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Revision 1.9 by linacre, Wed Oct 10 21:08:35 2012 UTC

# Line 1 | Line 1
1   \subsection{Dilepton studies in CR4}
2   \label{sec:cr4}
3  
4 [DO WE NEED TO BETTER SPECIFY THE SELECTION FOR THIS REGION???]
5
4   \subsubsection{Modeling of Additional Hard Jets in Top Dilepton Events}
5   \label{sec:jetmultiplicity}
6  
# Line 11 | Line 9 | NUMBERS IN THE TABLE]
9  
10   Dilepton \ttbar\ events have 2 jets from the top decays, so additional
11   jets from radiation or higher order contributions are required to
12 < enter the signal sample. The modeling of addtional jets in \ttbar\
12 > enter the signal sample. The modeling of additional jets in \ttbar\
13   events is checked in a \ttll\ control sample,
14   selected by requiring
15   \begin{itemize}
16   \item exactly 2 selected electrons or muons with \pt $>$ 20 GeV
17 < \item \met\ $>$ 100 GeV
17 > \item \met\ $>$ 50 GeV
18   \item $\geq1$ b-tagged jet
19 < \item Z-veto
19 > \item Z-veto ($|m_{\ell\ell} - 91| > 15$ GeV)
20   \end{itemize}
21   Figure~\ref{fig:dileptonnjets} shows a comparison of the jet
22   multiplicity distribution in data and MC for this two-lepton control
# Line 37 | Line 35 | $\ttbar+\ge2$ jet events.
35  
36   \begin{figure}[hbt]
37    \begin{center}
38 <        \includegraphics[width=0.5\linewidth]{plots/njets_all_met100_mueg.pdf}
39 <        \includegraphics[width=0.5\linewidth]{plots/njets_all_met100_diel.pdf}%
40 <        \includegraphics[width=0.5\linewidth]{plots/njets_all_met100_dimu.pdf}
38 >        \includegraphics[width=0.5\linewidth]{plots/njets_all_met50_mueg.pdf}
39 >        \includegraphics[width=0.5\linewidth]{plots/njets_all_met50_diel.pdf}%
40 >        \includegraphics[width=0.5\linewidth]{plots/njets_all_met50_dimu.pdf}
41          \caption{
42            \label{fig:dileptonnjets}%\protect
43            Comparison of the jet multiplicity distribution in data and MC for dilepton events in the \E-\M\
# Line 54 | Line 52 | mis-identified as a jet (since no $\tau$
52   In this case only 1 additional jet from radiation may suffice for
53   a \ttll\ event to enter the signal sample. As a result, both the
54   samples with $\ttbar+1$ jet and $\ttbar+\ge2$ jets are relevant for
55 < estimating the top dilepton bkg in the signal region.
55 > estimating the top dilepton background in the signal region.
56  
57   %In this section we discuss a correction to $ N_{2 lep}^{MC} $ in Equation XXX
58   %due to differences in the modelling of the jet multiplicity in data versus MC.
# Line 133 | Line 131 | as follows:
131   \noindent This insures that $K_3 M_3/(M_2 + K_3 M_3 + K_4 M_4) = N_3 /
132   (N_2+N_3+N_4)$ and similarly for the $\geq 4$ jet bin.
133  
134 + Table~\ref{tab:njetskfactors} also shows the values of $K_3$ and $K_4$ when the \met\ cut in the control sample definition is changed from 50 GeV to 100 GeV and 150 GeV.
135 + These values of $K_3$ and $K_4$ are not used in the analysis, but demonstrate that there is no statistically significant dependence of $K_3$ and $K_4$ on the \met\ cut.
136 +
137  
138 < The factors $K_3$ and $K_4$ are applied to the \ttll\ MC throughout the
138 > The factors $K_3$ and $K_4$ (derived with the 50 GeV \met\ cut) are applied to the \ttll\ MC throughout the
139   entire analysis, i.e.
140   whenever \ttll\ MC is used to estimate or subtract
141   a yield or distribution.
# Line 149 | Line 150 | while those that only need one radiation
150  
151   \begin{table}[!ht]
152   \begin{center}
153 < \begin{tabular}{l|c}
153 > \begin{tabular}{l|c|c|c}
154 > \cline{2-4}
155 >                        & \multicolumn{3}{c}{ \met\ cut for data/MC scale factors} \\
156   \hline
157 <            Jet Multiplicity Sample
155 <            &                Data/MC Scale Factor \\
157 > Jet Multiplicity Sample &  50 GeV & 100 GeV & 150 GeV  \\
158   \hline
159   \hline
160 < N jets $= 3$ (sensitive to $\ttbar+1$ extra jet from radiation)   &
161 < $K_3 = 0.97 \pm 0.03$\\
160 > N jets $= 3$ (sensitive to $\ttbar+1$ extra jet from radiation)
161 > & $K_3 = 0.98 \pm 0.02$ & $K_3 = 1.01 \pm 0.03$ & $K_3 = 1.00 \pm 0.08$ \\
162   N jets $\ge4$ (sensitive to $\ttbar+\ge2$ extra jets from radiation)
163 < &       $K_4 = 0.91 \pm 0.04$\\
163 > & $K_4 = 0.94 \pm 0.02$ & $K_4 = 0.93 \pm 0.04$ & $K_4 = 1.00 \pm 0.08$ \\
164   \hline
165   \end{tabular}
166   \caption{Data/MC scale factors used to account for differences in the
167    fraction of events with additional hard jets from radiation in
168 <  \ttll\ events. \label{tab:njetskfactors}}
168 >  \ttll\ events. The values derived with the 50 GeV \met\ cut are applied
169 >  to the \ttll\ MC throughout the analysis. \label{tab:njetskfactors}}
170   \end{center}
171   \end{table}
172  
# Line 173 | Line 176 | N jets $\ge4$ (sensitive to $\ttbar+\ge2
176  
177   \subsubsection{Validation of the ``Physics'' Modelling of the \ttdl\
178    MC in CR4}
179 < \subsubsection{sec:CR4-valid}
179 > \label{sec:CR4-valid}
180  
181   [THE TEXT IN THIS SUBSECTION IS ESSENTIALLY COMPLETE]
182  
# Line 183 | Line 186 | The object of this test is to validate t
186   background by looking at the $M_T$ distribution of well identified
187   dilepton events.
188   We construct a transverse mass variable from the leading lepton and
189 < the \met\.  We distinguish between events with leading electrons and
189 > the \met.  We distinguish between events with leading electrons and
190   leading muons.  
191  
192   The $t\bar{t}$ MC is corrected using the $K_3$ and $K_4$ factors
# Line 193 | Line 196 | regions A, B, C, and D.  These normaliza
196   in Table~\ref{tab:cr4mtsf} and are close to unity.
197  
198   The underlying \met\ and $M_T$ distributions are shown in
199 < Figures~\ref{fig:cr4met} and~\ref{fig:cr4rest}.  The data-MC agreement
199 > Figures~\ref{fig:cr4met} and~\ref{fig:cr4mtrest}.  The data-MC agreement
200   is quite good.  Quantitatively, this is also shown in Table~\ref{tab:cr4yields}.
201  
202  
203   \begin{table}[!h]
204   \begin{center}
205 < \begin{tabular}{l||c|c|c|c}
205 > {\footnotesize
206 > \begin{tabular}{l||c||c|c|c|c|c|c}
207   \hline
208 < Sample              & CR4A & CR4B & CR4C & CR4D \\
208 > Sample              & CR4PRESEL & CR4A & CR4B & CR4C &
209 > CR4D & CR4E & CR4F\\
210   \hline
211   \hline
212 < Muon Data/MC-SF           & $0.91 \pm 0.04$ & $0.94 \pm 0.07$ & $1.06 \pm 0.13$ & $1.03 \pm 0.22$ \\
212 > $\mu$ Data/MC-SF          & $1.01 \pm 0.03$ & $0.96 \pm 0.04$ & $0.99 \pm 0.07$ & $1.05 \pm 0.13$ & $0.91 \pm 0.20$ & $1.10 \pm 0.34$ & $1.50 \pm 0.67$ \\
213   \hline
214   \hline
215 < Electron Data/MC-SF       & $0.95 \pm 0.04$ & $1.00 \pm 0.08$ & $0.85 \pm 0.12$ & $0.83 \pm 0.19$ \\
215 > e Data/MC-SF      & $0.99 \pm 0.03$ & $0.99 \pm 0.05$ & $0.91 \pm 0.08$ & $0.84 \pm 0.13$ & $0.70 \pm 0.18$ & $0.73 \pm 0.29$ & $0.63 \pm 0.38$ \\
216   \hline
217 < \end{tabular}
217 > \end{tabular}}
218   \caption{ Data/MC scale factors for total yields, applied to compare
219    the shapes of the distributions.
220    The uncertainties are statistical only.
# Line 220 | Line 225 | Electron Data/MC-SF       & $0.95 \pm 0.
225  
226   \begin{table}[!h]
227   \begin{center}
228 < \begin{tabular}{l||c|c|c|c}
228 > {\footnotesize
229 > \begin{tabular}{l||c||c|c|c|c|c|c}
230   \hline
231 < Sample              & CR4A & CR4B & CR4C & CR4D \\
231 > Sample              & CR4PRESEL & CR4A & CR4B & CR4C &
232 > CR4D & CR4E & CR4F\\
233   \hline
234   \hline
235 < Muon MC                   & $199 \pm 7$ & $102 \pm 6$ & $29 \pm 3$ & $8 \pm 1$ \\
236 < Muon Data                 & $187$ & $108$ & $34$ & $9$ \\
235 > $\mu$ MC                  & $256 \pm 14$ & $152 \pm 11$ & $91 \pm 9$ & $26 \pm 5$ & $6 \pm 2$ & $4 \pm 2$ & $2 \pm 1$ \\
236 > $\mu$ Data                & $251$ & $156$ & $98$ & $27$ & $8$ & $6$ & $4$ \\
237   \hline
238 < Muon Data/MC SF           & $0.94 \pm 0.08$ & $1.06 \pm 0.12$ & $1.17 \pm 0.23$ & $1.09 \pm 0.40$ \\
238 > $\mu$ Data/MC SF          & $0.98 \pm 0.08$ & $1.02 \pm 0.11$ & $1.08 \pm 0.16$ & $1.04 \pm 0.28$ & $1.29 \pm 0.65$ & $1.35 \pm 0.80$ & $2.10 \pm 1.72$ \\
239   \hline
240   \hline
241 < Electron MC               & $203 \pm 8$ & $97 \pm 5$ & $26 \pm 2$ & $8 \pm 1$ \\
242 < Electron Data             & $201$ & $102$ & $25$ & $5$ \\
241 > e MC              & $227 \pm 13$ & $139 \pm 11$ & $73 \pm 8$ & $21 \pm 4$ & $5 \pm 2$ & $2 \pm 1$ & $1 \pm 1$ \\
242 > e Data            & $219$ & $136$ & $72$ & $19$ & $2$ & $1$ & $1$ \\
243   \hline
244 < Electron Data/MC SF       & $0.99 \pm 0.08$ & $1.06 \pm 0.12$ & $0.97 \pm 0.21$ & $0.60 \pm 0.29$ \\
244 > e Data/MC SF      & $0.96 \pm 0.09$ & $0.98 \pm 0.11$ & $0.99 \pm 0.16$ & $0.92 \pm 0.29$ & $0.41 \pm 0.33$ & $0.53 \pm 0.62$ & $0.76 \pm 0.96$ \\
245   \hline
246 < \end{tabular}
246 > \hline
247 > $\mu$+e MC                & $483 \pm 19$ & $291 \pm 16$ & $164 \pm 13$ & $47 \pm 7$ & $11 \pm 3$ & $6 \pm 2$ & $3 \pm 2$ \\
248 > $\mu$+e Data              & $470$ & $292$ & $170$ & $46$ & $10$ & $7$ & $5$ \\
249 > \hline
250 > $\mu$+e Data/MC SF                & $0.97 \pm 0.06$ & $1.00 \pm 0.08$ & $1.04 \pm 0.11$ & $0.99 \pm 0.20$ & $0.90 \pm 0.37$ & $1.11 \pm 0.57$ & $1.55 \pm 1.04$ \\
251 > \hline
252 > \end{tabular}}
253   \caption{ Yields in \mt\ tail comparing the MC prediction (after
254    applying SFs) to data. The uncertainties are statistical only.
255   \label{tab:cr4yields}}
# Line 260 | Line 273 | Electron Data/MC SF       & $0.99 \pm 0.
273  
274   \begin{figure}[hbt]
275    \begin{center}
276 +        \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met50_leadmuo_nj4.pdf}%
277 +        \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met50_leadele_nj4.pdf}
278          \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met150_leadmuo_nj4.pdf}%
279          \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met150_leadele_nj4.pdf}
280          \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met200_leadmuo_nj4.pdf}%
281          \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met200_leadele_nj4.pdf}
267        \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met250_leadmuo_nj4.pdf}%
268        \includegraphics[width=0.5\linewidth]{plots/CR4plots/mt_met250_leadele_nj4.pdf}
282      \caption{
283        Comparison of the \mt\ distribution in data vs. MC for events
284        with a leading muon (left) and leading electron (right)
285        satisfying the requirements of CR4. The \met\ requirements used are
286 <      150 GeV (top), 200 GeV (middle) and 250 GeV (bottom).
286 >      50 GeV (top), 200 GeV (middle) and 250 GeV (bottom).
287   \label{fig:cr4mtrest}
288   }  
289        \end{center}

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