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Revision 1.2 by claudioc, Sat Nov 6 19:51:16 2010 UTC vs.
Revision 1.13 by claudioc, Mon Nov 15 01:00:06 2010 UTC

# Line 1 | Line 1
1 < \section{Acceptance systematics}
1 > \section{Acceptance and efficiency systematics}
2   \label{sec:systematics}
3  
4   This is a search for new physics contributions to
# Line 7 | Line 7 | As seen in Section~\ref{sec:results}, th
7   evidence for a contribution beyond SM expectations.
8  
9   Strictly speaking it is impossible to talk about
10 < ``acceptance systematics'' because these kinds of
10 > ``acceptance and efficiency systematics'' because these kinds of
11   systematics only apply to a well defined final state.
12 < Nevertheless, we can at least make some qualitative
13 < statements.
12 > Nevertheless, we can make general statements about the
13 > systematic uncertainties, including quantitative
14 > estimates of the systematic uncertainties associated with
15 > a few specific processes.
16  
17 < The systematic uncertainty on the letpon acceptance consists
17 > The systematic uncertainty on the lepton acceptance consists
18   of two parts: the trigger efficiency uncertainty and the
19 < ID and isolation of uncertainty.  We discuss these in turn.
19 > ID and isolation uncertainty.  We discuss these in turn.
20  
21   The trigger efficiency
22   for two leptons of $P_T>10$ GeV, with one lepton of
23   $P_T>20$ GeV is very high, except in some corners
24 < of phase space, see Section~\ref{sec:trgEff}.  
24 > of phase space, see Section~\ref{sec:trgeffsum}.
25   We estimate the efficiency uncertainty to be a few percent,
26   mostly in the low $P_T$ region.
27  
28 < The ID efficiency in MC is shown in {\color{red} Figures XX and
29 < YY} for the leptons from $t \to W \to \ell$ and $t \to W \to \tau \to \ell$.
30 < Tag and probe studies show that these are correct to about
31 < {\color{red} xx\%.  (We need to do tag-and-probe on the full sample,
32 < see what we get, and write text accordingly).}
33 <
34 < The isolation efficiency depends on the jet activity in
28 > \begin{figure}[tbh]
29 > \begin{center}
30 > \includegraphics[width=1.0\linewidth]{eff_35.png}
31 > \includegraphics[width=1.0\linewidth]{isoEff.png}
32 > \caption{\label{fig:effttbar}\protect
33 > Identification and isolation efficiencies for
34 > leptons from $t \to W \to \ell$ and
35 > $t \to W \to \tau \to \ell$ in
36 > $t\bar{t}$ events.}
37 > \end{center}
38 > \end{figure}
39 >
40 >
41 > \begin{table}[hbt]
42 > \begin{center}
43 > \caption{\label{tab:tagandprobe} Tag and probe results on $Z \to \ell \ell$
44 > on data and MC.  We quote ID efficiency given isolation and
45 > the isolation efficiency given ID.}
46 > \begin{tabular}{|l||c|c|}
47 > \hline
48 >                             & Data  T\&P      & MC T\&P    \\  \hline
49 > $\epsilon(id|iso)$ electrons & $0.909\pm0.006$ & 0.926 \\
50 > $\epsilon(iso|id)$ electrons & $0.987\pm0.003$ & 0.985 \\
51 > $\epsilon(id|iso)$ muons     & $0.955\pm0.003$ & 0.953 \\
52 > $\epsilon(iso|id)$ muons     & $0.984\pm0.003$ & 0.981 \\
53 > \hline
54 > \end{tabular}
55 > \end{center}
56 > \end{table}
57 >
58 >
59 > The ID efficiencies in MC are shown in
60 > Figures~\ref{fig:effttbar}
61 > for the leptons from $t \to W \to \ell$ and $t \to W \to \tau \to \ell$.
62 > Tag and probe studies show that these are correct to about 2\%,
63 > see Table~\ref{tab:tagandprobe}.
64 > Note that the isolation efficiency depends on the jet activity in
65   the final state.  For example, in MC we find that the
66   lepton isolation efficiency differs by $\approx 4\%$
67   {\bf per lepton} between $Z$ events and $t\bar{t}$ events\cite{ref:top}.
68 + %\noindent {\bf This figure should be cut off at 100 GeV, and
69 + %the y-axis should be zero-suppressed}
70  
71   Another significant source of systematic uncertainty is
72   associated with the jet and $\met$ energy scale.  The impact
73 < of this uncertainty is very final-state dependent.  Final
74 < states characterized by lots of hadronic activity and \met are much
73 > of this uncertainty is final-state dependent.  Final
74 > states characterized by lots of hadronic activity and \met are
75   less sensitive than final states where the \met and SumJetPt
76   are typically close to the requirement.  To be more quantitative,
77   we have used the method of Reference~\cite{ref:top} to evaluate
# Line 45 | Line 79 | the systematic uncertainties on the acce
79   and two benchmark SUSY points.  The uncertainties are calculated
80   assuming a 5\% uncertainty to the hadronic energy scale in CMS.
81  
82 < {\color{red} For $t\bar{t}$ we find uncertainties of xx\% (baseline
83 < selection) and yy\% (signal region D); for LM0 and LM1 we find
84 < xx\% and yy\% respectively for signal region D.}
82 > For $t\bar{t}$ we find uncertainties of 8\% (baseline
83 > selection) and 30\% (signal region D); for LM0 and LM1 we find
84 > 14\% and 6\% respectively for signal region D.

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