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Revision: 1.1
Committed: Thu Oct 4 07:24:29 2012 UTC (12 years, 7 months ago) by claudioc
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claudio

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# User Rev Content
1 claudioc 1.1 \subsection{Test of control region with isolated track in CR5}
2     \label{sec:CR5}
3    
4     [NEED TO VERIFY THAT THE DESCRIPTION OF SCALE FACTORS IS CORRECT AND
5     ADD A LITTLE BIT OF DETAIL, AS NOTED IN THE TEXT]
6    
7     This CR consists of events that pass all cuts but fail the isolated
8     track veto cut. These events (especially in the tail of $M_T$) are
9     predominantly $t\bar{t}$ dileptons. Thus the test in this control
10     regions is similar to that performed in CR4 and described
11     in Section~\ref{sec:CR4-valid}. There is some non-trivial
12     complementarity because CR5 also includes events with
13     taus and events with electrons or muons below the threshold of
14     the CR4 selection. Also, this test is somewhat sensitive to
15     the simulation of the track isolation requirement, since the
16     number of dilepton events in CR5 depends on the (in)efficiency
17     of that cut.
18    
19    
20    
21     In CR5 there is also a significant component
22     of $t\bar{t} \to \ell +$ jets, where one of the jets fluctuates
23     to an isolated track. This component dominates at low $M_T$
24     and is not necessarily well reproduced quantitatively by the
25     simulation. This makes the normalization of the top MC a little bit tricky.
26     We define a ``pre-veto'' sample as the sample of events that pass
27     all cuts without any isolated track requirements. This sample is
28     dominated by $t\bar{t} \to \ell +$ jets. We normalize the dilepton
29     component of the top MC to that sample (NEED TO EXPLAIN EXACTLY HOW).
30     Next we define a ``post-veto'' sample as the events that have an
31     isolated track. The $t\bar{t} \to \ell +$ jets component is
32     normalized in this sample (ALSO, NEED TO EXPLAIN HOW, EXACTLY).
33     These normalization factors are summarized in Table~\ref{tab:cr5mtsf}.
34    
35     The underlying \met\ and $M_T$ distributions are shown in
36     Figures~\ref{fig:cr5met} and~\ref{fig:cr5rest}. The data-MC agreement
37     is quite good. Quantitatively, this is also shown in Table~\ref{tab:cr5yields}.
38    
39    
40     \begin{table}[!h]
41     \begin{center}
42     \begin{tabular}{l||c|c|c|c}
43     \hline
44     Sample & CR5A & CR5B & CR5C & CR5D \\
45     \hline
46     \hline
47     Muon pre-veto \mt-SF & $0.98 \pm 0.02$ & $0.95 \pm 0.04$ & $0.99 \pm 0.08$ & $0.89 \pm 0.15$ \\
48     Muon post-veto \mt-SF & $1.28 \pm 0.07$ & $1.20 \pm 0.13$ & $1.22 \pm 0.24$ & $1.25 \pm 0.43$ \\
49     \hline
50     \hline
51     Electron pre-veto \mt-SF & $0.83 \pm 0.02$ & $0.75 \pm 0.04$ & $0.64 \pm 0.07$ & $0.63 \pm 0.12$ \\
52     Electron post-veto \mt-SF & $1.10 \pm 0.08$ & $1.02 \pm 0.11$ & $0.89 \pm 0.19$ & $1.27 \pm 0.41$ \\
53     \hline
54     \end{tabular}
55     \caption{ \mt\ peak Data/MC scale factors. The pre-veto SFs are applied to the
56     \ttdl\ sample, while the post-veto SFs are applied to the single
57     lepton samples. The raw MC is used for backgrounds from rare processes.
58     The uncertainties are statistical only.
59     \label{tab:cr5mtsf}}
60     \end{center}
61     \end{table}
62    
63    
64     \begin{table}[!h]
65     \begin{center}
66     \begin{tabular}{l||c|c|c|c}
67     \hline
68     Sample & CR5A & CR5B & CR5C & CR5D \\
69     \hline
70     \hline
71     Muon MC & $293 \pm 9$ & $161 \pm 7$ & $51 \pm 4$ & $16 \pm 2$ \\
72     Muon Data & $315$ & $165$ & $62$ & $13$ \\
73     \hline
74     Muon Data/MC SF & $1.07 \pm 0.07$ & $1.03 \pm 0.09$ & $1.21 \pm 0.18$ & $0.82 \pm 0.25$ \\
75     \hline
76     \hline
77     Electron MC & $253 \pm 8$ & $126 \pm 5$ & $37 \pm 3$ & $12 \pm 2$ \\
78     Electron Data & $286$ & $135$ & $39$ & $15$ \\
79     \hline
80     Electron Data/MC SF & $1.13 \pm 0.08$ & $1.07 \pm 0.10$ & $1.07 \pm 0.19$ & $1.21 \pm 0.35$ \\
81     \hline
82     \end{tabular}
83     \caption{ Yields in \mt\ tail comparing the MC prediction (after
84     applying SFs) to data. The uncertainties are statistical only.
85     \label{tab:cr5yields}}
86     \end{center}
87     \end{table}
88    
89     \begin{figure}[hbt]
90     \begin{center}
91     \includegraphics[width=0.5\linewidth]{plots/CR5plots/met_met50_leadmuo_nj4.pdf}%
92     \includegraphics[width=0.5\linewidth]{plots/CR5plots/met_met50_leadele_nj4.pdf}
93     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met100_leadmuo_nj4.pdf}%
94     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met100_leadele_nj4.pdf}
95     \caption{
96     Comparison of the \met\ (top) and \mt\ for $\met>100$ (bottom) distributions in data vs. MC for events
97     with a leading muon (left) and leading electron (right)
98     satisfying the requirements of CR5.
99     \label{fig:cr5met}
100     }
101     \end{center}
102     \end{figure}
103    
104     \begin{figure}[hbt]
105     \begin{center}
106     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met150_leadmuo_nj4.pdf}%
107     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met150_leadele_nj4.pdf}
108     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met200_leadmuo_nj4.pdf}%
109     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met200_leadele_nj4.pdf}
110     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met250_leadmuo_nj4.pdf}%
111     \includegraphics[width=0.5\linewidth]{plots/CR5plots/mt_met250_leadele_nj4.pdf}
112     \caption{
113     Comparison of the \mt\ distribution in data vs. MC for events
114     with a leading muon (left) and leading electron (right)
115     satisfying the requirements of CR5. The \met\ requirements used are
116     150 GeV (top), 200 GeV (middle) and 250 GeV (bottom).
117     \label{fig:cr5mtrest}
118     }
119     \end{center}
120     \end{figure}
121    
122    
123     \clearpage
124