33 {
34
35 int nGood = iGood.size();
36 int nGam = iGam.size();
37
38 iGoodtag.clear();
39 iGamtag.clear();
40
41 double mass_bcgg, delE_tag_temp;
42 int m_chargetag, m_chargepi1, m_chargepi2, m_chargepi3, m_chargepi4;
43 int ik1_temp, ipi1_temp, ipi2_temp, ipi3_temp, ipi4_temp, iGam1_temp, iGam2_temp;
44 HepLorentzVector pddd;
45 HepLorentzVector pddd_temp;
46
47 IDataProviderSvc* eventSvc = NULL;
48 Gaudi::svcLocator()->service( "EventDataSvc", eventSvc );
50 SmartDataPtr<Event::EventHeader> eventHeader( eventSvc, "/Event/EventHeader" );
51
52 int runNo = eventHeader->runNumber();
53 int rec = eventHeader->eventNumber();
54
55 double xecm = 2 * Ebeam;
56
57 k0pipipi0md = false;
58 double tagmode = 0;
59
60 if ( ( evtRecEvent->totalCharged() < 4 || nGam < 2 ) ) { return; }
61
63
64 ISimplePIDSvc* simple_pid;
65 Gaudi::svcLocator()->service( "SimplePIDSvc", simple_pid );
66
67 double deltaE_tem = 0.20;
68 int ncount1 = 0;
69
70 Hep3Vector xorigin( 0, 0, 0 );
71 HepSymMatrix xoriginEx( 3, 0 );
72 IVertexDbSvc* vtxsvc;
73 Gaudi::svcLocator()->service( "VertexDbSvc", vtxsvc );
75 {
78 xorigin.setX( dbv[0] );
79 xorigin.setY( dbv[1] );
80 xorigin.setZ( dbv[2] );
81
82 xoriginEx[0][0] = vv[0] * vv[0];
83 xoriginEx[1][1] = vv[1] * vv[1];
84 xoriginEx[2][2] = vv[2] * vv[2];
85 }
86
87 double xv = xorigin.x();
88 double yv = xorigin.y();
89 double zv = xorigin.z();
90
92 HepPoint3D IP( xorigin[0], xorigin[1], xorigin[2] );
93
94
95 HepLorentzVector p2gfit;
96 HepLorentzVector p2gg;
97
98 for ( int i = 0; i < evtRecEvent->totalCharged(); i++ )
99 {
101
102 int ipi1 = ( *itTrk )->trackId();
103
104 if ( !( *itTrk )->isMdcKalTrackValid() ) continue;
105 RecMdcKalTrack* mdcKalTrk1 = ( *itTrk )->mdcKalTrack();
107
108 m_chargepi1 = mdcKalTrk1->
charge();
109 if ( m_chargepi1 != 1 ) continue;
110
111
113 HepSymMatrix Ea1 = mdcKalTrk1->
getZError();
114
115 VFHelix helixip3_1( point0, a1, Ea1 );
116 helixip3_1.pivot( IP );
117 HepVector vecipa1 = helixip3_1.a();
118
119 double dr1 = fabs( vecipa1[0] );
120 double dz1 = fabs( vecipa1[3] );
121 double costheta1 =
cos( mdcKalTrk1->
theta() );
122
123 if ( dr1 >= 15.0 ) continue;
124 if ( dz1 >= 25.0 ) continue;
125 if ( fabs( costheta1 ) >= 0.93 ) continue;
126
128
129
130
131
132
133 for ( int j = 0; j < evtRecEvent->totalCharged(); j++ )
134 {
136
137 int ipi2 = ( *itTrk )->trackId();
138 if ( ipi1 == ipi2 ) continue;
139
140 if ( !( *itTrk )->isMdcKalTrackValid() ) continue;
141 RecMdcKalTrack* mdcKalTrk2 = ( *itTrk )->mdcKalTrack();
143
144 m_chargepi2 = mdcKalTrk2->
charge();
145 if ( ( m_chargepi2 + m_chargepi1 ) != 0 ) continue;
146
147
149 HepSymMatrix Ea2 = mdcKalTrk2->
getZError();
150 VFHelix helixip3_2( point0, a2, Ea2 );
151 helixip3_2.pivot( IP );
152 HepVector vecipa2 = helixip3_2.a();
153
154 double dr2 = fabs( vecipa2[0] );
155 double dz2 = fabs( vecipa2[3] );
156 double costheta2 =
cos( mdcKalTrk2->
theta() );
157 if ( dr2 >= 15.0 ) continue;
158 if ( dz2 >= 25.0 ) continue;
159 if ( fabs( costheta2 ) >= 0.93 ) continue;
160
162
163 HepVector pip1_val = HepVector( 7, 0 );
164 HepVector pim1_val = HepVector( 7, 0 );
165 pip1_val = pip1.w();
166 pim1_val = pim1.w();
167 HepLorentzVector ptrktagk0( pip1_val[0] + pim1_val[0], pip1_val[1] + pim1_val[1],
168 pip1_val[2] + pim1_val[2], pip1_val[3] + pim1_val[3] );
169 double m_xmtagk0_tem = ptrktagk0.mag();
170 if ( fabs( ptrktagk0.m() - 0.498 ) > 0.1 ) continue;
171
172 HepPoint3D vx( xorigin.x(), xorigin.y(), xorigin.z() );
173 HepSymMatrix Evx( 3, 0 );
174 double bx = 1E+6;
175 Evx[0][0] = bx * bx;
176 double by = 1E+6;
177 Evx[1][1] = by * by;
178 double bz = 1E+6;
179 Evx[2][2] = bz * bz;
180 VertexParameter vxpar;
183
189 if ( !( vtxfit0->
Fit( 0 ) ) )
continue;
192 WTrackParameter wksp = vtxfit0->
wtrk( 0 );
193 WTrackParameter wksm = vtxfit0->
wtrk( 1 );
195 VertexParameter wks_var = vtxfit0->
vpar( 0 );
196
197
198
199
200 for ( int k = 0; k < evtRecEvent->totalCharged(); k++ )
201 {
203
204 int ipi3 = ( *itTrk )->trackId();
205 if ( ipi2 == ipi3 || ipi1 == ipi3 ) continue;
206
207 if ( !( *itTrk )->isMdcKalTrackValid() ) continue;
208 RecMdcKalTrack* mdcKalTrk3 = ( *itTrk )->mdcKalTrack();
210
211 m_chargepi3 = mdcKalTrk3->
charge();
212 if (
abs( m_chargepi3 ) != 1 )
continue;
213
214
216 HepSymMatrix Ea3 = mdcKalTrk3->
getZError();
217 VFHelix helixip3_3( point0, a3, Ea3 );
218 helixip3_3.pivot( IP );
219 HepVector vecipa3 = helixip3_3.a();
220
221 double dr3 = fabs( vecipa3[0] );
222 double dz3 = fabs( vecipa3[3] );
223 double costheta3 =
cos( mdcKalTrk3->
theta() );
224 if ( dr3 >= 1.0 ) continue;
225 if ( dz3 >= 10.0 ) continue;
226 if ( fabs( costheta3 ) >= 0.93 ) continue;
227
228 if ( PID_flag == 5 )
229 {
231 if ( simple_pid->
probPion() < 0.0 ||
233 continue;
234 }
235
237
238
239
240
241 for ( int l = 0; l < evtRecEvent->totalCharged(); l++ )
242 {
244
245 int ipi4 = ( *itTrk )->trackId();
246 if ( ipi4 == ipi3 || ipi4 == ipi2 || ipi4 == ipi1 ) continue;
247
248 if ( !( *itTrk )->isMdcKalTrackValid() ) continue;
249 RecMdcKalTrack* mdcKalTrk4 = ( *itTrk )->mdcKalTrack();
251
252 m_chargepi4 = mdcKalTrk4->
charge();
253 if ( ( m_chargepi4 + m_chargepi3 ) != 0 ) continue;
254
255
257 HepSymMatrix Ea4 = mdcKalTrk4->
getZError();
258 VFHelix helixip3_4( point0, a4, Ea4 );
259 helixip3_4.pivot( IP );
260 HepVector vecipa4 = helixip3_4.a();
261
262 double dr4 = fabs( vecipa4[0] );
263 double dz4 = fabs( vecipa4[3] );
264 double costheta4 =
cos( mdcKalTrk4->
theta() );
265 if ( dr4 >= 1.0 ) continue;
266 if ( dz4 >= 10.0 ) continue;
267 if ( fabs( costheta4 ) >= 0.93 ) continue;
268
269 if ( PID_flag == 5 )
270 {
272 if ( simple_pid->
probPion() < 0.0 ||
274 continue;
275 }
276
278
279 for ( int m = 0; m < nGam - 1; m++ )
280 {
281 if ( iGam[m] == -1 ) continue;
282 RecEmcShower* g1Trk = ( *( evtRecTrkCol->begin() + iGam[m] ) )->emcShower();
283 double eraw1 = g1Trk->
energy();
285 double the1 = g1Trk->
theta();
286 HepLorentzVector ptrkg1, ptrkg10, ptrkg12;
287 ptrkg1.setPx( eraw1 *
sin( the1 ) *
cos(
phi1 ) );
288 ptrkg1.setPy( eraw1 *
sin( the1 ) *
sin(
phi1 ) );
289 ptrkg1.setPz( eraw1 *
cos( the1 ) );
290 ptrkg1.setE( eraw1 );
291 ptrkg10 = ptrkg1;
292 ptrkg12 = ptrkg1.boost( -0.011, 0, 0 );
293
294 for (
int n = m + 1;
n < nGam;
n++ )
295 {
296 if ( iGam[
n] == -1 )
continue;
297 RecEmcShower* g2Trk = ( *( evtRecTrkCol->begin() + iGam[
n] ) )->emcShower();
298 double eraw2 = g2Trk->
energy();
300 double the2 = g2Trk->
theta();
301 HepLorentzVector ptrkg2, ptrkg20, ptrkg22;
302 ptrkg2.setPx( eraw2 *
sin( the2 ) *
cos(
phi2 ) );
303 ptrkg2.setPy( eraw2 *
sin( the2 ) *
sin(
phi2 ) );
304 ptrkg2.setPz( eraw2 *
cos( the2 ) );
305 ptrkg2.setE( eraw2 );
306 ptrkg20 = ptrkg2;
307 ptrkg22 = ptrkg2.boost( -0.011, 0, 0 );
308
309
310 HepLorentzVector ptrkpi0;
311 ptrkpi0 = ptrkg12 + ptrkg22;
312 double m_xmpi0_tem = ptrkpi0.m();
313 if ( m_xmpi0_tem > 0.150 || m_xmpi0_tem < 0.115 ) continue;
314
315 bool IsEndcap1 = false;
316 bool IsEndcap2 = false;
317 if ( fabs(
cos( the1 ) ) > 0.86 && fabs(
cos( the1 ) ) < 0.92 ) IsEndcap1 =
true;
318 if ( fabs(
cos( the2 ) ) > 0.86 && fabs(
cos( the2 ) ) < 0.92 ) IsEndcap2 =
true;
319 if ( IsEndcap1 && IsEndcap2 ) continue;
320
327
330
331 double pi0_chisq = kmfit->
chisq( 0 );
332 if ( pi0_chisq >= 2500 ) continue;
333 HepLorentzVector p2gfit = kmfit->
pfit( 0 ) + kmfit->
pfit( 1 );
334 p2gfit.boost( -0.011, 0, 0 );
335
336
342 if ( !vtxfit_2->
Fit( 0 ) )
continue;
344
345 WTrackParameter wpip2 = vtxfit_2->
wtrk( 0 );
346 WTrackParameter wpim2 = vtxfit_2->
wtrk( 1 );
347
350 vxpar.
setEvx( xoriginEx );
354 if ( !vtxfit->
Fit() )
continue;
355
356 if ( vtxfit->
chisq() > 999. )
continue;
358
359 double m_massks1_tem = vtxfit->
p4par().m();
360 if ( m_massks1_tem < 0.485 || m_massks1_tem > 0.515 ) continue;
361 HepLorentzVector p4kstag = vtxfit->
p4par();
363
364 HepVector pip2_val = HepVector( 7, 0 );
365 HepVector pim2_val = HepVector( 7, 0 );
366 HepVector ksp_val = HepVector( 7, 0 );
367 HepVector ksm_val = HepVector( 7, 0 );
368
369 pip2_val = wpip2.
w();
370 pim2_val = wpim2.
w();
373
374 HepLorentzVector P_PIP2( pip2_val[0], pip2_val[1], pip2_val[2], pip2_val[3] );
375 HepLorentzVector P_PIM2( pim2_val[0], pim2_val[1], pim2_val[2], pim2_val[3] );
376 HepLorentzVector P_KSP( ksp_val[0], ksp_val[1], ksp_val[2], ksp_val[3] );
377 HepLorentzVector P_KSM( ksm_val[0], ksm_val[1], ksm_val[2], ksm_val[3] );
378
379 p4kstag.boost( -0.011, 0, 0 );
380 P_PIP2.boost( -0.011, 0, 0 );
381 P_PIM2.boost( -0.011, 0, 0 );
382 P_KSP.boost( -0.011, 0, 0 );
383 P_KSM.boost( -0.011, 0, 0 );
384
385
386 pddd = P_PIP2 + P_PIM2 + p4kstag + p2gfit;
387
388 double pk0pipipi0 = pddd.rho();
389
390 double temp1 = (
ecms / 2 ) * (
ecms / 2 ) - pk0pipipi0 * pk0pipipi0;
391 if ( temp1 < 0 ) temp1 = 0;
392 double mass_bc_tem = sqrt( temp1 );
393 if ( mass_bc_tem < 1.82 || mass_bc_tem > 1.89 ) continue;
394
395 double delE_tag_tag =
ecms / 2 - pddd.e();
396
397 if ( fabs( delE_tag_tag ) < deltaE_tem )
398 {
399 deltaE_tem = fabs( delE_tag_tag );
400 delE_tag_temp = delE_tag_tag;
401 mass_bcgg = mass_bc_tem;
402
403 pddd_temp = pddd;
404
405 ipi1_temp = ipi1;
406 ipi2_temp = ipi2;
407 ipi3_temp = ipi3;
408 ipi4_temp = ipi4;
409 iGam1_temp = iGam[m];
410 iGam2_temp = iGam[
n];
411
412 ncount1 = 1;
413 }
414 }
415 }
416 }
417 }
418 }
419 }
420
421 if ( ncount1 == 1 )
422 {
423 tagmode = 17;
424 if ( m_chargetag < 0 ) tagmode = -17;
425 tagmd = tagmode;
426 mass_bc = mass_bcgg;
427 delE_tag = delE_tag_temp;
428 cqtm = 0;
429
430 iGoodtag.push_back( ipi1_temp );
431 iGoodtag.push_back( ipi2_temp );
432 iGoodtag.push_back( ipi3_temp );
433 iGoodtag.push_back( ipi4_temp );
434
435 iGamtag.push_back( iGam1_temp );
436 iGamtag.push_back( iGam2_temp );
437 iGamtag.push_back( 9999 );
438 iGamtag.push_back( 9999 );
439
440 ptag = pddd_temp;
441
442 k0pipipi0md = true;
443 }
444}
HepGeom::Point3D< double > HepPoint3D
EvtRecTrackCol::iterator EvtRecTrackIterator
double sin(const BesAngle a)
double cos(const BesAngle a)
const double theta() const
static void setPidType(PidType pidType)
virtual double probKaon()=0
virtual void preparePID(EvtRecTrack *track)=0
virtual double probPion()=0
virtual bool isVertexValid()=0
virtual double * SigmaPrimaryVertex()=0
virtual double * PrimaryVertex()=0
void setChisqCut(const double chicut=200, const double chiter=0.05)
HepLorentzVector pfit(int n) const
void BuildVirtualParticle(int number)
void AddResonance(int number, double mres, std::vector< int > tlis)
static KalmanKinematicFit * instance()
const HepVector & getZHelix() const
const HepSymMatrix & getZError() const
HepLorentzVector p4par() const
void setPrimaryVertex(const VertexParameter vpar)
double decayLength() const
static SecondVertexFit * instance()
void setVpar(const VertexParameter vpar)
void AddTrack(const int number, const double mass, const RecMdcTrack *trk)
WTrackParameter wtrk(int n) const
WTrackParameter wVirtualTrack(int n) const
void AddVertex(int number, VertexParameter vpar, std::vector< int > lis)
static VertexFit * instance()
VertexParameter vpar(int n) const
void BuildVirtualParticle(int number)
void setEvx(const HepSymMatrix &eVx)
void setVx(const HepPoint3D &vx)
_EXTERN_ std::string EvtRecEvent