Large PDF
Author
Hugh O'Brien
Last Updated
před 7 lety
License
Creative Commons CC BY 4.0
Abstract
This is to test the >4mb file downloads from s3
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\documentclass[12pt]{article}
\usepackage[english]{babel}
\usepackage[utf8x]{inputenc}
\usepackage{amsmath}
\usepackage{graphicx}
\title{Large PDF}
\author{You}
\begin{document}
\maketitle
\begin{abstract}
Your abstract.
\end{abstract}
\section{Introduction}
Your introduction goes here! Some examples of commonly used commands and features are listed below, to help you get started.
\section{Some \LaTeX{} Examples}
\label{sec:examples}
\subsection{Sections}
Use \texttt{section}s and \texttt{subsection}s to organize your document. \LaTeX{} handles all the formatting and numbering automatically. Use \texttt{ref} and \texttt{label} for cross-references --- this is Section~\ref{sec:examples}, for example.
\subsection{Tables and Figures}
Use \texttt{tabular} for basic tables --- see Table~\ref{tab:widgets}, for example. You can upload a figure (JPEG, PNG or PDF) using the files menu. To include it in your document, use the \texttt{includegraphics} command (see the comment below in the source code).
% Commands to include a figure:
\begin{figure}
\includegraphics[width=\textwidth]{min_mean_wait_evm_7_eps_150dpi}
\caption{\label{fig:your-figure}Caption goes here.}
\end{figure}
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\LaTeX{} is great at typesetting mathematics. Let $X_1, X_2, \ldots, X_n$ be a sequence of independent and identically distributed random variables with $\text{E}[X_i] = \mu$ and $\text{Var}[X_i] = \sigma^2 < \infty$, and let
$$S_n = \frac{X_1 + X_2 + \cdots + X_n}{n}
= \frac{1}{n}\sum_{i}^{n} X_i$$
denote their mean. Then as $n$ approaches infinity, the random variables $\sqrt{n}(S_n - \mu)$ converge in distribution to a normal $\mathcal{N}(0, \sigma^2)$.
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\begin{table}
\centering
\begin{tabular}{l|r}
Item & Quantity \\\hline
Widgets & 42 \\
Gadgets & 13
\end{tabular}
\caption{\label{tab:widgets}An example table.}
\end{table}
\subsection{Mathematics}
\LaTeX{} is great at typesetting mathematics. Let $X_1, X_2, \ldots, X_n$ be a sequence of independent and identically distributed random variables with $\text{E}[X_i] = \mu$ and $\text{Var}[X_i] = \sigma^2 < \infty$, and let
$$S_n = \frac{X_1 + X_2 + \cdots + X_n}{n}
= \frac{1}{n}\sum_{i}^{n} X_i$$
denote their mean. Then as $n$ approaches infinity, the random variables $\sqrt{n}(S_n - \mu)$ converge in distribution to a normal $\mathcal{N}(0, \sigma^2)$.
\subsection{Lists}
You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}You can make lists with automatic numbering \dots
\begin{enumerate}
\item Like this,
\item and like this.
\end{enumerate}
\dots or bullet points \dots
\begin{itemize}
\item Like this,
\item and like this.
\end{itemize}
\LaTeX{} is great at typesetting mathematics. Let $X_1, X_2, \ldots, X_n$ be a sequence of independent and identically distributed random variables with $\text{E}[X_i] = \mu$ and $\text{Var}[X_i] = \sigma^2 < \infty$, and let
$$S_n = \frac{X_1 + X_2 + \cdots + X_n}{n}
= \frac{1}{n}\sum_{i}^{n} X_i$$
denote their mean. Then as $n$ approaches infinity, the random variables $\sqrt{n}(S_n - \mu)$ converge in distribution to a normal $\mathcal{N}(0, \sigma^2)$.
\includegraphics[]{2.pdf}\\
\includegraphics[]{phd-thesis-template-for-cambridge-university-engineering-department-cued-latex-xelatex-and-lualatex-support-v2-dot-1.pdf}
\includegraphics[]{1.png}\\
\includegraphics[]{2.pdf}\\
\includegraphics[]{3.png}\\
\includegraphics[]{4.png}\\
\includegraphics[]{5.png}\\
\includegraphics[]{6.png}\\
\includegraphics[]{7.png}\\
\includegraphics[]{8.png}\\
\includegraphics[]{9.png}\\
\includegraphics[]{10.png}\\
\includegraphics[]{11.png}
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\input{file.tex}
\begin{figure} [!h]
\centering
\includegraphics[height=0.85in]{Logos/Google.PNG}
\hspace{.01in}
\includegraphics[height=0.85in]{Logos/C4Labs.jpg}
\hspace{.01in}
\includegraphics[height=0.85in]{Logos/aplos-logos-registered_White-07.png}
\end{figure}
\begin{figure} [!h]
\centering
\includegraphics[height=1.0in]{Logos/logo.png}
\hspace{.2in}
\includegraphics[height=1.0in]{Logos/fglogo.png}
\end{figure}
\begin{figure} [!h]
\centering
\includegraphics[height=0.8in]{Logos/boardlogo.png}
\hspace{.2in}
\includegraphics[height=0.8in]{Logos/screensteps-logo.png}
\caption{Enterprise Sponsors}
\label{sponsor}
\end{figure}
\begin{figure} [!h]
\centering
\includegraphics[height=0.9in]{Logos/nike.png}
\hspace{.01in}
\includegraphics[height=0.9in]{Logos/BanksHighSchool.PNG}
\hspace{.01in}
\includegraphics[height=0.9in]{Logos/qorvo-logo-black-tm-rgb.png}
\end{figure}
\begin{figure} [!h]
\centering
\includegraphics[height=0.8in]{Logos/intel_rgb_3000.png}
\hspace{.01in}
\includegraphics[height=0.8in]{Logos/MakerSpace.PNG}
\hspace{.01in}
\includegraphics[height=0.8in]{Logos/Mathnasium.PNG}
\caption{Financial Sponsors}
\label{sponsor}
\end{figure}
\includegraphics[height=0.85in]{1.jpg}
\includegraphics[height=0.85in]{rubix.JPG}
\end{document}