf, chi2_gsf,
2172 
2173  return hoc->gbrEle_->GetAdaBoostClassifier(vars);
2174  }
2175  }
2176  return -2.0f;
2177 }
2178 
2181  // add tracks associated to clusters that are not T_FROM_GAMMACONV
2182  // info about single-leg convs is already save, so just veto in loops
2183  IsConversionTrack<reco::PFBlockElementTrack> isConvKf;
2184  auto KFbegin = _splayedblock[reco::PFBlockElement::TRACK].begin();
2185  auto KFend = _splayedblock[reco::PFBlockElement::TRACK].end();
2186  for( auto& ecal : RO.ecalclusters ) {
2187  NotCloserToOther<reco::PFBlockElement::ECAL,
2189  true>
2190  ECALToTracks(_currentblock,_currentlinks,ecal.first);
2191  auto notmatchedkf = std::partition(KFbegin,KFend,ECALToTracks);
2192  auto notconvkf = std::partition(KFbegin,notmatchedkf,isConvKf);
2193  // go through non-conv-identified kfs and check MVA to add conversions
2194  for( auto kf = notconvkf; kf != notmatchedkf; ++kf ) {
2195  const reco::PFBlockElementTrack* elemaskf =
2196  docast(const reco::PFBlockElementTrack*,kf->first);
2197  xtra.addExtraNonConvTrack(_currentblock,*elemaskf);
2198  }
2199  }
2200 }
2201 
2202 // currently stolen from PFECALSuperClusterAlgo, we should
2203 // try to factor this correctly since the operation is the same in
2204 // both places...
2207  if( !RO.ecalclusters.size() ) {
2208  return reco::SuperCluster(0.0,math::XYZPoint(0,0,0));
2209  }
2210 
2211  SumPSEnergy sumps1(reco::PFBlockElement::PS1),
2212  sumps2(reco::PFBlockElement::PS2);
2213 
2214  bool isEE = false;
2215  edm::Ptr<reco::PFCluster> clusptr;
2216  // need the vector of raw pointers for a PF width class
2217  std::vector<const reco::PFCluster*> bare_ptrs;
2218  // calculate necessary parameters and build the SC
2219  double posX(0), posY(0), posZ(0),
2220  rawSCEnergy(0), corrSCEnergy(0), corrPSEnergy(0),
2221  PS1_clus_sum(0), PS2_clus_sum(0),
2222  ePS1(0), ePS2(0), ps1_energy(0.0), ps2_energy(0.0);
2223  for( auto& clus : RO.ecalclusters ) {
2224  ePS1 = 0;
2225  ePS2 = 0;
2226  isEE = PFLayer::ECAL_ENDCAP == clus.first->clusterRef()->layer();
2227  clusptr =
2228  edm::refToPtr<reco::PFClusterCollection>(clus.first->clusterRef());
2229  bare_ptrs.push_back(clusptr.get());
2230 
2231  const double cluseraw = clusptr->energy();
2232  double cluscalibe = clusptr->correctedEnergy();
2233  const math::XYZPoint& cluspos = clusptr->position();
2234  posX += cluseraw * cluspos.X();
2235  posY += cluseraw * cluspos.Y();
2236  posZ += cluseraw * cluspos.Z();
2237  // update EE calibrated super cluster energies
2238  if( isEE ) {
2239  const auto& psclusters = RO.ecal2ps.at(clus.first);
2240  PS1_clus_sum = std::accumulate(psclusters.begin(),psclusters.end(),
2241  0.0,sumps1);
2242  PS2_clus_sum = std::accumulate(psclusters.begin(),psclusters.end(),
2243  0.0,sumps2);
2244  cluscalibe =
2245  cfg_.thePFEnergyCalibration->energyEm(*clusptr,
2246  PS1_clus_sum,PS2_clus_sum,
2247  ePS1, ePS2,
2249  }
2250 
2251  rawSCEnergy += cluseraw;
2252  corrSCEnergy += cluscalibe;
2253  ps1_energy += ePS1;
2254  ps2_energy += ePS2;
2255  corrPSEnergy += ePS1 + ePS2;
2256  }
2257  posX /= rawSCEnergy;
2258  posY /= rawSCEnergy;
2259  posZ /= rawSCEnergy;
2260 
2261  // now build the supercluster
2262  reco::SuperCluster new_sc(corrSCEnergy,math::XYZPoint(posX,posY,posZ));
2263 
2264  clusptr =
2265  edm::refToPtr<reco::PFClusterCollection>(RO.ecalclusters.front().
2266  first->clusterRef());
2267  new_sc.setCorrectedEnergy(corrSCEnergy);
2268  new_sc.setSeed(clusptr);
2269  new_sc.setPreshowerEnergyPlane1(ps1_energy);
2270  new_sc.setPreshowerEnergyPlane2(ps2_energy);
2271  new_sc.setPreshowerEnergy(corrPSEnergy);
2272  for( const auto& clus : RO.ecalclusters ) {
2273  clusptr =
2274  edm::refToPtr<reco::PFClusterCollection>(clus.first->clusterRef());
2275  new_sc.addCluster(clusptr);
2276  auto& hits_and_fractions = clusptr->hitsAndFractions();
2277  for( auto& hit_and_fraction : hits_and_fractions ) {
2278  new_sc.addHitAndFraction(hit_and_fraction.first,hit_and_fraction.second);
2279  }
2280  // put the preshower stuff back in later
2281  const auto& cluspsassociation = RO.ecal2ps.at(clus.first);
2282  // EE rechits should be uniquely matched to sets of pre-shower
2283  // clusters at this point, so we throw an exception if otherwise
2284  // now wrapped in EDM debug flags
2285  for( const auto& pscluselem : cluspsassociation ) {
2286  edm::Ptr<reco::PFCluster> psclus =
2287  edm::refToPtr<reco::PFClusterCollection>(pscluselem.first->
2288  clusterRef());
2289 #ifdef PFFLOW_DEBUG
2290  auto found_pscluster = std::find(new_sc.preshowerClustersBegin(),
2291  new_sc.preshowerClustersEnd(),
2292  reco::CaloClusterPtr(psclus));
2293  if( found_pscluster == new_sc.preshowerClustersEnd() ) {
2294 #endif
2295  new_sc.addPreshowerCluster(psclus);
2296 #ifdef PFFLOW_DEBUG
2297  } else {
2298  throw cms::Exception("PFECALSuperClusterAlgo::buildSuperCluster")
2299  << "Found a PS cluster matched to more than one EE cluster!"
2300  << std::endl << std::hex << psclus.get() << " == "
2301  << found_pscluster->get() << std::dec << std::endl;
2302  }
2303 #endif
2304  }
2305  }
2306 
2307  // calculate linearly weighted cluster widths
2308  PFClusterWidthAlgo pfwidth(bare_ptrs);
2309  new_sc.setEtaWidth(pfwidth.pflowEtaWidth());
2310  new_sc.setPhiWidth(pfwidth.pflowPhiWidth());
2311 
2312  // cache the value of the raw energy
2313  new_sc.rawEnergy();
2314 
2315  return new_sc;
2316 }
2317 
2318 void PFEGammaAlgo::
2320  // this only means something for ROs with a primary GSF track
2321  if( !RO.primaryGSFs.size() ) return;
2322  // need energy sums to tell if we've added crap or not
2323  const double Pin_gsf = RO.primaryGSFs.front().first->GsftrackRef()->pMode();
2324  const double gsfOuterEta =
2325  RO.primaryGSFs.front().first->positionAtECALEntrance().Eta();
2326  double tot_ecal= 0.0;
2327  std::vector<double> min_brem_dists;
2328  std::vector<double> closest_brem_eta;
2329  // first get the total ecal energy (we should replace this with a cache)
2330  for( const auto& ecal : RO.ecalclusters ) {
2331  tot_ecal += ecal.first->clusterRef()->correctedEnergy();
2332  // we also need to look at the minimum distance to brems
2333  // since energetic brems will be closer to the brem than the track
2334  double min_brem_dist = 5000.0;
2335  double eta = -999.0;
2336  for( const auto& brem : RO.brems ) {
2337  const float dist = _currentblock->dist(brem.first->index(),
2338  ecal.first->index(),
2339  _currentlinks,
2341  if( dist < min_brem_dist && dist != -1.0f ) {
2342  min_brem_dist = dist;
2343  eta = brem.first->positionAtECALEntrance().Eta();
2344  }
2345  }
2346  min_brem_dists.push_back(min_brem_dist);
2347  closest_brem_eta.push_back(eta);
2348  }
2349 
2350  // loop through the ECAL clusters and remove ECAL clusters matched to
2351  // secondary track either in *or* out of the SC if the E/pin is bad
2352  for( auto secd_kf = RO.secondaryKFs.begin();
2353  secd_kf != RO.secondaryKFs.end(); ++secd_kf ) {
2354  reco::TrackRef trkRef = secd_kf->first->trackRef();
2355  const float secpin = secd_kf->first->trackRef()->p();
2356  bool remove_this_kf = false;
2357  for( auto ecal = RO.ecalclusters.begin();
2358  ecal != RO.ecalclusters.end(); ++ecal ) {
2359  size_t bremidx = std::distance(RO.ecalclusters.begin(),ecal);
2360  const float minbremdist = min_brem_dists[bremidx];
2361  const double ecalenergy = ecal->first->clusterRef()->correctedEnergy();
2362  const double Epin = ecalenergy/secpin;
2363  const double detaGsf =
2364  std::abs(gsfOuterEta - ecal->first->clusterRef()->positionREP().Eta());
2365  const double detaBrem =
2366  std::abs(closest_brem_eta[bremidx] -
2367  ecal->first->clusterRef()->positionREP().Eta());
2368 
2369  ElementMap::value_type check_match(ecal->first,secd_kf->first);
2370  auto kf_matched = std::find(RO.localMap.begin(),
2371  RO.localMap.end(),
2372  check_match);
2373 
2374  const float tkdist = _currentblock->dist(secd_kf->first->index(),
2375  ecal->first->index(),
2376  _currentlinks,
2378 
2379  // do not reject this track if it is closer to a brem than the
2380  // secondary track, or if it lies in the delta-eta plane with the
2381  // gsf track or if it is in the dEta plane with the brems
2382  if( Epin > 3 && kf_matched != RO.localMap.end() &&
2383  tkdist != -1.0f && tkdist < minbremdist &&
2384  detaGsf > 0.05 && detaBrem > 0.015) {
2385  double res_with = std::abs((tot_ecal-Pin_gsf)/Pin_gsf);
2386  double res_without = std::abs((tot_ecal-ecalenergy-Pin_gsf)/Pin_gsf);
2387  if(res_without < res_with) {
2388  LOGDRESSED("PFEGammaAlgo")
2389  << " REJECTED_RES totenergy " << tot_ecal
2390  << " Pin_gsf " << Pin_gsf
2391  << " cluster to secondary " << ecalenergy
2392  << " res_with " << res_with
2393  << " res_without " << res_without << std::endl;
2394  tot_ecal -= ecalenergy;
2395  remove_this_kf = true;
2396  ecal = RO.ecalclusters.erase(ecal);
2397  if( ecal == RO.ecalclusters.end() ) break;
2398  }
2399  }
2400  }
2401  if( remove_this_kf ) {
2402  secd_kf = RO.secondaryKFs.erase(secd_kf);
2403  if( secd_kf == RO.secondaryKFs.end() ) break;
2404  }
2405  }
2406 }
2407 
2408 void PFEGammaAlgo::
2410  bool removeFreeECAL,
2411  bool removeSCEcal) {
2412  std::vector<bool> cluster_in_sc;
2413  auto ecal_begin = RO.ecalclusters.begin();
2414  auto ecal_end = RO.ecalclusters.end();
2415  auto hcal_begin = _splayedblock[reco::PFBlockElement::HCAL].begin();
2416  auto hcal_end = _splayedblock[reco::PFBlockElement::HCAL].end();
2417  for( auto secd_kf = RO.secondaryKFs.begin();
2418  secd_kf != RO.secondaryKFs.end(); ++secd_kf ) {
2419  bool remove_this_kf = false;
2420  NotCloserToOther<reco::PFBlockElement::TRACK,reco::PFBlockElement::HCAL>
2421  tracksToHCALs(_currentblock,_currentlinks,secd_kf->first);
2422  reco::TrackRef trkRef = secd_kf->first->trackRef();
2423  const unsigned int Algo = whichTrackAlgo(trkRef);
2424  const float secpin = trkRef->p();
2425 
2426  for( auto ecal = ecal_begin; ecal != ecal_end; ++ecal ) {
2427  const double ecalenergy = ecal->first->clusterRef()->correctedEnergy();
2428  // first check if the cluster is in the SC (use dist calc for fastness)
2429  const size_t clus_idx = std::distance(ecal_begin,ecal);
2430  if( cluster_in_sc.size() < clus_idx + 1) {
2431  float dist = -1.0f;
2432  if( RO.parentSC ) {
2433  dist = _currentblock->dist(secd_kf->first->index(),
2434  ecal->first->index(),
2435  _currentlinks,
2437  }
2438  cluster_in_sc.push_back(dist != -1.0f);
2439  }
2440 
2441  ElementMap::value_type check_match(ecal->first,secd_kf->first);
2442  auto kf_matched = std::find(RO.localMap.begin(),
2443  RO.localMap.end(),
2444  check_match);
2445  // if we've found a secondary KF that matches this ecal cluster
2446  // now we see if it is matched to HCAL
2447  // if it is matched to an HCAL cluster we take different
2448  // actions if the cluster was in an SC or not
2449  if( kf_matched != RO.localMap.end() ) {
2450  auto hcal_matched = std::partition(hcal_begin,hcal_end,tracksToHCALs);
2451  for( auto hcalclus = hcal_begin;
2452  hcalclus != hcal_matched;
2453  ++hcalclus ) {
2454  const reco::PFBlockElementCluster * clusthcal =
2455  dynamic_cast<const reco::PFBlockElementCluster*>(hcalclus->first);
2456  const double hcalenergy = clusthcal->clusterRef()->energy();
2457  const double hpluse = ecalenergy+hcalenergy;
2458  const bool isHoHE = ( (hcalenergy / hpluse ) > 0.1 && Algo < 3 );
2459  const bool isHoE = ( hcalenergy > ecalenergy );
2460  const bool isPoHE = ( secpin > hpluse );
2461  if( cluster_in_sc[clus_idx] ) {
2462  if(isHoE || isPoHE) {
2463  LOGDRESSED("PFEGammaAlgo")
2464  << "REJECTED TRACK FOR H/E or P/(H+E), CLUSTER IN SC"
2465  << " H/H+E " << (hcalenergy / hpluse)
2466  << " H/E " << (hcalenergy > ecalenergy)
2467  << " P/(H+E) " << (secpin/hpluse)
2468  << " HCAL ENE " << hcalenergy
2469  << " ECAL ENE " << ecalenergy
2470  << " secPIN " << secpin
2471  << " Algo Track " << Algo << std::endl;
2472  remove_this_kf = true;
2473  }
2474  } else {
2475  if(isHoHE){
2476  LOGDRESSED("PFEGammaAlgo")
2477  << "REJECTED TRACK FOR H/H+E, CLUSTER NOT IN SC"
2478  << " H/H+E " << (hcalenergy / hpluse)
2479  << " H/E " << (hcalenergy > ecalenergy)
2480  << " P/(H+E) " << (secpin/hpluse)
2481  << " HCAL ENE " << hcalenergy
2482  << " ECAL ENE " << ecalenergy
2483  << " secPIN " << secpin
2484  << " Algo Track " << Algo << std::endl;
2485  remove_this_kf = true;
2486  }
2487  }
2488  }
2489  }
2490  }
2491  if( remove_this_kf ) {
2492  secd_kf = RO.secondaryKFs.erase(secd_kf);
2493  if( secd_kf == RO.secondaryKFs.end() ) break;
2494  }
2495  }
2496 }
2497 
2498 
2499 unsigned int PFEGammaAlgo::whichTrackAlgo(const reco::TrackRef& trackRef) {
2500  unsigned int Algo = 0;
2501  switch (trackRef->algo()) {
2502  case TrackBase::ctf:
2504  case TrackBase::lowPtTripletStep:
2505  case TrackBase::pixelPairStep:
2506  case TrackBase::jetCoreRegionalStep:
2507  case TrackBase::muonSeededStepInOut:
2508  case TrackBase::muonSeededStepOutIn:
2509  Algo = 0;
2510  break;
2512  Algo = 1;
2513  break;
2515  Algo = 2;
2516  break;
2518  Algo = 3;
2519  break;
2520  case TrackBase::tobTecStep:
2521  Algo = 4;
2522  break;
2523  default:
2524  Algo = 5;
2525  break;
2526  }
2527  return Algo;
2528 }
2530  const reco::PFBlockElementGsfTrack& GsfEl) {
2531  bool isPrimary = false;
2532 
2533  GsfPFRecTrackRef gsfPfRef = GsfEl.GsftrackRefPF();
2534 
2535  if(gsfPfRef.isNonnull()) {
2536  PFRecTrackRef kfPfRef = KfEl.trackRefPF();
2537  PFRecTrackRef kfPfRef_fromGsf = (*gsfPfRef).kfPFRecTrackRef();
2538  if(kfPfRef.isNonnull() && kfPfRef_fromGsf.isNonnull()) {
2539  reco::TrackRef kfref= (*kfPfRef).trackRef();
2540  reco::TrackRef kfref_fromGsf = (*kfPfRef_fromGsf).trackRef();
2541  if(kfref.isNonnull() && kfref_fromGsf.isNonnull()) {
2542  if(kfref == kfref_fromGsf)
2543  isPrimary = true;
2544  }
2545  }
2546  }
2547 
2548  return isPrimary;
2549 }
float EtotBremPinPoutMode
Definition: PFEGammaAlgo.h:315
bool isAvailable() const
Definition: Ref.h:614
type
Definition: HCALResponse.h:21
const SuperClusterRef & superClusterRef() const
const math::XYZTLorentzVector & Pout() const
double mvaValue
Definition: PFEGammaAlgo.h:356
Abstract base class for a PFBlock element (track, cluster...)
const math::XYZPoint & position() const
cluster centroid position
Definition: CaloCluster.h:126
CaloCluster_iterator preshowerClustersBegin() const
fist iterator over PreshowerCluster constituents
Definition: SuperCluster.h:81
int i
Definition: DBlmapReader.cc:9
const reco::TrackRef & trackRef() const
unsigned int whichTrackAlgo(const reco::TrackRef &trackRef)
const reco::GsfTrackRef & GsftrackRef() const
static const TGPicture * info(bool iBackgroundIsBlack)
std::vector< PFClusterFlaggedElement > ecalclusters
Definition: PFEGammaAlgo.h:85
static bool overlap(const reco::CaloCluster &sc1, const reco::CaloCluster &sc, float minfrac=0.01, bool debug=false)
bool isNonnull() const
Checks for non-null.
Definition: Ref.h:250
void Dump(std::ostream &out=std::cout, const char *tab=" ") const
print the object inside the element
tuple cfg
Definition: looper.py:259
void setSuperClusterRef(reco::SuperClusterRef sc)
set reference to the corresponding supercluster
Ptr< typename C::value_type > refToPtr(Ref< C, typename C::value_type, refhelper::FindUsingAdvance< C, typename C::value_type > > const &ref)
Definition: RefToPtr.h:18
list parent
Definition: dbtoconf.py:74
reco::PFCandidateEGammaExtraCollection egExtra_
Definition: PFEGammaAlgo.h:390
std::vector< std::pair< unsigned int, unsigned int > > fifthStepKfTrack_
Definition: PFEGammaAlgo.h:297
reco::SuperClusterCollection refinedscs_
Definition: PFEGammaAlgo.h:182
void addHitAndFraction(DetId id, float fraction)
Definition: CaloCluster.h:185
reco::PFBlockRef parentBlock
Definition: PFEGammaAlgo.h:79
void unlinkRefinableObjectKFandECALWithBadEoverP(ProtoEGObject &)
key_type key() const
Definition: Ptr.h:169
trackRef_iterator tracks_end() const
last iterator over tracks
Definition: Vertex.cc:44
static bool isMuon(const reco::PFBlockElement &elt)
Definition: PFMuonAlgo.cc:153
void setPositionAtECALEntrance(const math::XYZPointF &pos)
set position at ECAL entrance
Definition: PFCandidate.h:348
void setGsfElectronClusterRef(const reco::PFBlockRef &blk, const reco::PFBlockElementCluster &ref)
set gsf electron cluster ref
float EGsfPoutMode
Definition: PFEGammaAlgo.h:315
virtual void setCharge(Charge q)
set electric charge
Definition: LeafCandidate.h:93
float calculate_ele_mva(const pfEGHelpers::HeavyObjectCache *hoc, const ProtoEGObject &, reco::PFCandidateEGammaExtra &)
void addSingleLegConvTrackRefMva(const std::pair< reco::TrackRef, float > &trackrefmva)
add Single Leg Conversion TrackRef
void setPreshowerEnergyPlane2(double preshowerEnergy2)
Definition: SuperCluster.h:61
std::pair< const PFClusterElement *, bool > PFClusterFlaggedElement
Definition: PFEGammaAlgo.h:66
T const * get() const
Returns C++ pointer to the item.
Definition: Ptr.h:143
double y() const
y coordinate
Definition: Vertex.h:110
void setHadEnergy(float val)
set the had energy. The cluster energies should be entered before
const math::XYZPointF & positionAtECALEntrance() const
std::shared_ptr< PFEnergyCalibration > thePFEnergyCalibration
Definition: PFEGammaAlgo.h:109
Type type() const
std::map< unsigned int, Link > LinkData
Definition: PFBlock.h:46
Geom::Phi< T > phi() const
Definition: PV3DBase.h:69
double pflowPhiWidth() const
std::vector< PFClusterFlaggedElement > hcalClusters
Definition: PFEGammaAlgo.h:97
bool isPrimaryTrack(const reco::PFBlockElementTrack &KfEl, const reco::PFBlockElementGsfTrack &GsfEl)
float DEtaGsfEcalClust
Definition: PFEGammaAlgo.h:316
#define X(str)
Definition: MuonsGrabber.cc:48
void linkRefinableObjectPrimaryGSFTrackToECAL(ProtoEGObject &)
key_type index() const
Definition: Ref.h:269
virtual void setP4(const LorentzVector &p4)
set 4-momentum
list elements
Definition: asciidump.py:414
#define NULL
Definition: scimark2.h:8
const GsfPFRecTrackRef & GsftrackRefPF() const
const PFClusterRef & clusterRef() const
const edm::OwnVector< reco::PFBlockElement > & elements() const
Definition: PFBlock.h:107
double Phi_mpi_pi(double x)
Definition: JetUtil.h:24
edm::Ref< TrackExtraCollection > TrackExtraRef
persistent reference to a TrackExtra
Definition: TrackExtraFwd.h:17
void linkRefinableObjectECALToSingleLegConv(const pfEGHelpers::HeavyObjectCache *hoc, ProtoEGObject &)
std::vector< const PFClusterElement * > electronClusters
Definition: PFEGammaAlgo.h:101
unsigned int index
index type
Definition: Vertex.h:49
const LinkData & linkData() const
Definition: PFBlock.h:112
std::vector< std::vector< PFFlaggedElement > > _splayedblock
Definition: PFEGammaAlgo.h:191
void setSeed(const CaloClusterPtr &r)
list of used xtals by DetId // now inherited by CaloCluster
Definition: SuperCluster.h:96
const math::XYZTLorentzVector & Pin() const
std::pair< const PFGSFElement *, bool > PFGSFFlaggedElement
Definition: PFEGammaAlgo.h:64
edm::Ptr< CaloCluster > CaloClusterPtr
void linkRefinableObjectBremTangentsToECAL(ProtoEGObject &)
ROOT::Math::PositionVector3D< ROOT::Math::Cartesian3D< float > > XYZPointF
point in space with cartesian internal representation
Definition: Point3D.h:10
TH2D * X0_outer
Definition: PFEGammaAlgo.h:379
const reco::Vertex * primaryVtx
Definition: PFEGammaAlgo.h:126
T eta() const
unsigned int indTrajPoint() const
void find(edm::Handle< EcalRecHitCollection > &hits, DetId thisDet, std::vector< EcalRecHitCollection::const_iterator > &hit, bool debug=false)
Definition: FindCaloHit.cc:7
reco::PFBlockRef _currentblock
Definition: PFEGammaAlgo.h:187
void setGsfTrackRef(const reco::GsfTrackRef &ref)
set gsftrack reference
std::pair< const reco::PFBlockElement *, bool > PFFlaggedElement
Definition: PFEGammaAlgo.h:61
void setPhiWidth(double pw)
Definition: SuperCluster.h:62
const Point & position() const
position
Definition: Vertex.h:106
double pflowEtaWidth() const
std::pair< const PFSCElement *, bool > PFSCFlaggedElement
Definition: PFEGammaAlgo.h:62
const math::XYZPointF & positionAtECALEntrance() const
#define constexpr
PFEGConfigInfo cfg_
Definition: PFEGammaAlgo.h:300
float DPtOverPt_gsf
Definition: PFEGammaAlgo.h:309
std::unique_ptr< const GBRForest > gbrEle_
edm::Handle< reco::PFCluster::EEtoPSAssociation > eetops_
Definition: PFEGammaAlgo.h:186
XYZTLorentzVectorD XYZTLorentzVector
Lorentz vector with cylindrical internal representation using pseudorapidity.
Definition: LorentzVector.h:29
void set_mva_e_pi(float mvaNI)
Definition: PFCandidate.h:311
#define LOGERR(x)
Definition: PFEGammaAlgo.cc:46
std::vector< PFKFFlaggedElement > secondaryKFs
Definition: PFEGammaAlgo.h:94
void setEtaWidth(double ew)
Definition: SuperCluster.h:63
void setSigmaEtaEta(float val)
set the sigmaetaeta
#define LOGVERB(x)
Definition: PFEGammaAlgo.cc:44
#define LOGDRESSED(x)
Definition: PFEGammaAlgo.cc:47
void dumpCurrentRefinableObjects() const
void initializeProtoCands(std::list< ProtoEGObject > &)
void linkRefinableObjectPrimaryKFsToSecondaryKFs(ProtoEGObject &)
unsigned index() const
bool unwrapSuperCluster(const reco::PFBlockElementSuperCluster *, std::vector< PFClusterFlaggedElement > &, ClusterMap &)
double pflowSigmaEtaEta() const
std::unique_ptr< const GBRForest > gbrSingleLeg_
void setCorrectedEnergy(double cenergy)
Definition: CaloCluster.h:109
void addElementInBlock(const reco::PFBlockRef &blockref, unsigned elementIndex)
add an element to the current PFCandidate
Definition: PFCandidate.cc:211
void swap(edm::DataFrameContainer &lhs, edm::DataFrameContainer &rhs)
reco::PFCluster::EEtoPSAssociation EEtoPSAssociation
Definition: PFEGammaAlgo.h:55
T sqrt(T t)
Definition: SSEVec.h:48
double p4[4]
Definition: TauolaWrapper.h:92
const ConversionRefVector & convRefs() const
PFEGammaAlgo(const PFEGConfigInfo &)
const PFSCElement * parentSC
Definition: PFEGammaAlgo.h:80
tuple result
Definition: query.py:137
std::vector< reco::PFCandidateEGammaExtra > PFCandidateEGammaExtraCollection
collection of PFCandidateEGammaExtras
def move
Definition: eostools.py:508
std::vector< PFBremFlaggedElement > brems
Definition: PFEGammaAlgo.h:91
void setEarlyBrem(float val)
set EarlyBrem
Abs< T >::type abs(const T &t)
Definition: Abs.h:22
double z() const
y coordinate
Definition: Vertex.h:112
float DPtOverPt_kf
Definition: PFEGammaAlgo.h:309
void setGsfTrackPout(const math::XYZTLorentzVector &pout)
set the pout (not trivial to get from the GSF track)
float dPtOverPt_gsf
Definition: PFEGammaAlgo.h:309
double f[11][100]
double energy() const
cluster energy
Definition: CaloCluster.h:121
#define end
Definition: vmac.h:37
T const * get() const
Returns C++ pointer to the item.
Definition: Ref.h:242
T min(T a, T b)
Definition: MathUtil.h:58
std::list< ProtoEGObject > _refinableObjects
Definition: PFEGammaAlgo.h:205
virtual bool trackType(TrackType trType) const
Container::value_type value_type
bool isNull() const
Checks for null.
Definition: Ref.h:247
reco::PFCandidateEGammaExtraCollection outcandsextra_
Definition: PFEGammaAlgo.h:181
void linkKFTrackToECAL(const PFKFFlaggedElement &, ProtoEGObject &)
void setEcalEnergy(float eeRaw, float eeCorr)
set corrected Ecal energy
Definition: PFCandidate.h:217
Layer
layer definition
Definition: PFLayer.h:31
reco::PFBlock::LinkData _currentlinks
Definition: PFEGammaAlgo.h:188
void buildAndRefineEGObjects(const pfEGHelpers::HeavyObjectCache *hoc, const reco::PFBlockRef &block)
std::vector< reco::PFCandidate > PFCandidateCollection
collection of PFCandidates
double x() const
x coordinate
Definition: Vertex.h:108
virtual bool trackType(TrackType trType) const
double rawEnergy() const
raw uncorrected energy (sum of energies of component BasicClusters)
Definition: SuperCluster.h:47
float EvaluateSingleLegMVA(const pfEGHelpers::HeavyObjectCache *hoc, const reco::PFBlockRef &blockref, const reco::Vertex &primaryvtx, unsigned int track_index)
void fill_extra_info(const ProtoEGObject &, reco::PFCandidateEGammaExtra &)
reco::PFCandidateCollection egCandidate_
Definition: PFEGammaAlgo.h:386
bool isAMuon(const reco::PFBlockElement &)
void setDeltaEta(float val)
set the delta eta
void setGsfTrackRef(const reco::GsfTrackRef &ref)
set gsftrack reference
Definition: PFCandidate.cc:454
reco::ElectronSeedRef electronSeed
Definition: PFEGammaAlgo.h:81
XYZVectorD XYZVector
spatial vector with cartesian internal representation
Definition: Vector3D.h:30
void associatedElements(unsigned i, const LinkData &linkData, std::multimap< double, unsigned > &sortedAssociates, reco::PFBlockElement::Type type=PFBlockElement::NONE, LinkTest test=LINKTEST_RECHIT) const
Definition: PFBlock.cc:75
XYZPointD XYZPoint
point in space with cartesian internal representation
Definition: Point3D.h:12
tuple idx
DEBUGGING if hasattr(process,&quot;trackMonIterativeTracking2012&quot;): print &quot;trackMonIterativeTracking2012 D...
void addPreshowerCluster(const CaloClusterPtr &r)
add reference to constituent BasicCluster
Definition: SuperCluster.h:117
float SigmaEtaEta
Definition: PFEGammaAlgo.h:317
double b
Definition: hdecay.h:120
#define docast(x, y)
Definition: PFEGammaAlgo.cc:43
void linkRefinableObjectGSFTracksToKFs(ProtoEGObject &)
std::vector< std::pair< unsigned int, unsigned int > > convGsfTrack_
Definition: PFEGammaAlgo.h:298
void setSuperClusterPFECALRef(reco::SuperClusterRef sc)
set reference to the corresponding supercluster
void addConversionRef(const reco::ConversionRef &convref)
add Conversions from PF
std::vector< PFKFFlaggedElement > primaryKFs
Definition: PFEGammaAlgo.h:90
std::unordered_map< const PFClusterElement *, std::vector< PFClusterFlaggedElement > > ClusterMap
Definition: PFEGammaAlgo.h:73
float EtotPinMode
Definition: PFEGammaAlgo.h:315
void addCluster(const CaloClusterPtr &r)
add reference to constituent BasicCluster
Definition: SuperCluster.h:111
void Dump(std::ostream &out=std::cout, const char *tab=" ") const
print the object inside the element
ElementMap _recoveredlinks
Definition: PFEGammaAlgo.h:192
void fillPFCandidates(const pfEGHelpers::HeavyObjectCache *hoc, const std::list< ProtoEGObject > &, reco::PFCandidateCollection &, reco::PFCandidateEGammaExtraCollection &)
void removeOrLinkECALClustersToKFTracks()
Particle reconstructed by the particle flow algorithm.
Definition: PFCandidate.h:39
#define begin
Definition: vmac.h:30
void Dump(std::ostream &out=std::cout, const char *tab=" ") const
print the object inside the element
#define LOGWARN(x)
Definition: PFEGammaAlgo.cc:45
reco::SuperCluster buildRefinedSuperCluster(const ProtoEGObject &)
TH2D * X0_inner
Definition: PFEGammaAlgo.h:377
void unlinkRefinableObjectKFandECALMatchedToHCAL(ProtoEGObject &, bool removeFreeECAL=false, bool removeSCECAL=false)
double a
Definition: hdecay.h:121
std::pair< const PFKFElement *, bool > PFKFFlaggedElement
Definition: PFEGammaAlgo.h:65
const PFRecTrackRef & trackRefPF() const
virtual void setPdgId(int pdgId)
void mergeROsByAnyLink(std::list< ProtoEGObject > &)
void RunPFEG(const pfEGHelpers::HeavyObjectCache *hoc, const reco::PFBlockRef &blockRef, std::vector< bool > &active)
void setSuperClusterRef(const reco::SuperClusterRef &scRef)
Definition: PFCandidate.cc:620
int attachPSClusters(const PFClusterElement *, ClusterMap::mapped_type &)
void linkRefinableObjectKFTracksToECAL(ProtoEGObject &)
void setKfTrackRef(const reco::TrackRef &ref)
set kf track reference
const CaloClusterPtr & seed() const
seed BasicCluster
Definition: SuperCluster.h:66
void setMVA(float val)
set the result (mostly for debugging)
volatile std::atomic< bool > shutdown_flag false
void linkRefinableObjectSecondaryKFsToECAL(ProtoEGObject &)
void setLateBrem(float val)
set LateBrem
trackRef_iterator tracks_begin() const
first iterator over tracks
Definition: Vertex.cc:39
reco::PFCandidateCollection _finalCandidates
Definition: PFEGammaAlgo.h:207
TH2D * X0_middle
Definition: PFEGammaAlgo.h:378
void linkRefinableObjectConvSecondaryKFsToSecondaryKFs(ProtoEGObject &)
verbosityLevel verbosityLevel_
Definition: PFEGammaAlgo.h:329
void setTrackRef(const reco::TrackRef &ref)
set track reference
Definition: PFCandidate.cc:416
reco::PFCandidateCollection outcands_
Definition: PFEGammaAlgo.h:180
bool next_combination(BidIt n_begin, BidIt n_end, BidIt r_begin, BidIt r_end)
Definition: combination.h:22
void setPreshowerEnergyPlane1(double preshowerEnergy1)
Definition: SuperCluster.h:60
std::vector< PFGSFFlaggedElement > primaryGSFs
Definition: PFEGammaAlgo.h:88
tuple size
Write out results.
Definition: fakeMenu.h:6
CaloCluster_iterator preshowerClustersEnd() const
last iterator over PreshowerCluster constituents
Definition: SuperCluster.h:84
void addExtraNonConvTrack(const reco::PFBlockRef &blk, const reco::PFBlockElementTrack &tkref)
track counting for electrons and photons
void setPreshowerEnergy(double preshowerEnergy)
Definition: SuperCluster.h:59
tuple log
Definition: cmsBatch.py:347
void linkRefinableObjectPrimaryGSFTrackToHCAL(ProtoEGObject &)
Block of elements.
Definition: PFBlock.h:30