13 |
|
|
14 |
|
\subsection{Lepton Selection} |
15 |
|
|
16 |
< |
Because Z $\rightarrow\ell\ell$ ($\ell=e,\mu$) is a final state with very little |
17 |
< |
background after a Z mass requirement is applied to the leptons, |
16 |
> |
Because Z $\rightarrow\ell\ell$ ($\ell=e,\mu$) is a final state with very little background, |
17 |
|
we restrict ourselves to events in which the Z boson decays to electrons or muons only. |
18 |
< |
Therefore two same flavor, opposite sign leptons passing the ID described below are required in each event. |
18 |
> |
Therefore opposite sign leptons passing the identification and isolation requirements described below are required in each event. |
19 |
|
|
20 |
|
\begin{itemize} |
21 |
|
\item \pt $> 20$~GeV and $|\eta|<2.4$; |
22 |
< |
\item Opposite-sign SF lepton pairs (OF e$\mu$ events are retained in a control |
22 |
> |
\item Opposite-sign same-flavor (SF) ee and $\mu\mu$ lepton pairs (opposite-flavor (OF) e$\mu$ lepton pairs are retained in a control |
23 |
|
sample used to estimate the FS contribution); |
24 |
|
\item For SF events, the dilepton invariant mass is required to be consistent with the Z mass; namely $81<m_{\ell\ell}<101$ GeV. |
25 |
|
\end{itemize} |
27 |
|
\subsubsection{Electron Selection} |
28 |
|
|
29 |
|
The electron selection is the loose working point recommended by the E/gamma POG, as documented at~\cite{ref:Egamma}. |
30 |
+ |
Electrons with \pt $>$ 20 GeV and $|\eta|<2.4$ are considered. |
31 |
|
We use PF-based isolation with a cone size of $\Delta R<0.3$, using the effective area rho corrections documented at~\cite{ref:Egammaiso}, |
32 |
|
and we require a relative isolation $<$ 0.15. |
33 |
|
Electrons in the transition region defined by $1.4442 < |\eta_{SC}| < 1.566$ are rejected. |
57 |
|
|
58 |
|
\subsubsection{Muon Selection} |
59 |
|
|
60 |
< |
We use the tight muon selection recommended by the muon POG, as documented at~\cite{ref:muon}. We use PF-based isolation with a cone size |
60 |
> |
We use the tight muon selection recommended by the muon POG, as documented at~\cite{ref:muon}. |
61 |
> |
Muons with \pt $>$ 20 GeV and $|\eta|<2.4$ are considered. We use PF-based isolation with a cone size |
62 |
|
of $\Delta R<0.3$, using the $\Delta\beta$ PU correction scheme, and we require a relative isolation of $<$ 0.15. |
63 |
|
The muon selection requirements are listed in Table~\ref{table:muons} for completeness. |
64 |
|
|
82 |
|
\end{center} |
83 |
|
\end{table} |
84 |
|
|
85 |
+ |
\subsubsection{PF Leptons} |
86 |
+ |
|
87 |
+ |
For consistency with pfmet, both electrons and muons are required to be reconstructed as PF electrons and PF muons, respectively, |
88 |
+ |
with \pt $>$ 20 GeV. For defining the dilepton invariant mass, the 4-momenta of the PF leptons are used. |
89 |
+ |
|
90 |
|
\subsection{Photons} |
91 |
|
\label{sec:phosel} |
92 |
|
|
106 |
|
This removes a few rare cases in which ``overcleaning" of a |
107 |
|
%ECAL recHit |
108 |
|
pfjet |
109 |
< |
generated fake MET. |
109 |
> |
generates fake MET. |
110 |
|
|
111 |
|
\item We also match photons to calojets and require (calojet \pt - photon \pt) $>$ -5~GeV |
112 |
|
(the same requirement used for pfjets). This is to remove other rare cases in which fake |
129 |
|
\label{sec:jetsel} |
130 |
|
|
131 |
|
\begin{itemize} |
132 |
< |
\item PF jets with L1FastL2L3 corrections (MC), L1FastL2L3residual corrections (data) |
132 |
> |
\item PF jets with L1FastL2L3 corrections (MC), L1FastL2L3residual corrections (data), using the 52X jet energy corrections |
133 |
|
\item $|\eta| < 2.5$ |
134 |
|
\item Passes loose PFJet ID |
135 |
|
\item \pt $ > 30$ GeV for determining the jet multiplicity, \pt $ > 15$ GeV for calculation of \Ht |