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\section{Event reconstruction} |
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\label{sec:eventReconstruction} |
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|
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The four possible final states of \WZ |
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production with electrons and muons in the final state are studied, $\rm e^\pm \epem$, $\mu^\pm \epem$, $\rm e^\pm \mu^+\mu^-$ |
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and $\mu^\pm \mu^+\mu^-$. They are associated to four possible classes, |
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denoted as follows: |
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We categorize \WZ\ three-lepton final state as following |
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\begin{itemize} |
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\item $3e$: for \WZ events with $\W \to e \nu$ and $\Z\to \epem$. |
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\item $2e1\mu$: for \WZ events with $\W \to \mu \nu$ and $\Z\to \epem$. |
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are collected by the electron and/or muon triggers. For each channel, |
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a minimun number of HLT requirements is chosen while keeping |
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the HLT efficiency for selected events close to 100\%. The same |
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HLT requirements are used for channels with the same Z decay mode: |
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HLT requirements are used for channels with the same \Z decay mode: |
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\begin{itemize} |
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\item for $3e$ and $2e1\mu$: HLTSingleElectron or HLTDoubleElectronRelaxed |
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\item for $2\mu1e$ and $3\mu$: HLTSingleMuonIso |
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The HLT efficiencies for all modes for events passing the full |
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selection described in this section are given in table~\ref{tab:hlteff}. |
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|
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|
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\begin{table}[tbph] |
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\begin{center} |
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|
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\end{tabular} |
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|
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\end{center} |
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\caption{HLT Efficiencies, in percent, for all |
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the events in the generated phase space for events retained by |
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the complete event selection.} |
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\caption{HLT Efficiencies for all the events in the generated phase space that |
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have been retained by the complete event selection.} |
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\label{tab:hlteff} |
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\end{table} |
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|
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|
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\begin{figure}[tbp] |
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\begin{center} |
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\scalebox{0.7}{\includegraphics{figs/mu_isol.eps}} |
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\caption{Muon isolation variables for the muon associated |
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to the \W boson decay in $2e1\mu$ events: in the left plot |
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we illustrate the sum of calorimetric energy in a $\Delta R=0.3$ cone |
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around the muon candidate; in the right plot we display the sum of |
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transverse momenta of tracks within a $\Delta R = 0.25$ cone around |
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the muon candidate. The normalization of signal and background |
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distributions is arbitrary. |
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} |
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\label{fig:mu_isol} |
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\end{center} |
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\end{figure} |
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|
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\begin{figure}[tb] |
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\begin{center} |
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\scalebox{0.6}{\includegraphics{figs/mu_SIP.eps}} |
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\caption{ |
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Muon impact parameter significance distribution |
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in $2e1\mu$ events. The normalization of signal and background |
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distributions is arbitrary. |
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} |
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\label{fig:mu_SIP} |
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\end{center} |
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\end{figure} |
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|
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|
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\subsection{Lepton identification} |
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\label{sec:leptonId} |
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|
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in~\cite{noteElectronID}. |
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|
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Muon candidates are selected from global muons, which are reconstructed |
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combining measurements in the muon chambers and the central tracker. |
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An additional isolation criterion requires that the energy |
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by combining measurements in the muon chambers and the central tracker. |
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An additional isolation criterion is imposed to require the energy |
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measured in the calorimeters within a $\Delta R = 0.3$ cone around the |
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muon must be smaller than 3 GeV and the sum of the $p_t$ of tracks |
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within a $\Delta R = 0.25$ cone around the muon must be smaller than 2 \gev. |
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muon to be smaller than 3 GeV and the sum of the $p_T$ of tracks |
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within a $\Delta R = 0.25$ cone around the muon must be smaller than 2 GeV. |
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These cuts reduce the background from muons originated in |
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\b-quark decays of the $\Zbbbar$ background, which are close to tracks |
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and clusters from the other \b-quark decay products. |
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The signal and background distributions of these isolation variables |
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are shown in Figure~\ref{fig:mu_isol} for the muon in $2e1\mu$ candidate |
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events. |
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|
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%Figures~\ref{fig:muonisol} and ~\ref{fig:muonisoleffi} show the |
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%performance of the isolation cut. The distribution of the isolation |
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|
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The significance of the muon impact parameter in the plane |
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transverse to the beam, $S_{IP}$, discriminates against leptons from |
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heavy-quark decays in all Standard Model background processes. This |
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heavy-quark decays in all standard model background processes. This |
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variable is defined as the ratio between the measured impact parameter |
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and its uncertainty: $S_{IP}=IP/\sigma_{IP}$, and is required to |
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satisfy $S_{IP}<3$. This requirement is applied only for muons |
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and not for electrons. For electrons, the dominant background |
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comes from fake electrons and not from heavy quark decays. |
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satisfy $S_{IP}<3$. This requirement is applied only for muon candidates |
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and not for electrons. For electron candidates, a significant fraction of the |
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background comes from misidentified light quark jets. Thus, |
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the requirement on the impact parameter significance does not |
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increase the significance of the $\W\to e$ channels, as can be seen in |
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Fig.~\ref{fig:wl_IP_SvsCut}. The distribution of $S_{IP}$ for the muon |
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in $2e1\mu$ candidate events is shown in Figure~\ref{fig:mu_SIP}. |
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|
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\begin{figure}[p] |
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\begin{center} |
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\scalebox{0.6}{\includegraphics{figs/wl_IP_eff.eps}} |
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\caption{Efficiency for signal and background as a function |
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of the requirement on the \W-boson lepton impact parameter |
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significance. All other criteria but the one on impact parameter |
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significance are applied. |
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% Only events with 81 GeV $< M_Z < $ 101 \gev |
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% are considered. |
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} |
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\label{fig:wl_IP_eff} |
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\end{center} |
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%\end{figure} |
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|
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%\begin{figure}[bt] |
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\begin{center} |
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\scalebox{0.6}{\includegraphics{figs/wl_IP_SvsCut.eps}} |
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\caption{Signal significance as a function of requirement on |
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the \W-boson lepton impact parameter significance. All other criteria but |
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the requirement on the impact parameter significance are applied. |
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% Only events with 81 GeV $< M_Z < $ 101 \gev are considered. |
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} |
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\label{fig:wl_IP_SvsCut} |
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\end{center} |
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\end{figure} |
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|
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|
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\begin{table}[tbp] |
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\begin{tabular}{|l|c|c|c|c|} \hline |
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& $3e$ & $2e1\mu$ & $2\mu 1e$ & $3\mu$ \\ \hline \hline |
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\multicolumn{5}{|c|}{Lepton selection} \\ \hline |
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Electrons & \multicolumn{3}{|c|}{{\tt SimpleLoose} requirements for Z reconstruction} & \\ |
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& \multicolumn{3}{|c|}{{\tt SimpleTight} requirements for W} & \\ \hline |
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Electrons & \multicolumn{3}{|c|}{{\tt SimpleLoose} requirements for \Z reconstruction} & \\ |
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& \multicolumn{3}{|c|}{{\tt SimpleTight} requirements for \W} & \\ \hline |
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Muons & & \multicolumn{3}{|c|}{ Track Isolation:$ {\tt IsoTrack}(\Delta R= 0.25) < 2 \gev$} \\ |
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& & \multicolumn{3}{|c|}{ Calorimetric Isolation:$ {\tt IsoCalo}(\Delta R = 0.3) < 5 \gev$} \\ |
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& & \multicolumn{3}{|c|}{$S_{IP}=IP/\sigma_{IP}<3$ } \\ \hline |
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HLT requirement & \multicolumn{2}{|c|}{ HLTSingleElectron or HLTDoubleElectronRelaxed} |
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& \multicolumn{2}{|c|}{ HLTSingleMuonIso} \\ \hline |
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\multicolumn{5}{|c|}{Z reconstruction} \\ \hline |
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Lepton cuts & \multicolumn{4}{|c|}{for both Z leptons: $p_t > 15 GeV$} \\ |
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\multicolumn{5}{|c|}{\Z reconstruction} \\ \hline |
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Lepton cuts & \multicolumn{4}{|c|}{for both \Z leptons: $p_T > 15$ GeV} \\ |
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Mass window & \multicolumn{4}{|c|}{$50 \gev < M_Z < 120 \gev $ } \\ |
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Second Z veto & \multicolumn{4}{|c|}{No independent second Z candidate with $50 \gev < M_Z < 120 \gev $ } \\ \hline |
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\multicolumn{5}{|c|}{W lepton selection} \\ \hline |
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Second \Z veto & \multicolumn{4}{|c|}{No independent second \Z candidate with $50 \gev < M_Z < 120 \gev $ } \\ \hline |
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\multicolumn{5}{|c|}{\W lepton selection} \\ \hline |
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|
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Other cuts & & & $\Delta R(\mu_Z,e_W)>0.1$ & \\ \hline |
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Signal region & \multicolumn{4}{|c|}{$81 \gev < M_Z < 101 \gev $ } \\ \hline \hline |
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|
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\end{tabular} |
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\caption{Summary of all cuts used in the WZ selection} |
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\caption{Summary of the criteria we use to select \WZ\ final state} |
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\label{tab:allcuts} |
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\end{table} |
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|
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\caption{Efficiency for signal and background as a function |
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of the cut value on the \W-boson lepton transverse momentum. |
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All other cuts but the cut on this variable are applied. |
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Only events with 81.1 GeV $< M_Z < $ 101.1 \gev |
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Only events with 81 GeV $< M_Z < $ 101 \gev |
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are considered.} |
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\label{fig:wlpt_cuteff} |
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\end{center} |
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\caption{Signal significance as a function of the cut value on |
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the \W-boson lepton transverse momentum. All other cuts but |
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the cut on this variable are applied. Only events with |
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81.1 GeV $< M_Z < $ 101.1 \gev are considered.} |
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81 GeV $< M_Z < $ 101 \gev are considered.} |
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\label{fig:wlpt_cutS} |
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\end{center} |
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\end{figure} |
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\subsection{\WZ candidate selection} |
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|
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Events are accepted if they contain at least three charged leptons, |
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either electrons or muons, with $p_t > 15\,\mathrm{GeV}$ and $| \eta | < 2.5$ for |
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electrons,$| \eta | < 2.4$ for muons. |
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as discussed in~\ref{sec:leptonId}. |
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either electrons or muons, with $p_T > 15\,\mathrm{GeV}$ and $| \eta | < 2.5$ for |
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electrons,$| \eta | < 2.4$ for muons, as discussed in Section~\ref{sec:leptonId}. |
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|
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The \WZ candidate selection proceeds from building all possible |
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\Z-boson candidates from same-flavour opposite-charge lepton pairs. |
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For $\Z \to ee$ decays, electrons have to fullfil the loose requirements |
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For $\Z \to ee$ decays, electron candidates have to fulfill the loose requirements |
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defined in~\cite{noteElectronID}. |
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|
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Events are retained if the mass of this \Z-boson candidate is |
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within 20 GeV of the Z-boson mass,$m_Z$. The event is |
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rejected if a second Z candidate is found. This second Z candidate is done |
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with all possible same-flavour opposite-charge combinations which are left |
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after removing the two leptons already used for the first Z candidate. This |
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veto on the presence of a second Z helps to suppress $ZZ$ events. The invariant |
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mass distribution for accepted \Z candidates is shown in |
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Figure~\ref{fig:zcandidates}. |
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Events are retained if the mass of the \Z boson candidate is |
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within 20 GeV of the \Z boson mass, $m_Z$. The event is |
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rejected if a second \Z candidate is found. This second \Z boson candidate is formed |
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using all possible same-flavour opposite-charge combinations which are left |
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after removing the two leptons already used for the first \Z boson candidate. This |
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secondary \Z boson veto helps to suppress $\Z\Z$ events. |
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%The invariant |
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%mass distribution for accepted \Z candidates is shown in |
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%Figure~\ref{fig:zcandidates}. |
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|
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% and the \Z mass resolution is shown in |
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%Figure~\ref{fig:dzmass}. |
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|
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After the \Z-boson candidate is identified, the lepton associated |
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to the \W-boson decay is chosen from the remaining electrons and muons |
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in the event that have not been used for reconstructing the \Z-boson. |
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Electrons are required to pass the tight criteria described in |
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\cite{noteElectronID}. If the event contains more than three leptons, |
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the highest $p_t$ is chosen as the one from the \W-boson decay, and |
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the additional leptons are not considered further. |
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The transverse momentum of this lepton is required to be larger |
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than 20 GeV. This last requirement is effective in rejecting |
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the \Zbbbar and \Zjets backgrounds, see Figure~\ref{fig:wlpt_cuteff}, |
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and the cut value is chosen in |
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the range that maximises the significance as shown in |
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Figure~\ref{fig:wlpt_cutS}. |
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|
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An additional requirement on the isolation between electron and muons is applied |
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for the $2\mu 1e$ channel, by demanding $\Delta R$ between the electron associated |
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to the \W-decay and any of the two muons associated to the \Z-decay be greater than |
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0.1. This requirement allows to suppress the contributions of $\Z \to \mu\mu$ |
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After the \Z boson candidate is identified, the remaining leptons in the event |
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are required, for electrons, to pass the tight criteria described in~\cite{noteElectronID} |
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or, for muons, all criteria described in section~\ref{sec:leptonId}. |
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If more than one lepton candidate satisfies the tight requirements, the one with the |
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highest $p_T$ is associated with \W boson decay. This lepton's $p_T$ is effective |
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discriminant against \Zbbbar and \Zjets production (see Fig.~\ref{fig:wlpt_cuteff}). |
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We require the transverse momentum to exceed 20 GeV, as it maximizes |
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the significance of the \WZ\ signal with respect to background as shown in |
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Fig.~\ref{fig:wlpt_cutS}. |
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|
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An additional requirement on the isolation between electron and muon candidates is applied |
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for the $2\mu 1e$ channel, by demanding the value of $\Delta R$ between the electron |
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candidate associated with the \W boson decay and any of the two muons associated with |
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the \Z boson decay to be greater than 0.1. |
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|
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This requirement allows suppressing the contribution of $\Z \to \mu\mu$ |
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decays, where one of the two muons radiates a photon which is reconstructed |
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as electrons, possibly after conversion, which shows up as a peak at around 60 GeV |
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in the Z mass distribution, as shown in figure~\ref{fig:Z2mu1e_60GeVPeak}. |
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as an electron, possibly after conversion. This can be seen as a peak in the dimuon |
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invariant mass at around 60 GeV in Fig.~\ref{fig:Z2mu1e_60GeVPeak}. |
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|
|
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The summary of the selection can be seen in Table~\ref{tab:allcuts}. |
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The summary of the selection criteria is given in Table~\ref{tab:allcuts}. |
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|
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The expected number of events passing the various steps of the selection |
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is listed in Tables~\ref{tab:sel-effA} and~\ref{tab:sel-effB}. |
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Table~\ref{tab:wz-effimatrix} lists the final selection efficiency for |
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the different generated \W and \Z decays. It can be seen there that \WZ\ |
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events with both the \W and the \Z boson decaying into electrons or muons |
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almost always get reconstructed with the correct flavour. It is to be |
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noted in addition that each of our four selection channels gets a small |
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contribution from $W \to \tau \to e/\mu$ decays as one would expect. The |
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selection efficiency for these events is however smaller which is mostly due |
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< |
to the \pt cut on the third lepton, since the \pt spectrum of electrons or |
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muons from $W \to \tau \to e/\mu$ decays is softer. |
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The expected number of the events satisfying the sequential steps of the selection |
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> |
is listed in Tables~\ref{tab:sel-effA}. |
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In Table~\ref{tab:wz-effimatrix} we list the total selection efficiency for different |
236 |
> |
\W and \Z boson decay modes. It can be seen lepton candidates from \W and \Z |
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> |
boson decays are almost always are reconstructed with the correct flavor. As expected, |
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there is a small contribution from $\W \to \tau \nu_\tau \to \ell \nu_\ell \nu_\tau$ |
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> |
decays. However, this contribution is suppressed, mostly due to $p_T$ requirement |
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> |
on the third lepton, as leptons from $\tau$ decays are not as energetic as those from |
241 |
> |
$\W \to \ell \nu$ processes. |
242 |
> |
|
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In Tables~\ref{tab:wz-matcheffi-Zee} and \ref{tab:wz-matcheffi-Zmumu} we |
244 |
> |
display the fraction of reconstructed \WZ events with correctly-matched leptons. |
245 |
> |
It can be seen that the lepton associated with the \W boson decay is correctly matched |
246 |
> |
to the true Monte Carlo lepton from the \W boson decay in more than 90\% of |
247 |
> |
the cases, even for events with several lepton candidates available to be associated |
248 |
> |
to the \W boson decay. The choice to take the lepton candidate with the leading $p_T$ is, |
249 |
> |
therefore, justified. |
250 |
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|
251 |
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\begin{table}[p] |
252 |
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\begin{center} |
253 |
|
|
194 |
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\begin{tabular}{lcccc} \hline |
195 |
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Step & WZ & Z+jets & TTbar+jets & bbll\\ \hline |
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All events & 546 & 1.2679e+06 & 17556.1 & 72770.4 \\ |
197 |
– |
Found $Z \to ee$ & 219.517 (40.2045 \%) & 520695 (41.0674 \%) & 3474.61 (19.7914 \%) & 29563.3 (40.6254 \%) \\ |
198 |
– |
Z loose electron ID & 219.517 (100 \%) & 520695 (100 \%) & 3474.61 (100 \%) & 29563.3 (100 \%) \\ |
199 |
– |
Z Lepton Pt cut & 216.371 (98.5671 \%) & 515556 (99.0131 \%) & 3289.22 (94.6645 \%) & 29109.9 (98.4665 \%) \\ |
200 |
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Z Lepton $eta$ cut & 216.371 (100 \%) & 515556 (100 \%) & 3289.22 (100 \%) & 29109.9 (100 \%) \\ |
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Z Lepton IP cut & 206.797 (95.5751 \%) & 492205 (95.4707 \%) & 3011.11 (91.5448 \%) & 27833.5 (95.6153 \%) \\ |
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Found $W \to e$ & 42.8968 (20.7434 \%) & 301.116 (0.061177 \%) & 14.8797 (0.494158 \%) & 173.054 (0.621745 \%) \\ |
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W Lepton $\eta$ cut & 42.8968 (100 \%) & 301.116 (100 \%) & 14.8797 (100 \%) & 173.054 (100 \%) \\ |
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W Lepton Pt cut & 35.6425 (83.0889 \%) & 86.9864 (28.8879 \%) & 9.30549 (62.5383 \%) & 23.9385 (13.833 \%) \\ |
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W tight electron ID & 35.6425 (100 \%) & 86.9864 (100 \%) & 9.30549 (100 \%) & 23.9385 (100 \%) \\ |
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Passes HLT & 35.4852 (99.5587 \%) & 85.9427 (98.8002 \%) & 9.30549 (100 \%) & 23.4938 (98.1424 \%) \\ |
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Z mass window & 31.7106 (5.8078 \%) & 54.1554 (0.00427126 \%) & 3.2585 (0.0185605 \%) & 17.046 (0.0234243\%) \\ |
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\hline |
209 |
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\end{tabular} |
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|
255 |
|
|
212 |
– |
\begin{tabular}{lcccc} \hline |
213 |
– |
Step & WZ & Z+jets & TTbar+jets & bbll\\ \hline |
214 |
– |
All events & 546 & 1.2679e+06 & 17556.1 & 72770.4 \\ |
215 |
– |
Found $Z \to ee$ & 219.517 (40.2045 \%) & 520695 (41.0674 \%) & 3474.61 (19.7914 \%) & 29563.3 (40.6254 \%) \\ |
216 |
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Z electron ID loose & 219.517 (100 \%) & 520695 (100 \%) & 3474.61 (100 \%) & 29563.3 (100 \%) \\ |
217 |
– |
Z Lepton Pt cut & 216.371 (98.5671 \%) & 515556 (99.0131 \%) & 3289.22 (94.6645 \%) & 29109.9 (98.4665 \%) \\ |
218 |
– |
Z Lepton $eta$ cut & 216.371 (100 \%) & 515556 (100 \%) & 3289.22 (100 \%) & 29109.9 (100 \%) \\ |
219 |
– |
Z Lepton IP cut & 206.797 (95.5751 \%) & 492205 (95.4707 \%) & 3011.11 (91.5448 \%) & 27833.5 (95.6153 \%) \\ |
220 |
– |
Found $W \to \mu$ & 57.1892 (27.6547 \%) & 5982.86 (1.21552 \%) & 815.122 (27.0705 \%) & 3808.22 (13.6821 \%) \\ |
221 |
– |
W Lepton $\eta$ cut & 57.1695 (99.9656 \%) & 5964.1 (99.6865 \%) & 815.122 (100 \%) & 3805.62 (99.9319 \%) \\ |
222 |
– |
W $\mu$ isolation & 52.1367 (91.1967 \%) & 2754.29 (46.1811 \%) & 85.5097 (10.4904 \%) & 1328.18 (34.9004 \%) \\ |
223 |
– |
W muon isolation & 39.8889 (76.5083 \%) & 22.2149 (0.806557 \%) & 18.8521 (22.0468 \%) & 16.6013 (1.24993 \%) \\ |
224 |
– |
Passes HLT & 38.7683 (97.1907 \%) & 21.2077 (95.466 \%) & 16.5627 (87.8556 \%) & 16.1566 (97.3214 \%) \\ |
225 |
– |
Z mass window & 34.6399 (6.34429 \%) & 17.3805 (0.00137081 \%) & 5.4405 (0.0309891 \%) & 14.0814 (0.0193505 \%) \\ |
226 |
– |
\hline |
227 |
– |
\end{tabular} |
256 |
|
|
257 |
< |
\begin{tabular}{lcccc} \hline |
258 |
< |
Step & WZ & Z+jets & TTbar+jets & bbll\\ \hline |
259 |
< |
All events & 546 & 1.2679e+06 & 17556.1 & 72770.4 \\ |
260 |
< |
Found $Z \to \mu\mu$ & 326.484 (59.7955 \%) & 748256 (59.0152 \%) & 14081.6 (80.2087 \%) & 43207.1 (59.3746 \%) \\ |
261 |
< |
Z muon isolation & 282.27 (86.4575 \%) & 669556 (89.4822 \%) & 4201.52 (29.837 \%) & 37959.1 (87.8538 \%) \\ |
262 |
< |
Z Lepton $eta$ cut & 282.27 (100 \%) & 669547 (99.9987 \%) & 4200.47 (99.975 \%) & 37959.1 (99.9998 \%) \\ |
263 |
< |
Z Lepton Pt cut & 274.249 (97.1584 \%) & 657267 (98.1659 \%) & 3626.81 (86.3429 \%) & 36945.8 (97.3306 \%) \\ |
264 |
< |
Z Lepton IP cut & 249.792 (91.0824 \%) & 603257 (91.7827 \%) & 3125.35 (86.1737 \%) & 33937.7 (91.8581 \%) \\ |
265 |
< |
Found $W \to e$ & 51.9401 (20.7933 \%) & 797.766 (0.132243 \%) & 20.4415 (0.654055 \%) & 228.342 (0.672826 \%) \\ |
266 |
< |
W Lepton $\eta$ cut & 51.9401 (100 \%) & 797.766 (100 \%) & 20.4415 (100 \%) & 228.342 (100 \%) \\ |
267 |
< |
W tight electron ID & 51.9401 (100 \%) & 797.766 (100 \%) & 20.4415 (100 \%) & 228.342 (100 \%) \\ |
268 |
< |
W Lepton Pt cut & 43.2703 (83.3081 \%) & 519.647 (65.1378 \%) & 15.0823 (73.7829 \%) & 55.14 (24.148 \%)\\ |
269 |
< |
Passes HLT & 41.8745 (96.7742 \%) & 490.859 (94.46 \%) & 13.533 (89.7275 \%) & 54.2506 (98.3871 \%) \\ |
270 |
< |
Z mass window & 37.5298 (6.87358 \%) & 63.522 (0.00501 \%) & 5.02282 (0.02861 \%) & 20.0105 (0.0274981 \%) \\ |
257 |
> |
\begin{tabular}{lcc|cc|cc|cc|c} \hline \hline |
258 |
> |
\multicolumn{9}{c}{ {\bf $3e$ Channel}} \\ \hline \hline |
259 |
> |
Step & \WZ & $\epsilon$ & $b\bar{b}\ell\ell$ & $\epsilon$ & $\Z+jets$ & $\epsilon$ & $t\bar{t}+jets$ & $\epsilon$ \\ \hline |
260 |
> |
All events & 546 & & 72,700 & & 1,268,000 & & 17,600 & \\ |
261 |
> |
Found $\Z \to ee$ & 205 & 38\% & 27,800 & 38\% & 502,300 & 40\% & 2,920 & 17\% \\ |
262 |
> |
Found $\W \to e\nu$ & 42.0 & 21\% & 171 & 0.6\% & 309.6 & 0.06\% & 13.8 & 0.5\% \\ |
263 |
> |
\W lepton $p_T$ cut & 34.9 & 83\% & 23.7 & 14\% & 86.8 & 28 \% & 8.3 & 60\% \\ |
264 |
> |
Passes HLT & 34.7 & 100\% & 23.6 & 99\% & 86.8 &100\% & 8.3 & 100\% \\ |
265 |
> |
\Z mass window & 31.6 & 91\% & 17.5 & 74\% & 51.9 &60\% & 3.3 & 39\% \\ \hline |
266 |
> |
Overall efficiency & & 5.8\% & & 0.024\% & & 0.0041\% & & 0.019\% \\ |
267 |
> |
\hline\hline |
268 |
> |
|
269 |
> |
\multicolumn{9}{c}{ {\bf $2e1\mu$ Channel}} \\ \hline \hline |
270 |
> |
Step & \WZ & $\epsilon$ & $b\bar{b}\ell\ell$ & $\epsilon$ & $\Z+jets$ & $\epsilon$ & $t\bar{t}+jets$ & $\epsilon$ \\ \hline |
271 |
> |
All events & 546 & & 72,770 & & 1,268,000 & & 17,600 & \\ |
272 |
> |
Found $\Z \to ee$ & 201 & 38\% & 27,800 & 38\% & 502,300 & 40\% & 2,921 &17\% \\ |
273 |
> |
Found $\W \to \mu\nu$ & 47.9 & 23\% & 748 & 2.7\% & 2194 & 0.43\% & 56.8 &1.9\% \\ |
274 |
> |
\W lepton $p_T$ cut & 37.1 & 77\% & 9.6 & 1.3\% & 9.6 & 0.4\% & 17.5 &31\% \\ |
275 |
> |
Passes HLT & 36.2 & 98\% & 9.3 & 96\% & 8.3 & 87\% & 15.2 & 87 \%) \\ |
276 |
> |
\Z mass window & 32.5 & 90\% & 8.2 & 88\% & 7.3 & 88\% & 4.9 & 32\%) \\ \hline |
277 |
> |
Overall efficiency & & 6.0\% & & 0.011\% & & 0.00058\% & & 0.028\% \\ |
278 |
> |
\hline \hline |
279 |
> |
|
280 |
> |
\multicolumn{9}{c}{ {\bf $2\mu1e$ Channel}} \\ \hline \hline |
281 |
> |
Step & \WZ & $\epsilon$ & $b\bar{b}\ell\ell$ & $\epsilon$ & $\Z+jets$ & $\epsilon$ & $t\bar{t}+jets$ & $\epsilon$ \\ \hline |
282 |
> |
All events & 546 & & 72,770 & & 1,268,000 & & 17,600 & \\ |
283 |
> |
Found $\Z \to \mu\mu$ & 234 &43\%& 31,890 & 44\% & 577,200 & 46\% & 2779 & 16\% \\ |
284 |
> |
Found $\W \to e\nu$ & 48.8 &21\%& 214 & 0.67\% & 702 & 0.12\% & 15.1 & 0.54\% \\ |
285 |
> |
\W lepton $p_T$ cut & 40.7 &83\%& 50.6 & 24\% & 464.0 & 66\% & 10.3 & 68\% \\ |
286 |
> |
$\Delta R(e,\mu)$ cut & 40.6&100\%& 23.3 & 46\% & 93.0 & 20\% & 7.1 & 70\% \\ |
287 |
> |
Passes HLT & 39.4 &97\%& 23.2 & 99\% & 88.8 & 95\% & 6.6 & 93\% \\ |
288 |
> |
\Z mass window & 35.6 & 90\% & 18.9 & 81\% & 50.3 & 57\% & 2.8 &44\% \\ \hline |
289 |
> |
Overall efficiency & &6.5\% & & 0.026\% & & 0.0040\% & & 0.016\% \\ |
290 |
> |
\hline \hline |
291 |
> |
|
292 |
> |
\multicolumn{9}{c}{ {\bf $3\mu$ Channel}} \\ \hline \hline |
293 |
> |
Step & \WZ & $\epsilon$ & ${b\bar{b}\ell\ell}$ & $\epsilon$ & $\Z+jets$ & $\epsilon$ & ${t\bar{t}+jets}$ & $\epsilon$ \\ \hline |
294 |
> |
All events & 546 & & 72,770 & & 1,268,000 & & 17,600 & \\ |
295 |
> |
Found $Z \to \mu\mu$ & 234 & 43\% & 31,900 & 44\% & 577,000 & 45\% & 2779 & 16 \% \\ |
296 |
> |
Found $W \to \mu$ & 58 & 25 \% & 811 & 2.5\% & 2521 & 0.44\% & 35.3 & 1.23 \% \\ |
297 |
> |
W Lepton Pt cut & 44.2 & 77 \% & 8.9 & 1.1\% & 1.8 & 0.07\% & 1.7 & 4.8 \% \\ |
298 |
> |
Passes HLT & 44.0 & 99\% & 8.9 & 100\% & 1.8 & 100 \% & 1.7 & 100 \% \\ |
299 |
> |
Z mass window & 40.0 & 91 \%) & 7.8 & 88\% & 1.8 & 100 \% & 1.2 & 69\% \\ \hline |
300 |
> |
Overall efficiency & & 7.3 \% & & 0.011\% & & 0.00015\% & & 0.0065\% \\ |
301 |
|
\hline |
302 |
|
\end{tabular} |
303 |
|
|
304 |
< |
\begin{tabular}{lcccc} \hline |
247 |
< |
Step & WZ & Z+jets & TTbar+jets & bbll\\ \hline |
248 |
< |
All events & 546 & 1.2679e+06 & 17556.1 & 72770.4 \\ |
249 |
< |
Found $Z \to \mu\mu$ & 326.484 (59.7955 \%) & 748256 (59.0152 \%) & 14081.6 (80.2087 \%) & 43207.1 (59.3746 \%) \\ |
250 |
< |
Z muon isolation & 282.27 (86.4575 \%) & 669556 (89.4822 \%) & 4201.52 (29.837 \%) & 37959.1 (87.8538 \%) \\ |
251 |
< |
Z Lepton $eta$ cut & 282.27 (100 \%) & 669547 (99.9987 \%) & 4200.47 (99.975 \%) & 37959.1 (99.9998 \%) \\ |
252 |
< |
Z Lepton Pt cut & 274.249 (97.1584 \%) & 657267 (98.1659 \%) & 3626.81 (86.3429 \%) & 36945.8 (97.3306 \%) \\ |
253 |
< |
Z Lepton IP cut & 249.792 (91.0824 \%) & 603257 (91.7827 \%) & 3125.35 (86.1737 \%) & 33937.7 (91.8581 \%) \\ |
254 |
< |
Found $W \to \mu$ & 73.015 (29.2303 \%) & 7135.7 (1.18286 \%) & 774.076 (24.7677 \%) & 4435.51 (13.0696 \%) \\ |
255 |
< |
W Lepton $\eta$ cut & 72.956 (99.9192 \%) & 7110.07 (99.6409 \%) & 774.076 (100 \%) & 4432.32 (99.9282 \%) \\ |
256 |
< |
W $\mu$ isolation & 66.724 (91.4578 \%) & 3382.99 (47.5803 \%) & 78.3017 (10.1155 \%) & 1560.97 (35.2178 \%) \\ |
257 |
< |
W muon isolation & 50.1118 (75.1031 \%) & 6.25174 (0.184799 \%) & 5.8096 (7.41951 \%) & 20.6775 (1.32466 \%) \\ |
258 |
< |
Passes HLT & 49.7972 (99.3723 \%) & 6.25174 (100 \%) & 5.8096 (100 \%) & 20.6034 (99.6416 \%) \\ |
259 |
< |
Z mass window & 45.1576 (8.27062 \%) & 4.9976 (0.000394162 \%) & 1.683 (0.00958638 \%) & 18.3059 (0.0251557 \%) \\ |
260 |
< |
\hline |
261 |
< |
\end{tabular} |
304 |
> |
|
305 |
|
\caption{Expected number of signal and background events passing the different |
306 |
< |
selections steps in the \WZ, \ttbar and \Zbbbar samples for an integrated luminosity |
306 |
> |
selections steps together with the efficiency of each requirement and total efficiency of |
307 |
> |
selection criteria in the \WZ, \Zbbbar, \Zjets and \ttjets samples for an integrated luminosity |
308 |
|
of 1 \invfb.} |
309 |
|
\label{tab:sel-effA} |
310 |
|
\end{center} |
311 |
|
\end{table} |
312 |
|
|
313 |
< |
|
270 |
< |
|
271 |
< |
\subsection{Signal extraction} |
272 |
< |
|
273 |
< |
\input D0Matrix |
274 |
< |
\input zjetbackground |
275 |
< |
|
276 |
< |
|
277 |
< |
\subsection{Systematic uncertainties} |
278 |
< |
\input Sys |
279 |
< |
|
280 |
< |
|
281 |
< |
\begin{figure}[bt] |
282 |
< |
\begin{center} |
283 |
< |
\scalebox{0.8}{\includegraphics{figs/met_by_channel.eps}} |
284 |
< |
\caption{Missing transverse mass for the four signal categories. |
285 |
< |
The distributions show the number of expected events |
286 |
< |
for $1 fb^{-1}$. Only events with 81.1 GeV $< M_Z < $ 101.1 \gev |
287 |
< |
are shown. All selection cuts are applied.} |
288 |
< |
\label{fig:met} |
289 |
< |
\end{center} |
290 |
< |
\end{figure} |
291 |
< |
|
292 |
< |
\begin{figure}[bt] |
293 |
< |
\begin{center} |
294 |
< |
\scalebox{0.8}{\includegraphics{figs/mtw_by_channel.eps}} |
295 |
< |
\caption{W transverse mass for the four signal categories. |
296 |
< |
The distributions show the number of expected events |
297 |
< |
for $1 fb^{-1}$. Only events with 81.1 GeV $< M_Z < $ 101.1 GeV are shown. |
298 |
< |
All selection cuts are applied.} |
299 |
< |
\label{fig:mtw} |
300 |
< |
\end{center} |
301 |
< |
\end{figure} |
302 |
< |
|
303 |
< |
|
304 |
< |
|
305 |
< |
|
306 |
< |
\begin{table}[tbp] |
313 |
> |
\begin{table}[p] |
314 |
|
\begin{center} |
315 |
< |
\begin{tabular}{lccccc} |
315 |
> |
\begin{tabular}{l|ccccc} |
316 |
|
\hline \hline |
317 |
< |
& \multicolumn{5}{c}{$Z \to ee $} \\ |
318 |
< |
& $W \to e$ |
319 |
< |
& $W \to \mu$ |
320 |
< |
& $W \to \tau \to e$ |
321 |
< |
& $W \to \tau \to \mu$ |
322 |
< |
& $W \to \tau \to hadrons$ |
317 |
> |
& \multicolumn{5}{c}{$\Z \to ee$ and \W decay modes below} \\ |
318 |
> |
Reconstruction channel & $e \nu$ |
319 |
> |
& $\mu \nu $ |
320 |
> |
& $\tau \nu \to e \nu \nu $ |
321 |
> |
& $\tau \nu \to \mu \nu \nu $ |
322 |
> |
& $\tau \nu \to {\rm hadrons~} \nu$ |
323 |
|
\\ \hline |
324 |
|
$3e$ & 17.4 \% & 0.0319 \% & 6.42 \% & 0 \% & 0.162 \% \\ |
325 |
|
$2e1\mu$ & 0 \% & 18.6 \% & 0 \% & 5.53 \% & 0.0485 \% \\ |
326 |
|
$2\mu1e$ & 0 \% & 0 \% & 0 \% & 0 \% & 0 \% \\ |
327 |
|
$3\mu$ & 0 \% & 0 \% & 0 \% & 0 \% & 0 \% \\ |
328 |
|
\hline \hline |
329 |
< |
& \multicolumn{5}{c}{$Z \to \mu\mu $} \\ |
330 |
< |
& $W \to e$ |
331 |
< |
& $W \to \mu$ |
332 |
< |
& $W \to \tau \to e$ |
333 |
< |
& $W \to \tau \to \mu$ |
334 |
< |
& $W \to \tau \to hadrons$ |
329 |
> |
|
330 |
> |
& \multicolumn{5}{c}{$\Z \to \mu\mu$ and \W decay modes below} \\ |
331 |
> |
Reconstruction channel & $e\nu$ |
332 |
> |
& $\mu\nu$ |
333 |
> |
& $\tau\nu \to e\nu\nu$ |
334 |
> |
& $\tau\nu \to \mu\nu\nu$ |
335 |
> |
& $\tau\nu \to {\rm hadrons~}\nu$ |
336 |
|
\\ \hline |
337 |
|
$3e$ & 0 \% & 0 \% & 0 \% & 0 \% & 0 \% \\ |
338 |
|
$2e1\mu$ & 0.0104 \% & 0 \% & 0 \% & 0 \% & 0 \% \\ |
344 |
|
\caption{Selection efficiency for signal events in the four selection channels for the different |
345 |
|
generated \W and \Z decay channels.} |
346 |
|
\label{tab:wz-effimatrix} |
339 |
– |
\end{table} |
347 |
|
|
348 |
< |
|
349 |
< |
\begin{table}[tbp] |
348 |
> |
%\end{table} |
349 |
> |
%\begin{table}[tbp] |
350 |
|
\begin{center} |
351 |
|
\begin{tabular}{llcc} \hline |
352 |
< |
& & \multicolumn{2}{c}{Generated decay:} \\ |
353 |
< |
& & \multicolumn{2}{c}{$Z \to ee $} \\ |
354 |
< |
Selection channel & & $W \to e$ & $W \to \mu$ \\ \hline |
352 |
> |
& & \multicolumn{2}{c}{Generated decay} \\ |
353 |
> |
& & \multicolumn{2}{c}{$\Z \to ee $} \\ |
354 |
> |
Selection channel & & $\W \to e\nu$ & $\W \to \mu\nu$ \\ |
355 |
|
\hline \hline |
356 |
|
\multicolumn{4}{c}{all} \\ \hline |
357 |
< |
$3e$ & all & 1644 & 3 \\ |
358 |
< |
$3e$ & matched Z & 0.937+/-0.00598 & 1+/-0\\ |
359 |
< |
$3e$ & matched W & 0.915+/-0.00688 & 0+/--1\\ |
360 |
< |
$3e$ & matched WZ & 0.914+/-0.00691 & 0+/--1\\ |
361 |
< |
\hline \hline |
362 |
< |
\multicolumn{4}{c}{exactly 1 W lepton candidate} \\ \hline |
363 |
< |
$3e$ & all & 1602 & 0 \\ |
364 |
< |
$3e$ & matched Z & 0.938+/-0.00604 & -1+/--1\\ |
365 |
< |
$3e$ & matched W & 0.915+/-0.00696 & -1+/--1\\ |
366 |
< |
$3e$ & matched WZ & 0.914+/-0.00699 & -1+/--1\\ |
367 |
< |
\hline \hline |
368 |
< |
\multicolumn{4}{c}{more than 1 W lepton candidate} \\ \hline |
369 |
< |
$3e$ & all & 42 & 3 \\ |
370 |
< |
$3e$ & matched Z & 0.929+/-0.0397 & 1+/-0\\ |
371 |
< |
$3e$ & matched W & 0.905+/-0.0453 & 0+/--1\\ |
372 |
< |
$3e$ & matched WZ & 0.905+/-0.0453 & 0+/--1\\ |
357 |
> |
$3e$ & all & 1644 events & 3 events \\ |
358 |
> |
$3e$ & matched \Z & 93$\pm$1\% & 100\%\\ |
359 |
> |
$3e$ & matched \W & 92$\pm$1\% & 0\\ |
360 |
> |
$3e$ & matched \WZ & 91$\pm$1\% & 0\\ |
361 |
> |
\hline \hline |
362 |
> |
|
363 |
> |
\multicolumn{4}{c}{exactly 1 \W lepton candidate} \\ \hline |
364 |
> |
$3e$ & all & 1602 events & 0 events \\ |
365 |
> |
$3e$ & matched \Z & 94$\pm$1\% & 0\\ |
366 |
> |
$3e$ & matched \W & 92$\pm$1\% & 0\\ |
367 |
> |
$3e$ & matched \WZ & 91$\pm$1\% & 0\\ |
368 |
> |
\hline \hline |
369 |
> |
|
370 |
> |
\multicolumn{4}{c}{more than 1 \W lepton candidate} \\ \hline |
371 |
> |
$3e$ & all & 42 events & 3 events \\ |
372 |
> |
$3e$ & matched \Z & 93$\pm$4\% & 100\%\\ |
373 |
> |
$3e$ & matched \W & 91 $\pm$5\% & 0\\ |
374 |
> |
$3e$ & matched \WZ & 91$\pm$5\% & 0\\ |
375 |
|
\hline \hline |
376 |
+ |
|
377 |
|
\multicolumn{4}{c}{all} \\ \hline |
378 |
< |
$2e1\mu$ & all & 0 & 1746 \\ |
379 |
< |
$2e1\mu$ & matched Z & -1+/--1 & 0.999+/-0.000573\\ |
380 |
< |
$2e1\mu$ & matched W & -1+/--1 & 1+/-0\\ |
381 |
< |
$2e1\mu$ & matched WZ & -1+/--1 & 0.999+/-0.000573\\ |
382 |
< |
\hline \hline |
383 |
< |
\multicolumn{4}{c}{exactly 1 W lepton candidate} \\ \hline |
384 |
< |
$2e1\mu$ & all & 0 & 1715 \\ |
385 |
< |
$2e1\mu$ & matched Z & -1+/--1 & 0.999+/-0.000583\\ |
386 |
< |
$2e1\mu$ & matched W & -1+/--1 & 1+/-0\\ |
387 |
< |
$2e1\mu$ & matched WZ & -1+/--1 & 0.999+/-0.000583\\ |
378 |
> |
$2e1\mu$ & all & 0 events & 1746 events \\ |
379 |
> |
$2e1\mu$ & matched \Z & 0 & 100\%\\ |
380 |
> |
$2e1\mu$ & matched \W & 0 & 100\%\\ |
381 |
> |
$2e1\mu$ & matched \WZ & 0 & 100\%\\ |
382 |
> |
\hline \hline |
383 |
> |
|
384 |
> |
\multicolumn{4}{c}{exactly 1 \W lepton candidate} \\ \hline |
385 |
> |
$2e1\mu$ & all & 0 events & 1715 events \\ |
386 |
> |
$2e1\mu$ & matched \Z & 0 & 100\%\\ |
387 |
> |
$2e1\mu$ & matched \W & 0 & 100\%\\ |
388 |
> |
$2e1\mu$ & matched \WZ & 0 & 100\%\\ |
389 |
|
\hline \hline |
390 |
< |
\multicolumn{4}{c}{more than 1 W lepton candidate} \\ \hline |
390 |
> |
|
391 |
> |
\multicolumn{4}{c}{more than 1 \W lepton candidate} \\ \hline |
392 |
|
$2e1\mu$ & all & 0 & 31 \\ |
393 |
< |
$2e1\mu$ & matched Z & -1+/--1 & 1+/-0\\ |
394 |
< |
$2e1\mu$ & matched W & -1+/--1 & 1+/-0\\ |
395 |
< |
$2e1\mu$ & matched WZ & -1+/--1 & 1+/-0\\ \hline \hline |
393 |
> |
$2e1\mu$ & matched \Z & 0 & 100\%\\ |
394 |
> |
$2e1\mu$ & matched \W & 0 & 100\%\\ |
395 |
> |
$2e1\mu$ & matched \WZ & 0 & 100\% \\ \hline \hline |
396 |
|
\end{tabular} |
397 |
|
\end{center} |
398 |
|
\caption{Fractions of events with correctly matched leptons |
407 |
|
\begin{center} |
408 |
|
\begin{tabular}{llcc} \hline |
409 |
|
& & \multicolumn{2}{c}{Generated decay:} \\ |
410 |
< |
& & \multicolumn{2}{c}{$Z \to \mu\mu $} \\ |
411 |
< |
Selection channel & & $W \to e$ & $W \to \mu$ |
412 |
< |
\\ \hline |
410 |
> |
& & \multicolumn{2}{c}{$\Z \to \mu\mu $} \\ |
411 |
> |
Selection channel & & $\W \to e\nu$ & $\W \to \mu\nu$ |
412 |
> |
\\ |
413 |
|
\hline \hline |
414 |
|
\multicolumn{4}{c}{all} \\ \hline |
415 |
< |
$2\mu1e$ & all & 1895 & 2 \\ |
416 |
< |
$2\mu1e$ & matched Z & 1+/-0 & 1+/-0\\ |
417 |
< |
$2\mu1e$ & matched W & 0.985+/-0.00282 & 0+/--1\\ |
418 |
< |
$2\mu1e$ & matched WZ & 0.985+/-0.00282 & 0+/--1\\ |
419 |
< |
\hline \hline |
420 |
< |
\multicolumn{4}{c}{exactly 1 W lepton candidate} \\ \hline |
421 |
< |
$2\mu1e$ & all & 1847 & 0 \\ |
422 |
< |
$2\mu1e$ & matched Z & 1+/-0 & -1+/--1\\ |
423 |
< |
$2\mu1e$ & matched W & 0.986+/-0.00274 & -1+/--1\\ |
424 |
< |
$2\mu1e$ & matched WZ & 0.986+/-0.00274 & -1+/--1\\ |
425 |
< |
\hline \hline |
426 |
< |
\multicolumn{4}{c}{more than 1 W lepton candidate} \\ \hline |
427 |
< |
$2\mu1e$ & all & 48 & 2 \\ |
428 |
< |
$2\mu1e$ & matched Z & 1+/-0 & 1+/-0\\ |
429 |
< |
$2\mu1e$ & matched W & 0.938+/-0.0349 & 0+/--1\\ |
430 |
< |
$2\mu1e$ & matched WZ & 0.938+/-0.0349 & 0+/--1\\ |
415 |
> |
$2\mu1e$ & all & 1895 events & 2 events \\ |
416 |
> |
$2\mu1e$ & matched \Z & 100\% & 100\%\\ |
417 |
> |
$2\mu1e$ & matched \W & 99$\pm$1\% & 0\\ |
418 |
> |
$2\mu1e$ & matched \WZ & 99$\pm$1\% & 0\\ |
419 |
> |
\hline \hline |
420 |
> |
|
421 |
> |
\multicolumn{4}{c}{exactly 1 \W lepton candidate} \\ \hline |
422 |
> |
$2\mu1e$ & all & 1847 events & 0 events \\ |
423 |
> |
$2\mu1e$ & matched \Z & 100\% & 0\\ |
424 |
> |
$2\mu1e$ & matched \W & 99$\pm$1\% & 0\\ |
425 |
> |
$2\mu1e$ & matched \WZ & 99$\pm$1\% & 0\\ |
426 |
> |
\hline \hline |
427 |
> |
|
428 |
> |
\multicolumn{4}{c}{more than 1 \W lepton candidate} \\ \hline |
429 |
> |
$2\mu1e$ & all & 48 events & 2 events \\ |
430 |
> |
$2\mu1e$ & matched \Z & 100\% & 100\%\\ |
431 |
> |
$2\mu1e$ & matched \W & 94$\pm$3.5\%& 0\\ |
432 |
> |
$2\mu1e$ & matched \WZ & 94$\pm$3.5\% & 0\\ |
433 |
|
\hline \hline |
434 |
+ |
|
435 |
|
\multicolumn{4}{c}{all} \\ \hline |
436 |
< |
$3\mu$ & all & 0 & 2251 \\ |
437 |
< |
$3\mu$ & matched Z & -1+/--1 & 0.943+/-0.00488\\ |
438 |
< |
$3\mu$ & matched W & -1+/--1 & 0.933+/-0.00526\\ |
439 |
< |
$3\mu$ & matched WZ & -1+/--1 & 0.933+/-0.00526\\ |
440 |
< |
\hline \hline |
441 |
< |
\multicolumn{4}{c}{exactly 1 W lepton candidate} \\ \hline |
442 |
< |
$3\mu$ & all & 0 & 2207 \\ |
443 |
< |
$3\mu$ & matched Z & -1+/--1 & 0.944+/-0.0049\\ |
444 |
< |
$3\mu$ & matched W & -1+/--1 & 0.934+/-0.00529\\ |
445 |
< |
$3\mu$ & matched WZ & -1+/--1 & 0.934+/-0.00529\\ |
446 |
< |
\hline \hline |
447 |
< |
\multicolumn{4}{c}{more than 1 W lepton candidate} \\ \hline |
448 |
< |
$3\mu$ & all & 0 & 44 \\ |
449 |
< |
$3\mu$ & matched Z & -1+/--1 & 0.909+/-0.0433\\ |
450 |
< |
$3\mu$ & matched W & -1+/--1 & 0.909+/-0.0433\\ |
451 |
< |
$3\mu$ & matched WZ & -1+/--1 & 0.909+/-0.0433\\ \hline \hline |
436 |
> |
$3\mu$ & all & 0 events & 2251 events \\ |
437 |
> |
$3\mu$ & matched \Z & 0 & 94$\pm$1\%\\ |
438 |
> |
$3\mu$ & matched \W & 0 & 93$\pm$1\%\\ |
439 |
> |
$3\mu$ & matched \WZ & 0 & 93$\pm$1\%\\ |
440 |
> |
\hline \hline |
441 |
> |
|
442 |
> |
\multicolumn{4}{c}{exactly 1 \W lepton candidate} \\ \hline |
443 |
> |
$3\mu$ & all & 0 events & 2207 events \\ |
444 |
> |
$3\mu$ & matched \Z & 0 & 94$\pm$1\%\\ |
445 |
> |
$3\mu$ & matched \W & 0 & 93$\pm$1\%\\ |
446 |
> |
$3\mu$ & matched \WZ & 0 & 93$\pm$1\%\\ |
447 |
> |
\hline \hline |
448 |
> |
|
449 |
> |
\multicolumn{4}{c}{more than 1 \W lepton candidate} \\ \hline |
450 |
> |
$3\mu$ & all & 0 events & 44 events \\ |
451 |
> |
$3\mu$ & matched \Z & 0 & 91$\pm$4\%\\ |
452 |
> |
$3\mu$ & matched \W & 0 & 91$\pm$4\%\\ |
453 |
> |
$3\mu$ & matched \WZ & 0 & 91$\pm$4\%\\ \hline \hline |
454 |
|
\end{tabular} |
455 |
|
\end{center} |
456 |
|
\caption{Fractions of MC \WZ events with correctly matched leptons |
459 |
|
\label{tab:wz-matcheffi-Zmumu} |
460 |
|
\end{table} |
461 |
|
|
462 |
+ |
|
463 |
+ |
%\subsection{Signal extraction} |
464 |
+ |
%\input D0Matrix |
465 |
+ |
\input zjetbackground |
466 |
+ |
|
467 |
+ |
|
468 |
+ |
\subsection{Complementary studies: can we use the neutrino?} |
469 |
+ |
|
470 |
+ |
In $\WZ \to \ell^{\pm}\nu \ellell (\ell=e,\mu)$ events, the neutrino |
471 |
+ |
coming from the \W-boson decay leaves the detector with a significant |
472 |
+ |
amount of energy, which should reflect in a large transverse missing |
473 |
+ |
energy measurement. On the other side, no large MET is expected for |
474 |
+ |
the most important background categories, especially \Zjets, |
475 |
+ |
\Zbbbar, \ZZ and \Zgamma. This expectation is confirmed, as can be |
476 |
+ |
seen in Figure~\ref{fig:met}. |
477 |
+ |
|
478 |
+ |
Another variable sensitive to the presence of the neutrino |
479 |
+ |
is the W transverse mass $m_T^W$, obtained by combining the missing |
480 |
+ |
energy vector and the lepton associated to the \W-boson decay. |
481 |
+ |
The distribution of $m_T^W$ is shown in Figure~\ref{fig:mtw}. |
482 |
+ |
The signal yield could be extracted from that distribution. |
483 |
+ |
This requires however additional studies and it has not been |
484 |
+ |
done at this stage. |
485 |
+ |
|
486 |
+ |
|
487 |
+ |
\section{Systematic uncertainties} |
488 |
+ |
\input Sys |
489 |
+ |
|
490 |
+ |
|
491 |
+ |
\begin{figure}[bt] |
492 |
+ |
\begin{center} |
493 |
+ |
\scalebox{0.8}{\includegraphics{figs/met_by_channel.eps}} |
494 |
+ |
\caption{Missing transverse mass for the four signal categories. |
495 |
+ |
The distributions show the number of expected events |
496 |
+ |
for $1 fb^{-1}$. Only events with 81 GeV $< M_Z < $ 101 \gev |
497 |
+ |
are shown. All selection cuts are applied.} |
498 |
+ |
\label{fig:met} |
499 |
+ |
\end{center} |
500 |
+ |
\end{figure} |
501 |
+ |
|
502 |
+ |
\begin{figure}[bt] |
503 |
+ |
\begin{center} |
504 |
+ |
\scalebox{0.8}{\includegraphics{figs/mtw_by_channel.eps}} |
505 |
+ |
\caption{\W transverse mass for the four signal categories. |
506 |
+ |
The distributions show the number of expected events |
507 |
+ |
for $1 fb^{-1}$. Only events with 81 GeV $< M_Z < $ 101 GeV are shown. |
508 |
+ |
All selection cuts are applied.} |
509 |
+ |
\label{fig:mtw} |
510 |
+ |
\end{center} |
511 |
+ |
\end{figure} |
512 |
+ |
|
513 |
+ |
|
514 |
+ |
|
515 |
+ |
|
516 |
+ |
|