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Comparing UserCode/VHbb/python/gethistofromtree.py (file contents):
Revision 1.4 by nmohr, Thu Jun 21 13:45:14 2012 UTC vs.
Revision 1.18 by peller, Fri Oct 19 15:44:07 2012 UTC

# Line 9 | Line 9 | from BetterConfigParser import BetterCon
9   import sys
10  
11  
12 < #load config
13 < config = BetterConfigParser()
14 < config.read('./config')
15 <
16 < #get locations:
17 < Wdir=config.get('Directories','Wdir')
18 <
19 <
20 <
21 <
22 < def getScale(job,rescale):
23 <    input = TFile.Open(job.getpath())
12 > def getScale(job,path,config,rescale,subsample=-1):
13 >    anaTag=config.get('Analysis','tag')
14 >    input = TFile.Open(path+'/'+job.getpath())
15      CountWithPU = input.Get("CountWithPU")
16      CountWithPU2011B = input.Get("CountWithPU2011B")
17      #print lumi*xsecs[i]/hist.GetBinContent(1)
18 <    return float(job.lumi)*float(job.xsec)*float(job.sf)/(CountWithPU.GetBinContent(1))*rescale/float(job.split)
18 >    
19 >    if subsample>-1:
20 >        if type(job.xsec[subsample]) == str: xsec=float(eval(job.xsec[subsample]))
21 >        else: xsec=float(job.xsec[subsample])
22 >        sf=float(job.sf[subsample])
23 >    else:
24 >        if type(job.xsec) == str: xsec=float(eval(job.xsec))
25 >        else: xsec=float(job.xsec)
26 >        sf=float(job.sf)
27 >    
28 >    
29 >    theScale = 1.
30 >    if anaTag == '7TeV':
31 >        theScale = float(job.lumi)*xsec*sf/(0.46502*CountWithPU.GetBinContent(1)+0.53498*CountWithPU2011B.GetBinContent(1))*rescale/float(job.split)
32 >    elif anaTag == '8TeV':
33 >        theScale = float(job.lumi)*xsec*sf/(CountWithPU.GetBinContent(1))*rescale/float(job.split)
34 >    return theScale
35  
36 + def getHistoFromTree(job,path,config,options,rescale=1,subsample=-1,which_weightF='weightF'):
37  
38 < def getHistoFromTree(job,options,rescale=1):
38 >    #print job.getpath()
39 >    #print options
40      treeVar=options[0]
41 <    name=job.name
41 >    if subsample>-1:
42 >        name=job.subnames[subsample]
43 >        group=job.group[subsample]
44 >    else:
45 >        name=job.name
46 >        group=job.group
47 >
48      #title=job.plotname()
49      nBins=int(options[3])
50      xMin=float(options[4])
51      xMax=float(options[5])
52 +    #addOverFlow=eval(config.get('Plot_general','addOverFlow'))
53 +    addOverFlow = False
54 +
55 +    TrainFlag = eval(config.get('Analysis','TrainFlag'))
56 +    if TrainFlag: traincut = " & EventForTraining == 0"
57 +    if not TrainFlag: traincut=""
58  
59      if job.type != 'DATA':
60 <        cutcut=config.get('Cuts',options[7])
61 <        treeCut='%s & EventForTraining == 0'%cutcut
60 >    
61 >        if type(options[7])==str:
62 >            cutcut=config.get('Cuts',options[7])
63 >        elif type(options[7])==list:
64 >            cutcut=config.get('Cuts',options[7][0])
65 >            cutcut=cutcut.replace(options[7][1],options[7][2])
66 >            print cutcut
67 >        if subsample>-1:
68 >            treeCut='%s & %s%s'%(cutcut,job.subcuts[subsample],traincut)        
69 >        else:
70 >            treeCut='%s%s'%(cutcut,traincut)
71  
72      elif job.type == 'DATA':
73 <        treeCut=config.get('Cuts',options[8])
73 >        cutcut=config.get('Cuts',options[8])
74 >        treeCut='%s'%(cutcut)
75  
76 <    input = TFile.Open(job.getpath(),'read')
76 >
77 >    input = TFile.Open(path+'/'+job.getpath(),'read')
78  
79      Tree = input.Get(job.tree)
80      #Tree=tmpTree.CloneTree()
81      #Tree.SetDirectory(0)
82      
83      #Tree=tmpTree.Clone()
84 <    weightF=config.get('Weights','weightF')
84 >    weightF=config.get('Weights',which_weightF)
85      #hTree = ROOT.TH1F('%s'%name,'%s'%title,nBins,xMin,xMax)
86      #hTree.SetDirectory(0)
87      #hTree.Sumw2()
# Line 79 | Line 111 | def getHistoFromTree(job,options,rescale
111      #print job.name + ' Sumw2', hTree.GetEntries()
112  
113      if job.type != 'DATA':
114 <        ScaleFactor = getScale(job,rescale)
114 >        ScaleFactor = getScale(job,path,config,rescale,subsample)
115          if ScaleFactor != 0:
116              hTree.Scale(ScaleFactor)
117 +    
118 +    if addOverFlow:
119 +            print 'Adding overflow'
120 +            uFlow = hTree.GetBinContent(0)+hTree.GetBinContent(1)
121 +            oFlow = hTree.GetBinContent(hTree.GetNbinsX()+1)+hTree.GetBinContent(hTree.GetNbinsX())
122 +            uFlowErr = ROOT.TMath.Sqrt(ROOT.TMath.Power(hTree.GetBinError(0),2)+ROOT.TMath.Power(hTree.GetBinError(1),2))
123 +            oFlowErr = ROOT.TMath.Sqrt(ROOT.TMath.Power(hTree.GetBinError(hTree.GetNbinsX()),2)+ROOT.TMath.Power(hTree.GetBinError(hTree.GetNbinsX()+1),2))
124 +            hTree.SetBinContent(1,uFlow)
125 +            hTree.SetBinContent(hTree.GetNbinsX(),oFlow)
126 +            hTree.SetBinError(1,uFlowErr)
127 +            hTree.SetBinError(hTree.GetNbinsX(),oFlowErr)
128 +              
129              
130      print '\t-->import %s\t Integral: %s'%(job.name,hTree.Integral())
131              
132      hTree.SetDirectory(0)
133 <    input.Close()            
134 <    return hTree, job.group
133 >    input.Close()  
134 >    
135 >    return hTree, group
136      
137  
138   ######################
# Line 113 | Line 158 | def orderandadd(histos,typs,setup):
158      histos=ordnung
159      typs=ordnungtyp
160  
161 +    print typs
162 +
163      for k in range(0,len(num)):
164          for m in range(0,num[k]):
165              if m > 0:

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