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authorKarl Berry <karl@freefriends.org>2014-04-08 22:20:48 +0000
committerKarl Berry <karl@freefriends.org>2014-04-08 22:20:48 +0000
commitd213249d916724bc567b5c28883cf6965db2e18e (patch)
treed312409939a24d78081449664e8ff32a5654a427 /Master/texmf-dist/doc/latex/tqft
parent2cf705b464bf17366d3da797f80f41965c54f85b (diff)
tqft (8apr14)
git-svn-id: svn://tug.org/texlive/trunk@33411 c570f23f-e606-0410-a88d-b1316a301751
Diffstat (limited to 'Master/texmf-dist/doc/latex/tqft')
-rw-r--r--Master/texmf-dist/doc/latex/tqft/README (renamed from Master/texmf-dist/doc/latex/tqft/README.txt)4
-rw-r--r--Master/texmf-dist/doc/latex/tqft/tqft_doc.pdfbin317362 -> 428822 bytes
-rw-r--r--Master/texmf-dist/doc/latex/tqft/tqft_doc.tex615
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diff --git a/Master/texmf-dist/doc/latex/tqft/README.txt b/Master/texmf-dist/doc/latex/tqft/README
index c18773e7300..365b108946b 100644
--- a/Master/texmf-dist/doc/latex/tqft/README.txt
+++ b/Master/texmf-dist/doc/latex/tqft/README
@@ -1,9 +1,9 @@
----------------------------------------------------------------
-tqft --- a style file for drawing TQFT diagrams with TikZ/PGF
+tqft --- a library for drawing TQFT diagrams with TikZ/PGF
E-mail: stacey@math.ntnu.no
Released under the LaTeX Project Public License v1.3c or later
See http://www.latex-project.org/lppl.txt
----------------------------------------------------------------
-This package defines some node shapes useful for drawing TQFT diagrams with TikZ/PGF.
+This package defines some shapes useful for drawing TQFT diagrams with TikZ/PGF.
diff --git a/Master/texmf-dist/doc/latex/tqft/tqft_doc.pdf b/Master/texmf-dist/doc/latex/tqft/tqft_doc.pdf
index cdb00af732c..3c3eebfb290 100644
--- a/Master/texmf-dist/doc/latex/tqft/tqft_doc.pdf
+++ b/Master/texmf-dist/doc/latex/tqft/tqft_doc.pdf
Binary files differ
diff --git a/Master/texmf-dist/doc/latex/tqft/tqft_doc.tex b/Master/texmf-dist/doc/latex/tqft/tqft_doc.tex
index 35ab6e36180..e463c3027ef 100644
--- a/Master/texmf-dist/doc/latex/tqft/tqft_doc.tex
+++ b/Master/texmf-dist/doc/latex/tqft/tqft_doc.tex
@@ -5,6 +5,7 @@
\usepackage[svgnames]{xcolor}
\usepackage{tikz}
\usepackage{tqft}
+\usetikzlibrary{tqft}
\usepackage[numbered]{hypdoc}
\definecolor{lstbgcolor}{rgb}{0.9,0.9,0.9}
@@ -35,32 +36,48 @@
\providecommand*{\url}{\texttt}
\GetFileInfo{tqft.sty}
-\title{The \textsf{tqft} Package: Documentation}
+
+\title{The \textsf{tqft} Ti\emph{k}Z Library: Documentation}
\author{Andrew Stacey \\ \url{stacey@math.ntnu.no}}
-\date{\fileversion~from \filedate}
\begin{document}
\maketitle
\begin{center}
-\begin{tikzpicture}[scale=.5,every tqft/.style={fill=DarkMagenta,draw,ultra thick},every node/.style={tqft cobordism,transform shape}]
- \node[
+\begin{tikzpicture}[
+ scale=.5,
+ every tqft/.style={
+ transform shape
+ },
+ tqft/cobordism/.style={
+ fill=DarkMagenta,
+ draw,
+ ultra thick},
+ ]
+ \pic[
+ name=a,
tqft,
incoming boundary components=0,
outgoing boundary components=3,
- ] (a) {};
- \node[
+ ];
+ \pic[
+ name=b,
+ at=(a-outgoing boundary 2),
tqft cylinder,
anchor=incoming boundary 1,
- ] at (a.outgoing boundary 2) (b) {};
- \node[
+ ];
+ \pic[
+ at=(a-outgoing boundary 3),
+ name=c,
tqft,
incoming boundary components=0,
outgoing boundary components=2,
- anchor=outgoing boundary 1,
- ] at (a outgoing 3.next) (c) {};
- \node[
+ anchor={(0,1)},
+ ];
+ \pic[
+ at=(c-outgoing boundary 1),
+ name=d,
tqft,
incoming boundary components=3,
outgoing boundary components=1,
@@ -68,59 +85,581 @@
anchor=incoming boundary 1,
boundary separation=1cm,
cobordism height=2.5cm,
- ] at (c.outgoing boundary 1) (d) {};
- \node[
+ ];
+ \pic[
+ at=(c-outgoing boundary 2),
+ name=e,
tqft,
- flow=east,
+ rotate=90,
incoming boundary components=0,
outgoing boundary components=3,
- ] at (c outgoing 2.next) (e) {};
- \node[
+ anchor={(2,-.5)}
+ ];
+ \pic[
+ at=(e-outgoing boundary 3),
+ name=f,
tqft cylinder,
- flow=east,
+ rotate=90,
anchor=incoming boundary 1,
- ] at (e.outgoing boundary 1) (f) {};
- \node[
+ ];
+ \pic[
+ at=(e-outgoing boundary 2),
+ name=g,
tqft cylinder,
- flow=east,
+ rotate=90,
anchor=incoming boundary 1,
- ] at (e.outgoing boundary 2) (g) {};
- \node[
+ ];
+ \pic[
+ at=(g-outgoing boundary 1),
+ name=h,
tqft,
+ anchor={(0,1)},
incoming boundary components=0,
outgoing boundary components=3,
- anchor=outgoing boundary 1,
- ] at (g outgoing 1.below) (h) {};
- \node[
+ ];
+ \pic[
+ at=(h-outgoing boundary 2),
+ name=i,
tqft cylinder,
anchor=incoming boundary 1,
- ] at (h.outgoing boundary 2) (i) {};
+ ];
\end{tikzpicture}
\end{center}
\section{Introduction}
-This package defines some TikZ/PGF node shapes that can be used to construct the diagrams common in Topological Quantum Field Theory (TQFT).
+This package defines some Ti\emph{k}Z/PGF picture shapes that can be used to construct the diagrams common in Topological Quantum Field Theory (TQFT).
An example follows:
\begin{example}
-\begin{tikzpicture}
-\node[draw,tqft/pair of pants] (a) {};
-\node[draw,tqft/cylinder to next,anchor=incoming boundary 1] (c) at (a.outgoing boundary 1) {};
-\node[draw,tqft/reverse pair of pants, anchor=incoming boundary 1] at (a.outgoing boundary 2) (b) {};
+\begin{tikzpicture}[tqft/cobordism/.style={draw}]
+\pic[tqft/pair of pants,name=a];
+\pic[tqft/cylinder to next,anchor=incoming boundary 1,name=c,at=(a-outgoing boundary 1)];
+\pic[tqft/reverse pair of pants, anchor=incoming boundary 1,at=(a-outgoing boundary 2)];
\end{tikzpicture}
\end{example}
+\tableofcontents
+
+\section{History}
+
+This is the second version of the TQFT package.
+The first version used nodes to draw the shapes.
+However, with the advent of Ti\emph{k}Z3.0 came the ability to define subdrawings called \Verb+pic+s which were a bit like nodes but were geared more towards drawings than containers for text.
+This seems a much more suitable mechanism for drawing these diagrams and so the package has been rewritten to make use of this new facility.
+
+The second version is designed to be similar to the first, but with some improvements.
+The original version was distributed as a \Verb+.sty+ file and so is loaded using \Verb+\usepackage{tqft}+.
+The newer version is a Ti\emph{k}Z library and so is loaded using \Verb+\usetikzlibrary{tqft}+.
+This makes it possible to use both in the same document.
+This is not recommended, but an attempt has been made to make it possible to switch between the two methods.
+This hasn't been extensively tested so use with caution.
+To make the switch use the key \Verb+/tikz/tqft/use nodes=<true|false>+.
+By default, the one loaded last should be in effect at the start of the document.
+
+\section{Keys}
+
Before giving any details, a word is in order about the keys involved in this package.
There are many options and keys that can be set via the \Verb+\pgfkeys+ system (which is used for setting options in Ti\emph{k}Z).
Such keys live in a ``directory'' but often that can be omitted.
For example, in the Ti\emph{k}Z command \Verb+\draw[red] (0,0) -- (1,0);+ the key \Verb+red+ is actually in the ``directory'' \Verb+/tikz+ but it is not necessary to specify that as it is assumed.
Defining a ``directory'' helps separate keys and ensure that there is no conflict.
-The keys in this package are (mostly) defined in the directory \Verb+/pgf/tqft+ but the very first call to a \Verb+tqft+ key will (in general) set the ``current directory'' to \Verb+/pgf/tqft+ and so all subsequent keys do not need prefixing.
+The keys in this library are (mostly) defined in the directories \Verb+/tikz/tqft+ (the newer version) and \Verb+/pgf/tqft+ (the old version).
+
+Invoking \Verb+/tikz/tqft+ itself sets the ``current directory'' to whichever directory is right for the current version in force and so all subsequent keys do not need prefixing.
Moreover, any unknown keys are passed on to the \Verb+/tikz+ directory so there is (or should be!) no harm in mixing \Verb+tqft+ specific keys with ordinary Ti\emph{k}Z keys.
Some examples take advantage of this switch so when copying and modifying examples from this document, it is important to remember that the first \Verb+tqft+ specific key needs an explicit \Verb+tqft/+ prefix.
-More detailed information is in the section on styling.
-\section{The Shapes}
+
+\section{Version 2.0}
+
+\subsection{The Shapes}
+
+There is only one picture shape: \Verb+cobordism+.
+This is a cobordism between a number of incoming circles and a number of outgoing circles, where the numbers of boundary components can be specified as options to the shape.
+There are certain common shapes that are predefined as aliases to the main shape with specified boundaries.
+The list of predefined shapes follows.
+The names are all in the \Verb+tqft+ family, but an alias is made so that \Verb+tqft <shape>+ will work without any further qualification.
+
+\begin{enumerate}
+\item \Verb+pair of pants+
+
+\begin{tikzpicture}
+\pic[draw,tqft/pair of pants];
+\end{tikzpicture}
+
+\item \Verb+reverse pair of pants+
+
+\begin{tikzpicture}
+\pic[draw,tqft/reverse pair of pants];
+\end{tikzpicture}
+
+\item \Verb+cylinder to prior+
+
+This is a cylinder that has been skewed to one side, thus following the same path as the \Verb+pair of pants+ cobordism but with only one outgoing boundary component.
+The name \Verb+to prior+ is because it goes towards the lower-numbered component on the \Verb+pair of pants+.
+
+\begin{tikzpicture}
+\pic[draw,tqft/cylinder to prior];
+\end{tikzpicture}
+
+\item \Verb+cylinder to next+
+
+This is a cylinder that has been skewed to one side, thus following the same path as the \Verb+pair of pants+ cobordism but with only one outgoing boundary component.
+The name \Verb+to next+ is because it goes towards the higher-numbered component on the \Verb+pair of pants+.
+
+\begin{tikzpicture}
+\pic[draw,tqft/cylinder to next];
+\end{tikzpicture}
+
+\item \Verb+cylinder+
+
+This is a straight cylinder.
+
+\begin{tikzpicture}
+\pic[draw,tqft/cylinder];
+\end{tikzpicture}
+
+\item \Verb+cap+
+
+This is a cap.
+
+\begin{tikzpicture}
+\pic[draw,tqft/cap];
+\end{tikzpicture}
+
+\item \Verb+cup+
+
+This is a cup (an upside-down cap).
+
+\begin{tikzpicture}
+\pic[draw,tqft/cup];
+\end{tikzpicture}
+
+\end{enumerate}
+
+The general shape is controlled by the following keys:
+
+\begin{itemize}
+\item \DescribeMacro{view from} To get a simulated 3D effect, the cobordism is drawn as if viewed from a slight angle.
+The value of this key determines whether the cobordism is viewed from the direction of the incoming boundary components or the outgoing ones.
+This key can take the values \Verb+incoming+ and \Verb+outgoing+.
+The default is \Verb+outgoing+.
+\item \DescribeMacro{cobordism height} This is the height of the cobordism (``height'' interpreted in its own internal coordinate system).
+With no offset (q.v.), this would be the distance between the centres of the first incoming and first outgoing boundary components.
+
+\item \DescribeMacro{boundary separation} This is the distance between the centres of the boundary components of the same type.
+
+\item \DescribeMacro{circle x radius} This is the half-width of the boundary circles.
+
+\item \DescribeMacro{circle y radius} This is the half-depth of the boundary circles (``depth'' since, in the internal coordinate system, this corresponds to the \(z\)-axis out of the page).
+
+\item \DescribeMacro{incoming boundary components} The number of incoming boundary components (can be zero).
+
+\item \DescribeMacro{outgoing boundary components} The number of outgoing boundary components (can be zero).
+
+\item \DescribeMacro{offset} This offsets the first outgoing boundary component horizontally relative to the first incoming boundary component.
+It is a dimensionless number (not necessarily an integer) and is interpreted so that a value of \(1\) aligns the first outgoing boundary component with the second incoming boundary component.
+
+\item \DescribeMacro{genus} This defines the number of holes in the shape.
+These are spread out in a horizontal line in the middle of the shape.
+\end{itemize}
+
+\subsection{Styling}
+
+There are various options for styling the diagrams.
+To understand how they work, it is important to know the order in which a cobordism is drawn and how many pieces it decomposes into.
+This is the following list, with the corresponding keys:
+
+\begin{enumerate}
+\item The boundary circles are drawn.
+These are actually elliptical nodes (and thus can be individually styled).
+Applicable styles:
+
+\begin{itemize}
+\item \Verb+every boundary component+,
+\item \Verb+every incoming boundary component+,\\
+or \Verb+every outgoing boundary component+,
+\item \Verb+incoming boundary component <n>+,\\
+or \Verb+outgoing boundary component <n>+
+\end{itemize}
+
+\item The lower edges of the boundary circles are redrawn.
+These are individual arcs.
+
+\begin{itemize}
+\item \Verb+every lower boundary component+,
+\item \Verb+every incoming lower boundary component+,\\or \Verb+every outgoing lower boundary component+,
+\item \Verb+incoming lower boundary component <n>+,\\or \Verb+outgoing lower boundary component <n>+
+\end{itemize}
+
+\item The full edge of the cobordism is drawn.
+This is a closed path so can be sensibly filled.
+It is clipped against a path defined by the genus of the cobordism which results in holes if it is filled (or shaded or anything else that goes in to the interior).
+
+\begin{itemize}
+\item \Verb+cobordism+,
+\item also, any actions specified on the \Verb+pic+ are applied here (specifically, the \Verb+pic actions+ key is invoked; see the Ti\emph{k}Z manual for full details on this),
+\item \Verb+cobordism outer path+.
+\end{itemize}
+
+\item Any holes specified by the genus are now drawn.
+These are styled to give the 3D impression, and this follows the direction specified by the \Verb+view from+ key.
+The paths are split so that each can be individually styled.
+
+\begin{itemize}
+\item \Verb+cobordism+, this style is applied because the curves defined by the genus can be thought of as part of the edge of the cobordism shape.
+\item \Verb+pic actions+, for the same reason as above.
+
+However, following this key then \Verb+fill=none,shade=none+ is issued.
+This is because even if the main shape is filled or shaded, the paths drawing the holes should almost certainly not be.
+\item \Verb+cobordism edge+, the same logic applies to the edge path (q.v.).
+\item \Verb+genus style+,
+\item \Verb+genus upper+ or \Verb+genus lower+,
+\item \Verb+hole <n>+,
+\item \Verb+hole <n> upper+ or \Verb+hole <n> lower+.
+\end{itemize}
+
+\item The non-boundary edge of the cobordism is redrawn.
+This is split in to pieces to allow for individual styling.
+
+\begin{itemize}
+\item \Verb+cobordism edge+,
+\item \Verb+cobordism outer edge+,
+\item \Verb+between incoming+, or \Verb+between outgoing+, or \Verb+between incoming and outgoing+.
+The latter is for the two sides, but note that if the cobordism has no incoming or no outgoing components then it also applies to the ``over the top'' edge.
+\item \Verb+<anchor>+, where the \Verb+<anchor>+ is the name of the anchor that lies on the midpoint of the curve, so it will be one of:
+%
+\begin{itemize}
+\item \Verb=between incoming <n> and <n+1>=,
+\item \Verb=between outgoing <n> and <n+1>=,
+\item \Verb+between first incoming and first outgoing+,
+\item \Verb+between first incoming and first outgoing+,
+\item \Verb+between last incoming and last outgoing+,
+\item \Verb+between first and last incoming+,
+\item \Verb+between first and last outgoing+.
+\end{itemize}
+\end{itemize}
+
+\item The upper edges of the boundary circles are redrawn.
+These are arcs.
+
+\begin{itemize}
+\item \Verb+every upper boundary component+,
+\item \Verb+every incoming upper boundary component+,\\or \Verb+every outgoing upper boundary component+,
+\item \Verb+incoming upper boundary component <n>+,\\or \Verb+outgoing upper boundary component <n>+
+\end{itemize}
+\end{enumerate}
+
+The fact that there are so many is to allow different style to be applied to different pieces and to give as much control as possible, whilst still making it fairly straightforward to draw a simple cobordism.
+The duplication of paths is to allow certain composite pieces to be \emph{filled}.
+Here is a progressively built up cobordism.
+
+\begin{example}
+\begin{tikzpicture}[tqft/view from=incoming]
+\begin{scope}[tqft/every boundary component/.style={fill=green,fill opacity=1}]
+\pic[tqft/cylinder,at={(1,0)}];
+\begin{scope}[tqft/every lower boundary component/.style={draw=purple,thick}]
+\pic[tqft/cylinder,at={(2,0)}];
+\begin{scope}[tqft/cobordism/.style={fill=yellow,fill opacity=.7}]
+\pic[tqft/cylinder,at={(3,0)}];
+\begin{scope}[tqft/cobordism edge/.style={draw,thick,blue}]
+\pic[tqft/cylinder,fill=yellow,fill opacity=.7,at={(4,0)}];
+\begin{scope}[tqft/every upper boundary component/.style={draw,thick,orange}]
+\pic[tqft/cylinder,fill=yellow,fill opacity=.7,at={(5,0)}];
+\end{scope}
+\end{scope}
+\end{scope}
+\end{scope}
+\end{scope}
+\end{tikzpicture}
+\end{example}
+
+Here's an example with lots of styling.
+
+\begin{example}
+\begin{tikzpicture}
+\pic[
+ tqft,
+ incoming boundary components=3,
+ outgoing boundary components=3,
+ offset=1,
+ genus=3,
+ hole 3/.style={ultra thick, purple,solid},
+ genus lower/.style={dashed},
+ fill=red!50,
+ cobordism edge/.style={draw},
+ between incoming and outgoing/.style={dotted},
+ between outgoing 2 and 3/.style={ultra thick},
+];
+\end{tikzpicture}
+\end{example}
+
+\subsection{Anchors}
+
+The cobordism is a \Verb+pic+ so does not have any native anchors.
+Nevertheless, a multitude of coordinates are defined that simulate the anchors associated with nodes.
+There is also support for specifying the shape to be located relative to a particular anchor.
+
+The \Verb+\pic+ should be named via the \Verb+name=<prefix>+ key, whereupon the anchors are prefixed by this value.
+The pseudo-anchors defined have the naming convention \Verb+<prefix>-<anchor name>+ (at the moment, it doesn't check to see if the \Verb+name+ key has been specified so if it isn't then the pseudo-anchors are still defined but with an empty prefix).
+They are:
+%
+\begin{itemize}
+\item \Verb+incoming boundary <n>+, these are in fact elliptical nodes and so also define actual anchors.
+\item \Verb+incoming boundary+ is an alias for \Verb+incoming boundary 1+.
+\item \Verb+outgoing boundary <n>+, same.
+\item \Verb+outgoing boundary+ is an alias for \Verb+outgoing boundary 1+.
+\item \Verb=between incoming <n> and <n+1>=, this lies on the midpoint of the curve between successive boundary components.
+\item \Verb=between outgoing <n> and <n+1>=, this lies on the midpoint of the curve between successive boundary components.
+\item \Verb=between first incoming and first outgoing= is on the edge between the first incoming and first outgoing boundary components; note that this is only defined if there are both incoming and outgoing boundary components.
+\item \Verb=between last incoming and last outgoing= is on the edge between the last incoming and last outgoing boundary components; note that this is only defined if there are both incoming and outgoing boundary components.
+\item \Verb=between first and last incoming=; this is only defined if there are no outgoing components.
+\item \Verb=between first and last outgoing=; this is only defined if there are no incoming components.
+\item \Verb=hole <n>=; if the genus is non-zero, this points to the centre of the \(n\)th hole.
+\end{itemize}
+
+To place the shape relative to an anchor, use the \Verb+tqft/anchor+ key.
+The argument should be just the name of the anchor without the leading \Verb+<prefix>-+.
+The \Verb+anchor+ key can also take another type of argument.
+If its argument is of the form \Verb+(x,y)+ then this is taken as a pseudo-coordinate\footnote{Note that due to the presence of the comma, this type of argument must be protected by braces.}.
+It is interpreted as being \(x\) boundary components across and \(y\) times the cobordism height down.
+However, if an \Verb+offset+ is specified then the resulting \(x\) value is shifted so that if \(y < 0\) then \((1,y)\) is in line with the first incoming boundary component and if \(y > 1\) then \((1,y)\) is in line with the first outgoing boundary component.
+If \(0 < y < 1\) then \((1,y)\) linearly interpolates between the first incoming and first outgoing boundary components.
+Thus \((1,0)\) is the first incoming boundary component, \((1,1)\) the first outgoing boundary component, \((0,0)\) is one unit to the left of the first incoming, and \((1,2)\) one unit below the first outgoing.
+Note that the picture is shifted to put this point at the current coordinate.
+
+\begin{example}
+\begin{tikzpicture}
+\pic[tqft, incoming boundary components=2,outgoing boundary components=4,offset=-1,draw,name=a];
+\foreach \anchor/\placement in
+{
+between first incoming and first outgoing/left,
+between last incoming and last outgoing/right,
+between outgoing 2 and 3/above,
+incoming boundary 1/above left,
+incoming boundary 2/above right,
+outgoing boundary 1/below left,
+outgoing boundary 4/below right}
+\draw[overlay,shift=(a-\anchor)] plot[mark=x] coordinates{(0,0)} node[\placement] {\scriptsize\texttt{(a-\anchor)}};
+\path (a-incoming boundary) +(0,.5) (a-outgoing boundary) +(0,-1);
+\end{tikzpicture}
+\end{example}
+
+\subsection{Notes}
+
+\begin{enumerate}
+\item Like \Verb+node+s, \Verb+pic+s need the \Verb+transform shape+ key to be set to take note of external transformations (other than shifts).
+\item There is an additional \Verb+every tqft+ key which is run when the \Verb+tqft+ key is invoked (which might be via some other key).
+This is better placed than the \Verb+every pic+ key since that applies to a surrounding scope rather than to the \Verb+pic+ itself.
+\item If the \Verb+tqft+ key is invoked, either implicitly or explicitly, then the \Verb+pic type+ is set to \Verb+cobordism+.
+This has the side effect that the invoking syntax has to be completely set by keys; so the \Verb+pic (<name>) at (<coord>) {<type>}+ cannot be used.
+Rather, the \Verb+name+ and \Verb+at+ have to be specified by keys and the \Verb+type+ omitted.
+
+\item If upgrading from the previous version of TQFT, as well as shifting from a \Verb+node+ to a \Verb+pic+, the following changes have been made in the implementation:
+
+\begin{itemize}
+\item The \Verb+flow+ key has not made it across to the new version.
+Use \Verb+transform shape+ and apply your own transformation.
+
+\item The \Verb+circle width+ and \Verb+circle depth+ are now \Verb+circle x radius+ and \Verb+circle y radius+ (the old names weren't correct anyway).
+
+\item The bounding box is a little better, particularly for cobordisms with only one type of boundary component.
+\end{itemize}
+\end{enumerate}
+
+\subsection{More Examples}
+
+\begin{example}
+\begin{tikzpicture}[tqft/cobordism height=1.5cm,tqft/boundary separation=1.5cm]
+\foreach \coord/\style in {
+{(0,0)}/{tqft/view from=outgoing,fill},
+{(5,0)}/{tqft/view from=incoming,draw},
+{(0,-8)}/{fill=orange,fill opacity=.5,tqft/every lower boundary component/.style={draw,blue,ultra thin,dashed},tqft/every upper boundary component/.style={draw,green},tqft/cobordism edge/.style={draw,purple},tqft/every boundary component/.style={fill=yellow}},
+{(5,-8)}/{fill=orange,fill opacity=.5,tqft/cobordism edge/.style={draw,purple},tqft/every boundary component/.style={fill=yellow,draw=green}}
+} {
+\begin{scope}
+\edef\styleit{\noexpand\tikzset{every tqft/.style={\style}}}
+\styleit
+\pic[tqft/cap,name=h,at=\coord];
+\pic[tqft/pair of pants,anchor=incoming boundary 1,name=a,at=(h-outgoing boundary 1)];
+\pic[tqft/cylinder to next,anchor={(0,1)},name=d,at=(a-outgoing boundary 2)];
+\pic[tqft/reverse pair of pants,anchor=incoming boundary 1,name=b,at=(a-outgoing boundary 2)];
+\pic[tqft/cylinder to prior,anchor=incoming boundary 1,name=c,at=(b-outgoing boundary 1)];
+\pic[tqft/cylinder,anchor=incoming boundary 1,name=e,at=(a-outgoing boundary 1)];
+\pic[tqft/cylinder,anchor=incoming boundary 1,name=f,at=(e-outgoing boundary 1)];
+\pic[tqft/reverse pair of pants,anchor=incoming boundary 1,name=g,at=(f-outgoing boundary 1)];
+\pic[tqft/cup,anchor=incoming boundary 1,name=i,at=(g-outgoing boundary 1)];
+\end{scope}
+}
+\end{tikzpicture}
+\end{example}
+
+\begin{example}
+\begin{tikzpicture}[every tqft/.append style={transform shape}]
+\foreach \ang in {0,90,180,270} {
+\begin{scope}[rotate=\ang]
+\pic[draw,tqft/pair of pants,name=a,at={(3,3)}];
+\pic[draw,tqft/cap,anchor=outgoing boundary 1,at=(a-incoming boundary 1)];
+\pic[fill,tqft/cup,anchor=incoming boundary 1,at=(a-outgoing boundary 1)];
+\pic[draw,tqft/cup,anchor=incoming boundary 1,at=(a-outgoing boundary 2)];
+\end{scope}
+}
+\end{tikzpicture}
+\end{example}
+
+%\begin{example}
+\begin{tikzpicture}
+\pic[
+ tqft,
+ incoming boundary components=2,
+ outgoing boundary components=2,
+ genus=2,
+ draw,
+ name=a
+];
+\pic[
+ tqft,
+ incoming boundary components=2,
+ outgoing boundary components=1,
+ draw,
+ at=(a-outgoing boundary 1),
+ offset=.5,
+ cobordism height=1cm,
+ name=b
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=3,
+ draw,
+ at=(b-outgoing boundary 1),
+ offset=-1,
+ name=c
+];
+\pic[tqft,
+ incoming boundary components=2,
+ outgoing boundary components=1,
+ draw,
+ at=(c-outgoing boundary 1),
+ anchor=incoming boundary 2,
+ name=d,
+ boundary separation=1.6cm,
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(c-outgoing boundary 3),
+ offset=.5,
+ name=e,
+ every outgoing lower boundary component/.style={draw}
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(c-outgoing boundary 2),
+ name=f
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=2,
+ draw,
+ at=(f-outgoing boundary),
+ name=g,
+ offset=-.5,
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(g-outgoing boundary 1),
+ name=h,
+ offset=-.25,
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(g-outgoing boundary 2),
+ name=i,
+ offset=.25,
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(h-outgoing boundary),
+ name=j,
+ every outgoing lower boundary component/.style={draw}
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(i-outgoing boundary),
+ name=k,
+ every outgoing lower boundary component/.style={draw}
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(d-outgoing boundary),
+ name=l
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=0,
+ draw,
+ at=(l-outgoing boundary),
+ name=m
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(d-incoming boundary),
+ anchor=outgoing boundary,
+ name=n
+];
+\pic[tqft,
+ incoming boundary components=1,
+ outgoing boundary components=1,
+ draw,
+ at=(n-incoming boundary),
+ anchor=outgoing boundary,
+ name=o
+];
+\pic[tqft,
+ incoming boundary components=3,
+ outgoing boundary components=3,
+ draw,
+ at=(o-incoming boundary),
+ anchor={(2,1)},
+ name=p,
+ boundary separation=1.25cm,
+ outgoing lower boundary component 1/.style={draw},
+ outgoing lower boundary component 3/.style={draw}
+];
+\pic[tqft,
+ incoming boundary components=5,
+ outgoing boundary components=5,
+ genus=3,
+ at=(k-outgoing boundary),
+ anchor={(4,-1)},
+ draw,
+ name=q,
+ every outgoing lower boundary component/.style={draw}
+];
+\path (q-incoming boundary 3) ++(0,1) node {\Huge \(=\)};
+\end{tikzpicture}
+%\end{example}
+
+\section{Version 1.0}
+
+\tikzset{tqft/use nodes=true}
+
+\subsection{The Node Shapes}
There are only two shapes, \Verb+tqft cobordism+ and \Verb+tqft boundary circle+.
The first, which is the main shape, is a cobordism between a number of incoming circles and a number of outgoing circles, where the numbers of boundary components can be specified as options to the shape.
@@ -217,7 +756,7 @@ With no offset (q.v.), this would be the distance between the centres of the fir
It is a dimensionless number (not necessarily an integer) and is interpreted so that a value of \(1\) aligns the first outgoing boundary component with the second incoming boundary component.
\end{itemize}
-\section{Styling}
+\subsection{Styling}
There are various options for styling the diagrams.
To understand how they work, it is important to know the order in which a cobordism is drawn and how many pieces it decomposes into.
@@ -264,7 +803,7 @@ Here is a progressively built up cobordism.
\end{tikzpicture}
\end{example}
-\section{Anchors}
+\subsection{Anchors}
As with all PGF node shapes, there are certain anchors defined by the \Verb+tqft+ shape.
These are the \Verb+center+ (and \Verb+centre+) anchors and the \Verb+incoming boundary n+, \Verb+outgoing boundary n+ anchors.
@@ -333,7 +872,7 @@ below/below,
\end{tikzpicture}
\end{example}
-\section{Improvements}
+\subsection{Improvements}
Here are some ideas for extending this, and some minor ``bugs''.
@@ -349,7 +888,7 @@ This shouldn't happen, or should happen by design not by accident.
\item Add the ability to apply different styles to the incoming and outgoing components.
\end{enumerate}
-\section{More Examples}
+\subsection{More Examples}
\begin{example}
\begin{tikzpicture}[tqft/cobordism height=1.5cm,tqft/boundary separation=1.5cm]