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Comparing UserCode/cbrown/AnalysisFramework/Plotting/Modules/LimitCalculation.C (file contents):
Revision 1.12 by buchmann, Fri Aug 26 10:37:21 2011 UTC vs.
Revision 1.18 by buchmann, Fri Sep 2 06:23:51 2011 UTC

# Line 168 | Line 168 | ratio_binning.push_back(80);
168    
169   }
170  
171 < vector<float> compute_one_upper_limit(float mceff,float mcefferr, int ibin, string mcjzb, bool doobserved=false) {
171 > vector<float> compute_one_upper_limit(float mceff,float mcefferr, int ibin, string mcjzb, string plotfilename, bool doobserved) {
172    float sigma95=-9.9,sigma95A=-9.9;
173 <  int nuisancemodel=1;
173 >  int nuisancemodel=0;
174 > /*
175 > USAGE OF ROOSTATS_CL95
176 > " Double_t             limit = roostats_cl95(ilum, slum, eff, seff, bck, sbck, n, gauss = false, nuisanceModel, method, plotFileName, seed); \n"
177 > " LimitResult expected_limit = roostats_clm(ilum, slum, eff, seff, bck, sbck, ntoys, nuisanceModel, method, seed); \n"
178 > " Double_t     average_limit = roostats_cla(ilum, slum, eff, seff, bck, sbck, nuisanceModel, method, seed); \n"
179 > "                                                                     \n"
180 > "
181 > " Double_t obs_limit = limit.GetObservedLimit();                      \n"
182 > " Double_t exp_limit = limit.GetExpectedLimit();                      \n"
183 > " Double_t exp_up    = limit.GetOneSigmaHighRange();                  \n"
184 > " Double_t exp_down  = limit.GetOneSigmaLowRange();                   \n"
185 > " Double_t exp_2up   = limit.GetTwoSigmaHighRange();                  \n"
186 > " Double_t exp_2down = limit.GetTwoSigmaLowRange();                   \n"
187 > */
188    if(mceff<=0) {
189      write_warning(__FUNCTION__,"Cannot compute upper limit in this configuration as the efficiency is negative:");
190      dout << "mc efficiency=" << mceff << " +/- " << mcefferr;
# Line 179 | Line 193 | vector<float> compute_one_upper_limit(fl
193      sigmas.push_back(-1);
194      return sigmas;
195    } else {
196 +    int nlimittoysused=1;
197 +    //if(doobserved) nlimittoysused=nlimittoys;
198 +    nlimittoysused=nlimittoys;
199    dout << "Now calling : CL95(" << luminosity << "," <<  lumiuncert*luminosity << "," << mceff << "," << mcefferr << "," << Npred[ibin] << "," << Nprederr[ibin] << "," << Nobs[ibin] << "," << false << "," << nuisancemodel<< ") " << endl;
200    sigma95 = CL95(luminosity, lumiuncert*luminosity, mceff, mcefferr, Npred[ibin], Nprederr[ibin], Nobs[ibin], false, nuisancemodel);
201 +  
202 + /*  dout << "Now calling : roostats_cl95(" << luminosity << "," << lumiuncert*luminosity << ","<<mceff <<","<<mcefferr<<","<<Npred[ibin]<<","<<Nprederr[ibin] << ",n=" << nlimittoysused << ",gauss=" << false << ",nuisanceModel="<<nuisancemodel<<",method="<<limitmethod<<",plotfilename="<<plotfilename<<",seed=0) " << endl;
203 + /*  dout << "Now calling : roostats_limit(" << luminosity << "," << lumiuncert*luminosity << ","<<mceff <<","<<mcefferr<<","<<Npred[ibin]<<","<<Nprederr[ibin] << ",n=" << nlimittoysused << ",gauss=" << false << ", nuisanceModel="<<nuisancemodel<<",method="<<limitmethod<<",plotfilename="<<plotfilename<<",seed=1) " << endl;
204 +  LimitResult limit = roostats_limit(luminosity,lumiuncert*luminosity,mceff,mcefferr,Npred[ibin],Nprederr[ibin],nlimittoysused,false,nuisancemodel,limitmethod,plotfilename,0);
205 +  dout << "Now interpreting and saving results ... " << endl;
206 +  vector<float> sigmas;
207 +  sigmas.push_back(limit.GetExpectedLimit());//expected
208 +  sigmas.push_back(limit.GetObservedLimit());//observed
209 +  //up to here for backward compatibility
210 +  sigmas.push_back(limit.GetOneSigmaHighRange());//expected, up
211 +  sigmas.push_back(limit.GetTwoSigmaHighRange());//expected, 2 up
212 +  sigmas.push_back(limit.GetOneSigmaLowRange());//expected, down
213 +  sigmas.push_back(limit.GetTwoSigmaLowRange());//expected, 2 down
214 + */
215 + //  float limit = roostats_cl95(luminosity,lumiuncert*luminosity,mceff,mcefferr,Npred[ibin],Nprederr[ibin],nlimittoysused,false,nuisancemodel,limitmethod,plotfilename,0);
216    if(doobserved) {
217      dout << "Now calling : CLA(" << luminosity << "," <<  lumiuncert*luminosity << "," << mceff << "," << mcefferr << "," << Npred[ibin] << "," << Nprederr[ibin] << "," << nuisancemodel<< ") " << endl;
218      sigma95A = CLA(luminosity, lumiuncert*luminosity, mceff, mcefferr, Npred[ibin], Nprederr[ibin], nuisancemodel);
219    }
220 + //  vector<float> sigmas;
221 + //  sigmas.push_back(limit);
222    vector<float> sigmas;
223    sigmas.push_back(sigma95);
224    sigmas.push_back(sigma95A);
225    return sigmas;
226 +  
227 +
228    }
229 +  write_warning(__FUNCTION__,"STILL MISSING SIGMAS, LIMITS, EVERYTHING ...");
230   }
231  
232   void compute_upper_limits_from_counting_experiment(vector<vector<float> > uncertainties,vector<float> jzbcuts, string mcjzb, bool doobserved) {
# Line 215 | Line 252 | void compute_upper_limits_from_counting_
252   //      fill_result_histos(observed,observederr, null,null,null,null,null,null,null,mcjzb,JZBcutat,14000,(int)5,result,(signalsamples.FindSample(signalsamples.collection[isample].filename)),signalsamples);
253   //      observed-=result;//this is the actual excess we see!
254   //      float expected=observed/luminosity;
255 <      
255 >      string plotfilename=(string)(TString(signalsamples.collection[isample].samplename)+TString("___JZB_geq_")+TString(any2string(JZBcutat))+TString(".png"));
256        dout << "Sample: " << signalsamples.collection[isample].samplename << ", JZB>"<<JZBcutat<< " : " << mceff << " +/- " << staterr << " (stat) +/- " << systerr << " (syst) --> toterr = " << toterr << endl;
257 <      vector<float> sigmas = compute_one_upper_limit(mceff,toterr,ibin,mcjzb,doobserved);
257 >      vector<float> sigmas = compute_one_upper_limit(mceff,toterr,ibin,mcjzb,plotfilename,doobserved);
258        
259        if(doobserved) {
260   //      rows.push_back(any2string(sigmas[0])+";"+any2string(sigmas[1])+";"+"("+any2string(expected)+")");
# Line 255 | Line 292 | void compute_upper_limits_from_counting_
292    
293    if(!doobserved) {
294      dout << endl << endl << "LIMITS: (Tex)" << endl;
295 +    tout << "\\begin{table}[hbtp]" << endl;
296 +    tout << "\\renewcommand{\arraystretch}{1.3}" << endl;
297 +    tout << "\\begin{center}" << endl;
298 +    tout << "\\caption{Observed upper limits on the cross section of different LM benchmark points " << (ConsiderSignalContaminationForLimits?"  (accounting for signal contamination)":"  (not accounting for signal contamination)") << "}\\label{tab:lmresults}" << endl;
299 +    tout << "" << endl;
300      tout << "\\begin{tabular}{ | l | ";
301      for (int irow=0;irow<jzbcuts.size();irow++) tout << " l |";
302      tout << "} " << endl << " \\hline " << endl << "& \t ";
# Line 272 | Line 314 | void compute_upper_limits_from_counting_
314        tout << " \\\\ \\hline " << endl;
315      }
316        tout << "\\end{tabular}" << endl;
317 +      tout << "      \\end{tabular}"<< endl;
318 +      tout << "\\end{center}"<< endl;
319 +      tout << "\\end{table} "<< endl;
320 +
321    }//do observed
322    
323    dout << endl << endl << "Final selection efficiencies with total statistical and systematic errors, and corresponding observed and expected upper limits (UL) on ($\\sigma\\times$  BR $\\times$ acceptance) for the LM4 and LM8 scenarios, in the different regions. The last column contains the predicted ($\\sigma \\times $BR$\\times$ acceptance) at NLO obtained from Monte Carlo simulation." << endl;
324    dout << "Scenario \t Efficiency [%] \t Upper limits [pb] \t \\sigma [pb]" << endl;
325    for(int icut=0;icut<jzbcuts.size();icut++) {
326 <    dout << "Region with JZB>" << jzbcuts[icut] << endl;
326 >    dout << "Region with JZB>" << jzbcuts[icut] << (ConsiderSignalContaminationForLimits?"  (accounting for signal contamination)":"  (not accounting for signal contamination)") << endl;
327      for(int isample=0;isample<signalsamples.collection.size();isample++) {
328        dout << limits[isample][0] << "\t" << Round(100*uncertainties[isample*jzbcuts.size()+icut][1],3) << "+/-" << Round(100*uncertainties[isample*jzbcuts.size()+icut][2],3) << " (stat) +/- " << Round(100*uncertainties[isample*jzbcuts.size()+icut][3],3) << " (syst) \t" << Round((vlimits[isample][2*icut]),3) << "\t" << Round(vlimits[isample][2*icut+1],3) << endl;
329      }

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