Pascal's Pool Triangle
Auteur:
Senan Sekhon
Last Updated:
il y a 2 ans
License:
Creative Commons CC BY 4.0
Résumé:
A billiards-themed Pascal's triangle, made with TikZ
\begin
Discover why 18 million people worldwide trust Overleaf with their work.
A billiards-themed Pascal's triangle, made with TikZ
\begin
Discover why 18 million people worldwide trust Overleaf with their work.
\documentclass{article}
\usepackage[paperwidth=20cm,paperheight=20cm,top=0in,bottom=0in,left=0in,right=0in]{geometry}
\usepackage[dvipsnames]{xcolor}
\usepackage{tikz,pgf}
\usepackage{xintexpr} %For computing binomial coefficients and their quotients and remainders
%Created by Senan Sekhon
%Created July 18, 2022
%The code below is used to define commands with different results depending on whether or not the optional argument is used. From https://tex.stackexchange.com/questions/308/different-command-definitions-with-and-without-optional-argument
\makeatletter
\def\ifemptyarg#1{%
\if\relax\detokenize{#1}\relax % H. Oberdiek
\expandafter\@firstoftwo
\else
\expandafter\@secondoftwo
\fi}
\makeatother
\newcommand{\soball}[2][]{\ifemptyarg{#1}
{\shade[ball color=#2] (0,0) circle (0.5);} %solid ball with no label
{\shade[ball color=#2] (0,0) circle (0.5);
\begin{scope}
\clip (0,0) circle (0.25);
\shade[ball color=white] (0,0) circle (0.5);
\end{scope}
\node[font=\sffamily\bfseries\selectfont] at (0,0) {#1};} %solid ball with label
}
\newcommand{\stball}[2][]{\ifemptyarg{#1}
{\shade[ball color=white] (0,0) circle (0.5);
\clip (-0.5,-0.35) rectangle (0.5,0.35);
\shade[ball color=#2] (0,0) circle (0.5);} %striped ball with no label
{\shade[ball color=white] (0,0) circle (0.5);
\clip (-0.5,-0.35) rectangle (0.5,0.35);
\shade[ball color=#2] (0,0) circle (0.5);
\begin{scope}
\clip (0,0) circle (0.25);
\shade[ball color=white] (0,0) circle (0.5);
\end{scope}
\node[font=\sffamily\bfseries\selectfont] at (0,0) {#1};} %striped ball with label
}
\newcommand{\cue}[3]{%Template for pool cue
\def\cl{#1} %Length of cue
\def\tr{#2} %Half-width of tip of cue
\def\br{#3} %Half-width of base of cue
\shade[bottom color=white,top color=black!40] (0,\tr)--(\cl,\br)--(\cl,-\br)--(0,-\tr)--cycle;
\shade[left color=Sepia!20,right color=Sepia] (\cl,\br) arc(15:-15:{(2+sqrt(3))*\br})--(\cl,-\br)--({2*\cl/3},{-(\tr+2*\br)/3})--({5*\cl/6},{-(\tr+5*\br)/12})--({2*\cl/3},0)--({5*\cl/6},{(\tr+5*\br)/12})--({2*\cl/3},{(\tr+2*\br)/3})--cycle;
\fill[gray!10] (0,\tr)--({\cl/12},{(11*\tr+\br)/12}) arc(15:-15:{(2+sqrt(3))*(11*\tr+\br)/12})--({\cl/12},{-(11*\tr+\br)/12})--(0,-\tr)--cycle;
\shade[ball color=Cerulean!50] (0,0) ellipse (2*\tr/5 and \tr);
}
%Defining the color of the pool table cloth
\definecolor{cloth}{HTML}{067345}
\begin{document}
\pagecolor{cloth}
\null\vspace{0pt} %Top padding
\begin{center}
\begin{tikzpicture}
\pgfmathtruncatemacro{\N}{16} %Number of rows of Pascal's triangle to generate (excluding the zeroth row {1})
\foreach \n in {0,...,\N}
\foreach \k in {0,...,\n}
{\pgfmathtruncatemacro{\binomial}{\xinteval{binomial(\n,\k)}} %Computing the binomial coefficient nCk
%Setting the ball color based on the remainder of nCk modulo 8 (these colors resemble those used in standard pool)
\pgfmathtruncatemacro{\modeight}{\xinteval{\binomial/:8}} %Remainder of \binomial on division by 8
\ifnum \modeight=0 \colorlet{ballcol}{black} \fi
\ifnum \modeight=1 \colorlet{ballcol}{yellow} \fi
\ifnum \modeight=2 \colorlet{ballcol}{blue} \fi
\ifnum \modeight=3 \colorlet{ballcol}{red} \fi
\ifnum \modeight=4 \colorlet{ballcol}{violet} \fi
\ifnum \modeight=5 \colorlet{ballcol}{orange} \fi
\ifnum \modeight=6 \colorlet{ballcol}{OliveGreen} \fi
\ifnum \modeight=7 \colorlet{ballcol}{Maroon} \fi
%Setting the size of the binomial coefficients to be printed
\ifnum \binomial<100
\pgfmathsetmacro{\scale}{1} %If nCk<100, print it normally
\else
\ifnum \binomial<1000
\pgfmathsetmacro{\scale}{0.8} %If 100≤nCk<1000, scale it by 0.8
\else
\ifnum \binomial<10000
\pgfmathsetmacro{\scale}{0.6} %If 1000≤nCk<10000, scale it by 0.6
\else
\pgfmathsetmacro{\scale}{0.5} %If nCk≥10000, scale it by 0.4
\fi
\fi
\fi
\begin{scope}[shift={({\k-\n/2},{-1/2*sqrt(3)*\n})}]
\ifodd \xinteval{\binomial//8} %Floor of \binomial/8
\soball[\scalebox{\scale}{\binomial}]{ballcol}
\else
\stball[\scalebox{\scale}{\binomial}]{ballcol}
\fi
\end{scope}
}
%%% Triangle around all the balls
\pgfmathsetmacro{\w}{0.4} %Width of triangle
\fill[Brown!90!black,even odd rule,rounded corners=5mm]
(0,{1+\w})--({-(1+\w)*sqrt(3)/2-\N/2},{-(1+\w)/2-\N*sqrt(3)/2})--({(1+\w)*sqrt(3)/2+\N/2},{-(1+\w)/2-\N*sqrt(3)/2})--cycle %Outer border of triangle
(0,1)--({-sqrt(3)/2-\N/2},{-1/2-\N*sqrt(3)/2})--({sqrt(3)/2+\N/2},{-1/2-\N*sqrt(3)/2})--cycle; %Inner border of triangle
\begin{scope}[shift={(-7,2)}] %Pool cue Title Label
\pgfmathsetmacro{\cl}{14} %Length of cue
\pgfmathsetmacro{\tr}{0.2} %Half-width of tip of cue
\pgfmathsetmacro{\br}{0.3} %Half-width of base of cue
\shade[bottom color=white,top color=black!40] (0,\tr)--(\cl,\br)--(\cl,-\br)--(0,-\tr)--cycle; %Shading the body of the cue
\shade[left color=Sepia!20,right color=Sepia] (\cl,\br) arc(15:-15:{(2+sqrt(3))*\br})--(\cl,-\br)--({2*\cl/3},{-(\tr+2*\br)/3})--({5*\cl/6},{-(\tr+5*\br)/12})--({2*\cl/3},0)--({5*\cl/6},{(\tr+5*\br)/12})--({2*\cl/3},{(\tr+2*\br)/3})--cycle;
\fill[gray!10] (0,\tr)--({\cl/12},{(11*\tr+\br)/12}) arc(15:-15:{(2+sqrt(3))*(11*\tr+\br)/12})--({\cl/12},{-(11*\tr+\br)/12})--(0,-\tr)--cycle; %Shading the jagged finish at base of cue
\shade[ball color=Cerulean!50] (0,0) ellipse (2*\tr/5 and \tr); %Shading tip of cue
\node[xshift=-2mm,font=\sffamily\bfseries] at (\cl/2,0) {PASCAL'S POOL TRIANGLE};
\end{scope}
\end{tikzpicture}
\end{center}
\begin{center}
\huge\sffamily\bfseries\color{gray!20} Designed in {\normalfont\LaTeX} and {\normalfont Ti\textit{k}Z} by Senan Sekhon
\end{center}
\end{document}