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Adds reference to dphi v ladder plots

Caleb Fangmeier 7 年之前
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f6b301fb6c

二进制
docs/presentations/2017_07_17/diagrams/dphi_v_ladder_dylan.png


二进制
docs/presentations/2017_07_17/main.pdf


+ 19 - 7
docs/presentations/2017_07_17/main.tex

@@ -36,8 +36,8 @@
 
 
 \begin{frame}{Introduction}
 \begin{frame}{Introduction}
   \begin{itemize}
   \begin{itemize}
-      \item Our goal is to study \textbf{seeding} for the \textbf{offline} gsf tracking with the \textbf{new pixel detector}.
-    \item Ongoing studies\footnote{\url{https://indico.cern.ch/event/613833/contributions/2646392/attachments/1486134/2307836/EGMHLT_PixelMatching_Jun30.pdf}} in HLT examine the resolution of RecHits used in GSF Tracking.
+      \item Our goal is to study \textbf{seeding} for the \textbf{offline} Gsf tracking with the \textbf{new pixel detector}.
+    \item Ongoing studies\footnote{\url{https://indico.cern.ch/event/613833/contributions/2646392/attachments/1486134/2307836/EGMHLT_PixelMatching_Jun30.pdf}} in HLT examine the resolution of RecHits used in Gsf Tracking.
     \item In those studies, the resolution is computed by measuring the distance between the \textbf{RecHits} and the extrapolated paths from ECAL \textbf{super-clusters} (SCs).
     \item In those studies, the resolution is computed by measuring the distance between the \textbf{RecHits} and the extrapolated paths from ECAL \textbf{super-clusters} (SCs).
     \item For \textbf{offline} reconstruction, we compute residuals by comparing the position of \textbf{RecHits} and associated \textbf{SimHits}.
     \item For \textbf{offline} reconstruction, we compute residuals by comparing the position of \textbf{RecHits} and associated \textbf{SimHits}.
     \item Knowing these resolutions is important in choosing the size of search windows in the hit matching algorithm used in electron reconstruction.
     \item Knowing these resolutions is important in choosing the size of search windows in the hit matching algorithm used in electron reconstruction.
@@ -53,7 +53,7 @@
   \end{itemize}
   \end{itemize}
 \end{frame}
 \end{frame}
 
 
-\begin{frame}{Gsf Electron Seeding}
+\begin{frame}{Gsf Electron Seeding I}
   \begin{columns}
   \begin{columns}
   \begin{column}{0.75\textwidth}
   \begin{column}{0.75\textwidth}
     \begin{figure}
     \begin{figure}
@@ -72,7 +72,7 @@
   \footnotesize{Windows from \url{https://indico.cern.ch/event/611042/contributions/2464057/attachments/1406271/2148742/ElectronTracking30112016.pdf}}
   \footnotesize{Windows from \url{https://indico.cern.ch/event/611042/contributions/2464057/attachments/1406271/2148742/ElectronTracking30112016.pdf}}
 \end{frame}
 \end{frame}
 
 
-\begin{frame}{Gsf Electron Seeding}
+\begin{frame}{Gsf Electron Seeding II}
   \begin{columns}
   \begin{columns}
   \begin{column}{0.66\textwidth}
   \begin{column}{0.66\textwidth}
     \begin{figure}
     \begin{figure}
@@ -89,7 +89,7 @@
   \end{columns}
   \end{columns}
 \end{frame}
 \end{frame}
 
 
-\begin{frame}{Gsf Electron Seeding}
+\begin{frame}{Gsf Electron Seeding III}
   \begin{center}
   \begin{center}
     \begin{figure}
     \begin{figure}
       \includegraphics[width=\textwidth]{diagrams/Gsf_Seeding3.png}
       \includegraphics[width=\textwidth]{diagrams/Gsf_Seeding3.png}
@@ -123,7 +123,6 @@ To find residuals for calculating resolutions, require a pair containing 1
       \texttt{SimTracks} associated with the original \texttt{Track}. If
       \texttt{SimTracks} associated with the original \texttt{Track}. If
       \textbf{A} exists in this set. Make a pair of \texttt{SimHit} \textbf{A}
       \textbf{A} exists in this set. Make a pair of \texttt{SimHit} \textbf{A}
       and \texttt{RecHit} \textbf{B}.
       and \texttt{RecHit} \textbf{B}.
-    \item Go back to 1.
   \end{enumerate}
   \end{enumerate}
 \end{frame}
 \end{frame}
 
 
@@ -163,6 +162,19 @@ To find residuals for calculating resolutions, require a pair containing 1
     \end{figure}
     \end{figure}
 \end{frame}
 \end{frame}
 
 
+\begin{frame}{Resolution dependence on even/odd ladder number}
+    \begin{figure}
+      \centering
+      \includegraphics[width=0.8\textwidth]{diagrams/dphi_v_ladder_dylan.png}
+    \end{figure}
+    {\small
+    \begin{itemize}
+      \item Above From Dylan Rankin's June 30 Presentation. (See slide 1)
+      \item We have slightly different definitions of $\Delta\phi_1$, but wanted to investigate ourselves.
+    \end{itemize}
+    }
+\end{frame}
+
 \begin{frame}{Resolution dependence on even/odd ladder number}
 \begin{frame}{Resolution dependence on even/odd ladder number}
     \begin{figure}
     \begin{figure}
       \centering
       \centering
@@ -173,7 +185,7 @@ To find residuals for calculating resolutions, require a pair containing 1
 
 
 \begin{frame}{Conclusions}
 \begin{frame}{Conclusions}
   \begin{itemize}
   \begin{itemize}
-    \item Analysis machinery for offline electron reco studies with MC truth is in place.
+    \item Analysis machinery for offline electron RECO studies with MC truth is in place.
     \item Preliminary plots of $\Delta\phi_{1/2}$ and $\Delta z_{1/2}$ for BPIX
     \item Preliminary plots of $\Delta\phi_{1/2}$ and $\Delta z_{1/2}$ for BPIX
       Layers 1/2 are shown.
       Layers 1/2 are shown.
     \item Code for this analysis is here: \\ \footnotesize
     \item Code for this analysis is here: \\ \footnotesize