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/** |
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* \file TrkLevel1.cpp |
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* \author Elena Vannuccini |
4 |
*/ |
5 |
#include <TrkLevel1.h> |
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#include <iostream> |
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using namespace std; |
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//...................................... |
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// F77 routines |
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//...................................... |
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extern "C" { |
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|
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// int readetaparam_(); |
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float cog_(int*,int*); |
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float pfaeta_(int*,float*); |
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float pfaeta2_(int*,float*); |
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float pfaeta3_(int*,float*); |
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float pfaeta4_(int*,float*); |
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float pfaetal_(int*,float*); |
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float digsat_(int*); |
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int npfastrips_(int*,float*); |
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|
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} |
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//-------------------------------------- |
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// |
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// |
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//-------------------------------------- |
28 |
TrkCluster::TrkCluster(){ |
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|
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// cout << "TrkCluster::TrkCluster()"<<endl; |
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view = -1; |
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maxs = -1; |
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indmax = -1; |
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|
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CLlength = 0; |
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clsignal = 0; |
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clsigma = 0; |
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cladc = 0; |
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clbad = 0; |
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|
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}; |
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//-------------------------------------- |
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// |
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// |
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//-------------------------------------- |
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TrkCluster::TrkCluster(const TrkCluster& t){ |
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|
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view = t.view; |
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maxs = t.maxs; |
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indmax = t.indmax; |
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|
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CLlength = t.CLlength; |
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if(CLlength){ |
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clsignal = new Float_t[CLlength]; |
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clsigma = new Float_t[CLlength]; |
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cladc = new Int_t[CLlength]; |
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clbad = new Bool_t[CLlength]; |
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for(Int_t i=0; i<CLlength;i++){ |
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clsignal[i] = t.clsignal[i]; |
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clsigma[i] = t.clsigma[i]; |
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cladc[i] = t.cladc[i]; |
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clbad[i] = t.clbad[i]; |
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}; |
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}; |
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}; |
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//-------------------------------------- |
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// |
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// |
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//-------------------------------------- |
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void TrkCluster::Clear(){ |
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|
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// cout << "void TrkCluster::Clear()"<<endl; |
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if(CLlength){ |
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delete [] clsignal; |
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delete [] clsigma; |
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delete [] cladc; |
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delete [] clbad; |
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} |
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|
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view = 0; |
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maxs = 0; |
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indmax = 0; |
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|
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CLlength = 0; |
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clsignal = 0; |
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clsigma = 0; |
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cladc = 0; |
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clbad = 0; |
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|
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}; |
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//-------------------------------------- |
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// |
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// |
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//-------------------------------------- |
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/** |
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* Evaluate the cluster signal including a maximum number of adjacent |
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* strips, around maxs, having a significant signal. |
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* @param nstrip Maximum number of strips. |
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* @param cut Inclusion cut ( s > cut*sigma ). |
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* @param force Falg to force the PFA strip-inclusion pattern (nstrip>0) |
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* If nstrip<=0 only the inclusion cut is used to determine the cluster size. |
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*/ |
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Float_t TrkCluster::GetSignal(Int_t nstrip, Float_t cut, Bool_t force){ |
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|
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if(CLlength<=0)return 0; |
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|
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Float_t s = 0; |
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|
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//----------------------------------- |
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// inlcude strips with s > cut*sigma |
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//----------------------------------- |
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|
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if( nstrip<=0 ){ |
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// for(Int_t is = 0; is < CLlength; is++){ |
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// Float_t scut = cut*clsigma[is]; |
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// if(clsignal[is] > scut) s += clsignal[is]; |
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// }; |
118 |
for(Int_t is = indmax+1; is < CLlength; is++){ |
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Float_t scut = cut*clsigma[is]; |
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if(clsignal[is] > scut) s += clsignal[is]; |
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else break; |
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}; |
123 |
for(Int_t is = indmax; is >=0; is--){ |
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Float_t scut = cut*clsigma[is]; |
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if(clsignal[is] > scut) s += clsignal[is]; |
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else break; |
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}; |
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return s; |
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}; |
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|
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//--------------------------------------------------- |
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// inlcude strips with s > cut*sigma, up to nstrip. |
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// strips are included in order of decreasing signal |
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//--------------------------------------------------- |
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if( !force ){ |
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|
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Int_t il = indmax; |
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Int_t ir = indmax; |
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Int_t inc = 0; |
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|
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if( clsignal[indmax] < cut*clsigma[indmax] ) return 0; |
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|
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while ( inc < nstrip ){ |
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Float_t sl = -100000; |
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Float_t sr = -100000; |
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if( il >= 0 ) sl = clsignal[il]; |
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if( ir < CLlength ) sr = clsignal[ir]; |
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if( sl == sr && inc == 0 ){ |
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s += clsignal[il]; //cout << inc<<" - "<< clsignal[il]<<" "<<s<<endl; |
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il--; |
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ir++; |
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}else if ( sl >= sr && sl > cut*clsigma[il] && inc !=0 ){ |
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s += sl;//cout << inc<<" - "<< clsignal[il]<<" "<<s<<endl; |
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il--; |
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}else if ( sl < sr && sr > cut*clsigma[ir] ){ |
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s += sr;//cout << inc<<" - " << clsignal[ir]<<" "<<s<<endl; |
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ir++; |
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}else break; |
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|
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inc++; |
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} |
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return s; |
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|
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}else{ |
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//--------------------------------------------------- |
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// evaluate signal using a fixed number of strips, |
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// following the PFA inclusion patters |
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//--------------------------------------------------- |
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// --> signal of the central strip |
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Float_t sc = clsignal[indmax]; |
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// signal of adjacent strips |
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Float_t sl1 = -9999.; |
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Float_t sl2 = -9999.; |
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Float_t sr1 = -9999.; |
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Float_t sr2 = -9999.; |
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if(indmax-1>=0) sl1 = clsignal[indmax-1]; |
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if(indmax-2>=0) sl2 = clsignal[indmax-2]; |
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if(indmax+1<CLlength) sr1 = clsignal[indmax+1]; |
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if(indmax+2<CLlength) sr2 = clsignal[indmax+2]; |
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|
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if(nstrip==1){ |
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s = sc; |
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}else if(nstrip==2){ |
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if( sl1>sr1 && sl1+sc!=0 )s = (sl1+sc); |
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if( sl1<sr1 && sr1+sc!=0 )s = (sc+sr1); |
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if( sl1==sr1 && sl1 != -9999.){ |
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if( clsigma[indmax-1] < clsigma[indmax+1] && sl1+sc!=0 )s = (sl1+sc); |
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if( clsigma[indmax-1] > clsigma[indmax+1] && sc+sr1!=0 )s = (sc+sr1); |
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} |
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}else if(nstrip==3){ |
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s = (sl1+sc+sr1); |
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}else if(nstrip==4){ |
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if( sl2>sr2 && sl2+sl1+sc+sr1!=0 )s = (sl2+sl1+sc+sr1); |
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if( sl2<sr2 && sl1+sc+sr1+sr2!=0 )s = (sl1+sc+sr1+sr2); |
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if( sl2==sr2 && sl2 != -9999.){ |
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if( clsigma[indmax-2] < clsigma[indmax+2] && sl2+sl1+sc+sr1!=0 )s = (sl2+sl1+sc+sr1); |
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if( clsigma[indmax-2] > clsigma[indmax+2] && sl1+sc+sr1+sr2!=0 )s = (sl1+sc+sr1+sr2); |
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} |
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}else if(nstrip==5){ |
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s = (sl1+sc+sr1); |
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if(sl2 != -9999.)s += sl2; |
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if(sr2 != -9999.)s += sr2; |
203 |
}else{ |
204 |
cout << "Float_t TrkCluster::GetSignal("<<nstrip<<","<<cut<<","<<force<<")- not implemented"<<endl; |
205 |
} |
206 |
|
207 |
} |
208 |
|
209 |
return 0.; |
210 |
|
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}; |
212 |
|
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|
214 |
/** |
215 |
* Evaluate the cluster signal-to-noise, as defined by Turchetta, including a |
216 |
* maximum number of adjacent strips, around maxs, having a significant signal. |
217 |
* @param nstrip Maximum number of strips. |
218 |
* @param cut Inclusion cut ( s > cut*sigma ). |
219 |
* If nstrip<=0 only the inclusion cut is used to determine the cluster size. |
220 |
*/ |
221 |
Float_t TrkCluster::GetSignalToNoise(Int_t nstrip, Float_t cut){ |
222 |
|
223 |
if(CLlength<=0)return 0; |
224 |
|
225 |
Float_t sn = 0; |
226 |
|
227 |
if( nstrip<=0 ){ |
228 |
for(Int_t is = indmax+1; is < CLlength; is++){ |
229 |
Float_t scut = cut*clsigma[is]; |
230 |
if(clsignal[is] > scut) sn += clsignal[is]/clsigma[is]; |
231 |
else break; |
232 |
}; |
233 |
for(Int_t is = indmax; is >=0; is--){ |
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Float_t scut = cut*clsigma[is]; |
235 |
if(clsignal[is] > scut) sn += clsignal[is]/clsigma[is]; |
236 |
else break; |
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}; |
238 |
return sn; |
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}; |
240 |
|
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|
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Int_t il = indmax; |
243 |
Int_t ir = indmax; |
244 |
Int_t inc = 0; |
245 |
|
246 |
if( clsignal[indmax] < cut*clsigma[indmax] ) return 0; |
247 |
|
248 |
while ( inc < nstrip ){ |
249 |
Float_t sl = -100000; |
250 |
Float_t sr = -100000; |
251 |
if( il >= 0 ) sl = clsignal[il]; |
252 |
if( ir < CLlength ) sr = clsignal[ir]; |
253 |
if( sl == sr && inc == 0 ){ |
254 |
sn += clsignal[il]/clsigma[il]; |
255 |
il--; |
256 |
ir++; |
257 |
}else if ( sl >= sr && sl > cut*clsigma[il] && inc !=0 ){ |
258 |
sn += sl/clsigma[il]; |
259 |
il--; |
260 |
}else if ( sl < sr && sr > cut*clsigma[ir] ){ |
261 |
sn += sr/clsigma[ir]; |
262 |
ir++; |
263 |
}else break; |
264 |
|
265 |
inc++; |
266 |
} |
267 |
return sn; |
268 |
}; |
269 |
/** |
270 |
* Evaluate the cluster multiplicity. |
271 |
* @param cut Inclusion cut. |
272 |
*/ |
273 |
Int_t TrkCluster::GetMultiplicity(Float_t cut){ |
274 |
|
275 |
if(CLlength<=0)return 0; |
276 |
|
277 |
Int_t m = 0; |
278 |
|
279 |
for(Int_t is = indmax+1; is < CLlength; is++){ |
280 |
Float_t scut = cut*clsigma[is]; |
281 |
if(clsignal[is] > scut) m++; |
282 |
else break; |
283 |
}; |
284 |
for(Int_t is = indmax; is >=0; is--){ |
285 |
Float_t scut = cut*clsigma[is]; |
286 |
if(clsignal[is] > scut) m++; |
287 |
else break; |
288 |
}; |
289 |
return m; |
290 |
}; |
291 |
/** |
292 |
* True if the cluster contains bad strips. |
293 |
* @param nbad Number of strips around the maximum. |
294 |
*/ |
295 |
Bool_t TrkCluster::IsBad(Int_t nbad){ |
296 |
|
297 |
if(CLlength<=0)return 0; |
298 |
|
299 |
Int_t il,ir; |
300 |
il = indmax; |
301 |
ir = indmax; |
302 |
for(Int_t i=1; i<nbad; i++){ |
303 |
if (ir == CLlength-1 && il == 0)break; |
304 |
else if (ir == CLlength-1 && il != 0)il--; |
305 |
else if (ir != CLlength-1 && il == 0)ir++; |
306 |
else{ |
307 |
if(clsignal[il-1] > clsignal[ir+1])il--; |
308 |
else ir++; |
309 |
} |
310 |
} |
311 |
Int_t isbad = 0; |
312 |
for(Int_t i=il; i<=ir; i++)isbad += clbad[i]; |
313 |
|
314 |
return ( isbad != nbad ); |
315 |
}; |
316 |
/** |
317 |
* True if the cluster contains saturated strips. |
318 |
* @param nbad Number of strips around the maximum. |
319 |
*/ |
320 |
Bool_t TrkCluster::IsSaturated(Int_t nbad){ |
321 |
|
322 |
if(CLlength<=0)return 0; |
323 |
|
324 |
Int_t il,ir; |
325 |
il = indmax; |
326 |
ir = indmax; |
327 |
for(Int_t i=1; i<nbad; i++){ |
328 |
if (ir == CLlength-1 && il == 0)break; |
329 |
else if (ir == CLlength-1 && il != 0)il--; |
330 |
else if (ir != CLlength-1 && il == 0)ir++; |
331 |
else{ |
332 |
if(clsignal[il-1] > clsignal[ir+1])il--; |
333 |
else ir++; |
334 |
} |
335 |
} |
336 |
Int_t isbad = 0; |
337 |
for(Int_t i=il; i<=ir; i++){ |
338 |
if( IsX() && cladc[i] > 2980 )isbad++; |
339 |
if( IsY() && cladc[i] < 80 )isbad++; |
340 |
} |
341 |
return ( isbad != 0 ); |
342 |
|
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} |
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//-------------------------------------- |
345 |
// |
346 |
// |
347 |
//-------------------------------------- |
348 |
void TrkCluster::Dump(){ |
349 |
|
350 |
cout << "----- Cluster" << endl; |
351 |
cout << "View "<<view << " - Ladder "<<GetLadder()<<endl; |
352 |
cout << "Position of maximun "<< maxs <<endl; |
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cout << "Multiplicity "<< GetMultiplicity() <<endl; |
354 |
cout << "Tot signal "<< GetSignal() << " (ADC channels)"<<endl ; |
355 |
cout << "Signal/Noise "<< GetSignalToNoise()<<endl; |
356 |
cout << "COG "<< GetCOG(0)<<endl;; |
357 |
cout << "Strip signals "; |
358 |
for(Int_t i =0; i<CLlength; i++)cout << " " <<clsignal[i]; |
359 |
cout <<endl<< "Strip sigmas "; |
360 |
for(Int_t i =0; i<CLlength; i++)cout << " " <<clsigma[i]; |
361 |
cout <<endl<< "Strip ADC "; |
362 |
for(Int_t i =0; i<CLlength; i++)cout << " " <<cladc[i]; |
363 |
cout <<endl<< "Strip BAD "; |
364 |
for(Int_t i =0; i<CLlength; i++){ |
365 |
if(i==indmax)cout << " *" <<clbad[i]<<"*"; |
366 |
else cout << " " <<clbad[i]; |
367 |
} |
368 |
cout << endl; |
369 |
|
370 |
} |
371 |
//-------------------------------------- |
372 |
// |
373 |
// |
374 |
//-------------------------------------- |
375 |
/** |
376 |
* Method to fill a level1 struct with only one cluster (done to use F77 p.f.a. routines on a cluster basis). |
377 |
*/ |
378 |
void TrkCluster::GetLevel1Struct(cTrkLevel1* l1){ |
379 |
|
380 |
// cTrkLevel1* l1 = new cTrkLevel1; |
381 |
|
382 |
// cTrkLevel1* l1 = &level1event_ ; |
383 |
|
384 |
l1->nclstr1 = 1; |
385 |
l1->view[0] = view; |
386 |
l1->ladder[0] = GetLadder(); |
387 |
l1->maxs[0] = maxs; |
388 |
l1->mult[0] = GetMultiplicity(); |
389 |
l1->dedx[0] = GetSignal(); |
390 |
l1->indstart[0] = 1; |
391 |
l1->indmax[0] = indmax+1; |
392 |
l1->totCLlength = CLlength; |
393 |
for(Int_t i=0; i<CLlength; i++){ |
394 |
l1->clsignal[i] = clsignal[i]; |
395 |
l1->clsigma[i] = clsigma[i]; |
396 |
l1->cladc[i] = cladc[i]; |
397 |
l1->clbad[i] = clbad[i]; |
398 |
}; |
399 |
|
400 |
// return l1; |
401 |
}; |
402 |
//-------------------------------------- |
403 |
// |
404 |
// |
405 |
//-------------------------------------- |
406 |
/** |
407 |
* Evaluates the Center-Of-Gravity (COG) of the cluster, in strips, relative to the strip with the maximum signal (TrkCluster::maxs). |
408 |
* @param ncog Number of strips to evaluate COG. |
409 |
* If ncog=0, the COG of the cluster is evaluated according to the cluster multiplicity (defined by the inclusion cut). |
410 |
* If ncog>0, the COG is evaluated using ncog strips, even if they have a negative signal (according to G.Landi) |
411 |
*/ |
412 |
Float_t TrkCluster::GetCOG(Int_t ncog){ |
413 |
|
414 |
int ic = 1; |
415 |
GetLevel1Struct(); |
416 |
return cog_(&ncog,&ic); |
417 |
|
418 |
}; |
419 |
/** |
420 |
* Evaluates the Center-Of-Gravity (COG) of the cluster, in strips, relative to the strip with the maximum signal (TrkCluster::maxs), |
421 |
* choosing the number of strips according to the angle, as implemented for the eta-algorythm . |
422 |
* @param angle Projected angle in degree. |
423 |
*/ |
424 |
Float_t TrkCluster::GetCOG(Float_t angle){ |
425 |
|
426 |
Int_t neta = 0; |
427 |
|
428 |
// Float_t eta = GetETA(0,angle); |
429 |
// for(neta=2; neta<10; neta++) if( eta == GetETA(neta,angle) ) break; |
430 |
// if(eta != GetETA(neta,angle) )cout << "Attenzione!! pasticcio "<<endl; |
431 |
|
432 |
if( view%2 ){ //Y |
433 |
neta=2; |
434 |
}else{ //X |
435 |
if( fabs(angle) <= 10. ){ |
436 |
neta = 2; |
437 |
}else if( fabs(angle) > 10. && fabs(angle) <= 15. ){ |
438 |
neta = 3; |
439 |
}else{ |
440 |
neta = 4; |
441 |
}; |
442 |
}; |
443 |
|
444 |
return GetCOG(neta); |
445 |
|
446 |
}; |
447 |
//-------------------------------------- |
448 |
// |
449 |
// |
450 |
//-------------------------------------- |
451 |
/** |
452 |
* Evaluates the cluster position, in pitch units, relative to the strip |
453 |
* with the maximum signal (TrkCluster::maxs), by applying the non-linear |
454 |
* ETA-algorythm. |
455 |
* @param neta Number of strips to evaluate ETA. |
456 |
* @param angle Projected (effective) angle between particle track and detector plane. |
457 |
* @landi flag to apply Landi correction |
458 |
* Implemented values of neta are 2,3,4. If neta=0, ETA2, ETA3 and ETA4 are applied according to the angle. |
459 |
*/ |
460 |
Float_t TrkCluster::GetETA(Int_t neta, float angle, bool landi){ |
461 |
|
462 |
// cout << "GetETA(neta,angle) "<< neta << " "<< angle; |
463 |
// LoadPfaParam(); |
464 |
|
465 |
TrkParams::Load(4); |
466 |
if( !TrkParams::IsLoaded(4) ){ |
467 |
cout << "Float_t TrkCluster::GetETA(Int_t neta, float angle, bool landi) --- ERROR --- p.f.a. parameters not loaded"<<endl; |
468 |
return 0; |
469 |
} |
470 |
|
471 |
float ax = angle; |
472 |
int ic = 1; |
473 |
GetLevel1Struct(); |
474 |
if( neta == 0 && !landi) return pfaeta_(&ic,&ax); |
475 |
else if(neta == 0 && landi ) return pfaetal_(&ic,&ax); |
476 |
else if(neta == 2 ) return pfaeta2_(&ic,&ax); |
477 |
else if(neta == 3 ) return pfaeta3_(&ic,&ax); |
478 |
else if(neta == 4 ) return pfaeta4_(&ic,&ax); |
479 |
else cout << "TrkCluster::GetETA("<<neta<<","<<angle<<","<<landi<<") not implemented\n"; |
480 |
return 0; |
481 |
|
482 |
}; |
483 |
|
484 |
/** |
485 |
* Evaluates the cluster position, in pitch units, relative to the strip |
486 |
* with the maximum signal (TrkCluster::maxs), by applying the digital |
487 |
* algorithm for saturated clusters. |
488 |
* |
489 |
* @return The cluster position (0 also if if no saturated strip is found). |
490 |
*/ |
491 |
Float_t TrkCluster::GetDigSat() { |
492 |
|
493 |
GetLevel1Struct(); |
494 |
int ic = 1; |
495 |
return digsat_(&ic); |
496 |
|
497 |
} |
498 |
|
499 |
/** |
500 |
* Evaluates the cluster position, in pitch unit, relative to the strip with |
501 |
* the maximum signal (TrkCluster::maxs), by applying the PFA set as default (see TrkParams). |
502 |
* @param angle Projected (effective) angle between particle track and detector plane. |
503 |
*/ |
504 |
Float_t TrkCluster::GetPositionPU(float angle){ |
505 |
|
506 |
if ( TrkParams::GetPFA() == 0 )return GetETA(0,angle,false); |
507 |
else if( TrkParams::GetPFA() == 2 )return GetETA(2,angle,false); |
508 |
else if( TrkParams::GetPFA() == 3 )return GetETA(3,angle,false); |
509 |
else if( TrkParams::GetPFA() == 4 )return GetETA(4,angle,false); |
510 |
else if( TrkParams::GetPFA() == 5 )return GetETA(0,angle,true); |
511 |
else if( TrkParams::GetPFA() == 10 )return GetCOG(0); |
512 |
else if( TrkParams::GetPFA() == 11 )return GetCOG(1); |
513 |
else if( TrkParams::GetPFA() == 12 )return GetCOG(2); |
514 |
else if( TrkParams::GetPFA() == 13 )return GetCOG(3); |
515 |
else if( TrkParams::GetPFA() == 14 )return GetCOG(4); |
516 |
else cout << " TrkCluster::GetPositionPU(float "<<angle<<") -- WARNING -- PFA="<<TrkParams::GetPFA()<<" not implemented"<<endl; |
517 |
|
518 |
return 0.; |
519 |
|
520 |
} |
521 |
|
522 |
/** |
523 |
* Give the number of strip used to evaluate the cluster coordinate |
524 |
* according to the p.f.a. |
525 |
* It returns 0 when the COG is used (in this case the number of strip used |
526 |
* equals the multiplicity). |
527 |
*/ |
528 |
Int_t TrkCluster::GetPFAstrips(float angle){ |
529 |
|
530 |
float ax = angle; |
531 |
int ic = 1; |
532 |
GetLevel1Struct(); |
533 |
return npfastrips_(&ic,&ax); |
534 |
|
535 |
} |
536 |
|
537 |
//-------------------------------------- |
538 |
// |
539 |
// |
540 |
//-------------------------------------- |
541 |
TrkLevel1::TrkLevel1(){ |
542 |
|
543 |
// cout << "TrkLevel1::TrkLevel1()"<<endl; |
544 |
// Cluster = new TClonesArray("TrkCluster"); |
545 |
Cluster = 0; |
546 |
for(Int_t i=0; i<12 ; i++){ |
547 |
good[i] = -1; |
548 |
for(Int_t j=0; j<24 ; j++){ |
549 |
cn[j][i]=0; |
550 |
cnn[j][i]=0; |
551 |
}; |
552 |
}; |
553 |
// TrkParams::SetTrackingMode(); |
554 |
// TrkParams::SetPrecisionFactor(); |
555 |
// TrkParams::SetStepMin(); |
556 |
TrkParams::SetMiniDefault(); |
557 |
TrkParams::SetPFA(); |
558 |
} |
559 |
//-------------------------------------- |
560 |
// |
561 |
// |
562 |
//-------------------------------------- |
563 |
void TrkLevel1::Set(){ |
564 |
if(!Cluster)Cluster = new TClonesArray("TrkCluster"); |
565 |
} |
566 |
//-------------------------------------- |
567 |
// |
568 |
// |
569 |
//-------------------------------------- |
570 |
void TrkLevel1::Dump(){ |
571 |
|
572 |
cout<<"DSP status: "; |
573 |
for(Int_t i=0; i<12 ; i++)cout<<good[i]<<" "; |
574 |
cout<<endl; |
575 |
cout<<"VA1 mask : "<<endl; |
576 |
for(Int_t i=0; i<12 ; i++){ |
577 |
for(Int_t ii=0; ii<24 ; ii++){ |
578 |
Int_t mask = cnn[ii][i]; |
579 |
if(mask>0)mask=1; |
580 |
cout<<mask<<" "; |
581 |
} |
582 |
cout <<endl; |
583 |
} |
584 |
|
585 |
if(!Cluster)return; |
586 |
TClonesArray &t = *Cluster; |
587 |
for(int i=0; i<this->nclstr(); i++) ((TrkCluster *)t[i])->Dump(); |
588 |
|
589 |
} |
590 |
/** |
591 |
* \brief Dump processing status |
592 |
*/ |
593 |
void TrkLevel1::StatusDump(int view){ |
594 |
cout << "DSP n. "<<view+1<<" (level1-)status: "<<hex<<showbase<<good[view]<<dec<<endl; |
595 |
}; |
596 |
/** |
597 |
* \brief Check event status |
598 |
* |
599 |
* Check the event status, according to a flag-mask given as input. |
600 |
* Return true if the view passes the check. |
601 |
* |
602 |
* @param view View number (0-11) |
603 |
* @param flagmask Mask of flags to check (eg. flagmask=0x111 no missing packet, |
604 |
* no crc error, no software alarm) |
605 |
* |
606 |
* @see TrkLevel2 class definition to know how the status flag is defined |
607 |
* |
608 |
*/ |
609 |
Bool_t TrkLevel1::StatusCheck(int view, int flagmask){ |
610 |
|
611 |
if( view<0 || view >= 12)return false; |
612 |
return !(good[view]&flagmask); |
613 |
|
614 |
}; |
615 |
|
616 |
|
617 |
//-------------------------------------- |
618 |
// |
619 |
// |
620 |
//-------------------------------------- |
621 |
/** |
622 |
* Fills a TrkLevel1 object with values from a struct cTrkLevel1 (to get data from F77 common). |
623 |
*/ |
624 |
void TrkLevel1::SetFromLevel1Struct(cTrkLevel1 *l1, Bool_t full){ |
625 |
|
626 |
// cout << "void TrkLevel1::SetFromLevel1Struct(cTrkLevel1 *l1, Bool_t full)"<<endl; |
627 |
|
628 |
Clear(); |
629 |
// --------------- |
630 |
// *** CLUSTER *** |
631 |
// --------------- |
632 |
TrkCluster* t_cl = new TrkCluster(); |
633 |
if(!Cluster)Cluster = new TClonesArray("TrkCluster"); |
634 |
TClonesArray &t = *Cluster; |
635 |
for(int i=0; i<l1->nclstr1; i++){ |
636 |
|
637 |
t_cl->Clear(); |
638 |
// if( full || (!full && l1->whichtrack[i]) ){ |
639 |
|
640 |
t_cl->view = l1->view[i]; |
641 |
t_cl->maxs = l1->maxs[i]; |
642 |
|
643 |
if( full || (!full && l1->whichtrack[i]) ){ |
644 |
t_cl->indmax = l1->indmax[i] - l1->indstart[i]; |
645 |
Int_t from = l1->indstart[i] -1; |
646 |
Int_t to = l1->totCLlength ; |
647 |
if(i != l1->nclstr1-1)to = l1->indstart[i+1] -1 ; |
648 |
t_cl->CLlength = to - from ; |
649 |
|
650 |
t_cl->clsignal = new Float_t[t_cl->CLlength]; |
651 |
t_cl->clsigma = new Float_t[t_cl->CLlength]; |
652 |
t_cl->cladc = new Int_t[t_cl->CLlength]; |
653 |
t_cl->clbad = new Bool_t[t_cl->CLlength]; |
654 |
|
655 |
Int_t index = 0; |
656 |
for(Int_t is = from; is < to; is++ ){ |
657 |
t_cl->clsignal[index] = (Float_t) l1->clsignal[is]; |
658 |
t_cl->clsigma[index] = (Float_t) l1->clsigma[is]; |
659 |
t_cl->cladc[index] = (Int_t) l1->cladc[is]; |
660 |
t_cl->clbad[index] = (Bool_t) l1->clbad[is]; |
661 |
index++; |
662 |
}; |
663 |
} |
664 |
new(t[i]) TrkCluster(*t_cl); // <<< store cluster |
665 |
}; |
666 |
|
667 |
delete t_cl; |
668 |
|
669 |
// ------------------------- |
670 |
// ****general variables**** |
671 |
// ------------------------- |
672 |
for(Int_t i=0; i<12 ; i++){ |
673 |
good[i] = l1->good[i]; |
674 |
for(Int_t j=0; j<24 ; j++){ |
675 |
cn[j][i] = l1->cnev[j][i]; |
676 |
// cnrms[j][i] = l1->cnrmsev[j][i]; |
677 |
cnn[j][i] = l1->cnnev[j][i]; |
678 |
}; |
679 |
}; |
680 |
|
681 |
} |
682 |
/** |
683 |
* Fills a struct cTrkLevel1 with values from a TrkLevel1 object (to put data into a F77 common). |
684 |
*/ |
685 |
|
686 |
void TrkLevel1::GetLevel1Struct(cTrkLevel1* l1) { |
687 |
|
688 |
// cTrkLevel1* l1 = &level1event_ ; |
689 |
|
690 |
for(Int_t i=0; i<12 ; i++){ |
691 |
l1->good[i] = good[i]; |
692 |
for(Int_t j=0; j<24 ; j++){ |
693 |
l1->cnev[j][i] = cn[j][i] ; |
694 |
l1->cnnev[j][i] = cnn[j][i] ; |
695 |
l1->cnrmsev[j][i] = 0. ; |
696 |
}; |
697 |
l1->fshower[i] = 0; |
698 |
}; |
699 |
|
700 |
l1->nclstr1=0; |
701 |
l1->totCLlength=0; |
702 |
Int_t index=0; |
703 |
if(Cluster){ |
704 |
Int_t i=0; |
705 |
for(Int_t ii=0;ii<Cluster->GetEntries();ii++){ |
706 |
TrkCluster *clu = GetCluster(ii); |
707 |
// ---------------------------------------- |
708 |
// attenzione!! |
709 |
// se il cluster non e` salvato (view = 0) |
710 |
// DEVE essere escluso dal common F77 |
711 |
// ---------------------------------------- |
712 |
if(clu->view != 0 ){ |
713 |
l1->view[i] = clu->view; |
714 |
l1->ladder[i] = clu->GetLadder(); |
715 |
l1->maxs[i] = clu->maxs; |
716 |
l1->mult[i] = clu->GetMultiplicity(); |
717 |
l1->dedx[i] = clu->GetSignal(); |
718 |
l1->indstart[i] = index+1; |
719 |
l1->indmax[i] = l1->indstart[i] + clu->indmax; |
720 |
l1->totCLlength += clu->CLlength; |
721 |
for(Int_t iw=0; iw < clu->CLlength; iw++){ |
722 |
l1->clsignal[index] = clu->clsignal[iw]; |
723 |
l1->clsigma[index] = clu->clsigma[iw]; |
724 |
l1->cladc[index] = clu->cladc[iw]; |
725 |
l1->clbad[index] = clu->clbad[iw]; |
726 |
index++; |
727 |
} |
728 |
i++; |
729 |
} |
730 |
} |
731 |
l1->nclstr1 = i; |
732 |
} |
733 |
|
734 |
// return l1; |
735 |
} |
736 |
//-------------------------------------- |
737 |
// |
738 |
// |
739 |
//-------------------------------------- |
740 |
void TrkLevel1::Clear(){ |
741 |
|
742 |
for(Int_t i=0; i<12 ; i++){ |
743 |
good[i] = -1; |
744 |
for(Int_t j=0; j<24 ; j++){ |
745 |
cn[j][i] = 0; |
746 |
cnn[j][i] = 0; |
747 |
}; |
748 |
}; |
749 |
// if(Cluster)Cluster->Clear("C"); |
750 |
if(Cluster)Cluster->Delete(); |
751 |
|
752 |
} |
753 |
//-------------------------------------- |
754 |
// |
755 |
// |
756 |
//-------------------------------------- |
757 |
void TrkLevel1::Delete(){ |
758 |
|
759 |
// Clear(); |
760 |
if(Cluster)Cluster->Delete(); |
761 |
if(Cluster)delete Cluster; |
762 |
|
763 |
} |
764 |
//-------------------------------------- |
765 |
// |
766 |
// |
767 |
//-------------------------------------- |
768 |
TrkCluster *TrkLevel1::GetCluster(int is){ |
769 |
|
770 |
if(!Cluster)return 0; |
771 |
if(is >= nclstr()){ |
772 |
cout << "** TrkLevel1::GetCluster(int) ** Cluster "<< is << " does not exits! " << endl; |
773 |
cout << "( Stored clusters nclstr() = "<< this->nclstr()<<" )" << endl; |
774 |
return 0; |
775 |
} |
776 |
|
777 |
TClonesArray &t = *(Cluster); |
778 |
TrkCluster *cluster = (TrkCluster*)t[is]; |
779 |
return cluster; |
780 |
} |
781 |
|
782 |
|
783 |
// int TrkLevel1::GetPfaNbinsAngle(){ |
784 |
// TrkParams::Load(4); |
785 |
// if( !TrkParams::IsLoaded(4) ){ |
786 |
// cout << "int TrkLevel1::GetPfaNbinsAngle() --- ERROR --- p.f.a. parameters not loaded"<<endl; |
787 |
// return 0; |
788 |
// } |
789 |
// return pfa_.nangbin; |
790 |
// }; |
791 |
|
792 |
// int TrkLevel1::GetPfaNbinsETA(){ |
793 |
// TrkParams::Load(4); |
794 |
// if( !TrkParams::IsLoaded(4) ){ |
795 |
// cout << "int TrkLevel1::GetPfaNbinsETA() --- ERROR --- p.f.a. parameters not loaded"<<endl; |
796 |
// return 0; |
797 |
// } |
798 |
// return pfa_.netaval; |
799 |
// }; |
800 |
|
801 |
// /** |
802 |
// * |
803 |
// * |
804 |
// */ |
805 |
// float* TrkLevel1::GetPfaCoord(TString pfa, int nview, int nladder, int nang){ |
806 |
|
807 |
// TrkParams::Load(4); |
808 |
// if( !TrkParams::IsLoaded(4) ){ |
809 |
// cout << "float* TrkLevel1::GetPfaCoord(TString pfa, int nview, int nladder, int nang) --- ERROR --- p.f.a. parameters not loaded"<<endl; |
810 |
// return 0; |
811 |
// } |
812 |
|
813 |
// int nbins = GetPfaNbinsETA(); |
814 |
// if(!nbins)return 0; |
815 |
|
816 |
// float *fcorr = new float [nbins]; |
817 |
|
818 |
// if(!pfa.CompareTo("ETA2",TString::kIgnoreCase)){ |
819 |
// for(int ib=0; ib<nbins; ib++){ |
820 |
// fcorr[ib] = pfa_.feta2[nang][nladder][nview][ib]; |
821 |
// cout << pfa_.eta2[nang][ib] << " - " << pfa_.feta2[nang][nladder][nview][ib]<<endl;; |
822 |
// } |
823 |
// }else if (!pfa.CompareTo("ETA3",TString::kIgnoreCase)){ |
824 |
// for(int ib=0; ib<nbins; ib++)fcorr[ib] = pfa_.feta3[nang][nladder][nview][ib]; |
825 |
// }else if (!pfa.CompareTo("ETA4",TString::kIgnoreCase)){ |
826 |
// for(int ib=0; ib<nbins; ib++)fcorr[ib] = pfa_.feta4[nang][nladder][nview][ib]; |
827 |
// }else{ |
828 |
// cout << pfa<<" pfa parameters not implemented "<<endl; |
829 |
// return 0; |
830 |
// } |
831 |
|
832 |
// return fcorr; |
833 |
|
834 |
// }; |
835 |
|
836 |
// float* TrkLevel1::GetPfaAbs(TString pfa, int nang){ |
837 |
|
838 |
// TrkParams::Load(4); |
839 |
// if( !TrkParams::IsLoaded(4) ){ |
840 |
// cout << "float* TrkLevel1::GetPfaAbs(TString pfa, int nang) --- ERROR --- p.f.a. parameters not loaded"<<endl; |
841 |
// return 0; |
842 |
// } |
843 |
|
844 |
// int nbins = GetPfaNbinsETA(); |
845 |
// if(!nbins)return 0; |
846 |
|
847 |
// float *fcorr = new float [nbins]; |
848 |
|
849 |
// if(!pfa.CompareTo("ETA2",TString::kIgnoreCase)){ |
850 |
// for(int ib=0; ib<nbins; ib++)fcorr[ib] = pfa_.eta2[nang][ib]; |
851 |
// }else if (!pfa.CompareTo("ETA3",TString::kIgnoreCase)){ |
852 |
// for(int ib=0; ib<nbins; ib++)fcorr[ib] = pfa_.eta3[nang][ib]; |
853 |
// }else if (!pfa.CompareTo("ETA4",TString::kIgnoreCase)){ |
854 |
// for(int ib=0; ib<nbins; ib++)fcorr[ib] = pfa_.eta4[nang][ib]; |
855 |
// }else{ |
856 |
// cout << pfa<<" pfa parameters not implemented "<<endl; |
857 |
// return 0; |
858 |
// } |
859 |
|
860 |
// return fcorr; |
861 |
|
862 |
// }; |
863 |
|
864 |
/** |
865 |
* Method to call the F77 routine that performs level1->level2 processing. |
866 |
* The level2 output is stored in a common block, which can be retrieved |
867 |
* by mean of the method TrkLevel2::SetFromLevel2Struct(). |
868 |
* NB If the TrkLevel1 object is readout from a tree, and the |
869 |
* TrkLevel1::ProcessEvent(int pfa) is used to reprocess the event, attention |
870 |
* should be payed to the fact that single clusters (clusters not associated |
871 |
* with any track) might not be stored. Full reprocessing should be done starting |
872 |
* from level0 data. |
873 |
*/ |
874 |
//int TrkLevel1::ProcessEvent(int pfa){ |
875 |
int TrkLevel1::ProcessEvent(){ |
876 |
|
877 |
// cout << "int TrkLevel1::ProcessEvent()" << endl; |
878 |
TrkParams::Load( ); |
879 |
if( !TrkParams::IsLoaded() )return 0; |
880 |
|
881 |
GetLevel1Struct(); |
882 |
|
883 |
// analysisflight_(&pfa); |
884 |
// TrkParams::SetPFA(pfa); |
885 |
analysisflight_(); |
886 |
|
887 |
return 1; |
888 |
|
889 |
} |
890 |
|
891 |
|
892 |
ClassImp(TrkLevel1); |
893 |
ClassImp(TrkCluster); |