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%!TEX root = ../blob1.tex
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\section{TQFTs via fields}
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%\label{sec:definitions}
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In this section we review the construction of TQFTs from ``topological fields".
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For more details see xxxx.
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We only consider compact manifolds, so if $Y \sub X$ is a closed codimension 0
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submanifold of $X$, then $X \setmin Y$ implicitly means the closure
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$\overline{X \setmin Y}$.
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\subsection{Systems of fields}
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\label{sec:fields}
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Let $\cM_k$ denote the category with objects 
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unoriented PL manifolds of dimension
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$k$ and morphisms homeomorphisms.
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(We could equally well work with a different category of manifolds ---
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oriented, topological, smooth, spin, etc. --- but for definiteness we
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will stick with unoriented PL.)
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%Fix a top dimension $n$, and a symmetric monoidal category $\cS$ whose objects are sets. While reading the definition, you should just think about the case $\cS = \Set$ with cartesian product, until you reach the discussion of a \emph{linear system of fields} later in this section, where $\cS = \Vect$, and \S \ref{sec:homological-fields}, where $\cS = \Kom$.
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A $n$-dimensional {\it system of fields} in $\cS$
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is a collection of functors $\cC_k : \cM_k \to \Set$ for $0 \leq k \leq n$
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together with some additional data and satisfying some additional conditions, all specified below.
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\nn{refer somewhere to my TQFT notes \cite{kw:tqft}}
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Before finishing the definition of fields, we give two motivating examples
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(actually, families of examples) of systems of fields.
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The first examples: Fix a target space $B$, and let $\cC(X)$ be the set of continuous maps
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from X to $B$.
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The second examples: Fix an $n$-category $C$, and let $\cC(X)$ be 
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the set of sub-cell-complexes of $X$ with codimension-$j$ cells labeled by
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$j$-morphisms of $C$.
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One can think of such sub-cell-complexes as dual to pasting diagrams for $C$.
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This is described in more detail below.
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Now for the rest of the definition of system of fields.
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\begin{enumerate}
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\item There are boundary restriction maps $\cC_k(X) \to \cC_{k-1}(\bd X)$, 
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and these maps are a natural
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transformation between the functors $\cC_k$ and $\cC_{k-1}\circ\bd$.
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For $c \in \cC_{k-1}(\bd X)$, we will denote by $\cC_k(X; c)$ the subset of 
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$\cC(X)$ which restricts to $c$.
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In this context, we will call $c$ a boundary condition.
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\item The subset $\cC_n(X;c)$ of top fields with a given boundary condition is an object in our symmetric monoidal category $\cS$. (This condition is of course trivial when $\cS = \Set$.) If the objects are sets with extra structure (e.g. $\cS = \Vect$ or $\Kom$), then this extra structure is considered part of the definition of $\cC_n$. Any maps mentioned below between top level fields must be morphisms in $\cS$.
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\item $\cC_k$ is compatible with the symmetric monoidal
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structures on $\cM_k$, $\Set$ and $\cS$: $\cC_k(X \du W) \cong \cC_k(X)\times \cC_k(W)$,
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compatibly with homeomorphisms, restriction to boundary, and orientation reversal.
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We will call the projections $\cC(X_1 \du X_2) \to \cC(X_i)$
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restriction maps.
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\item Gluing without corners.
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Let $\bd X = Y \du -Y \du W$, where $Y$ and $W$ are closed $k{-}1$-manifolds.
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Let $X\sgl$ denote $X$ glued to itself along $\pm Y$.
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Using the boundary restriction, disjoint union, and (in one case) orientation reversal
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maps, we get two maps $\cC_k(X) \to \cC(Y)$, corresponding to the two
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copies of $Y$ in $\bd X$.
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Let $\Eq_Y(\cC_k(X))$ denote the equalizer of these two maps.
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Then (here's the axiom/definition part) there is an injective ``gluing" map
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\[
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	\Eq_Y(\cC_k(X)) \hookrightarrow \cC_k(X\sgl) ,
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\]
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and this gluing map is compatible with all of the above structure (actions
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of homeomorphisms, boundary restrictions, orientation reversal, disjoint union).
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Furthermore, up to homeomorphisms of $X\sgl$ isotopic to the identity,
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the gluing map is surjective.
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From the point of view of $X\sgl$ and the image $Y \subset X\sgl$ of the 
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gluing surface, we say that fields in the image of the gluing map
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are transverse to $Y$ or splittable along $Y$.
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\item Gluing with corners.
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Let $\bd X = Y \cup -Y \cup W$, where $\pm Y$ and $W$ might intersect along their boundaries.
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Let $X\sgl$ denote $X$ glued to itself along $\pm Y$.
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Note that $\bd X\sgl = W\sgl$, where $W\sgl$ denotes $W$ glued to itself
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(without corners) along two copies of $\bd Y$.
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Let $c\sgl \in \cC_{k-1}(W\sgl)$ be a be a splittable field on $W\sgl$ and let
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$c \in \cC_{k-1}(W)$ be the cut open version of $c\sgl$.
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Let $\cC^c_k(X)$ denote the subset of $\cC(X)$ which restricts to $c$ on $W$.
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(This restriction map uses the gluing without corners map above.)
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Using the boundary restriction, gluing without corners, and (in one case) orientation reversal
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maps, we get two maps $\cC^c_k(X) \to \cC(Y)$, corresponding to the two
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copies of $Y$ in $\bd X$.
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Let $\Eq^c_Y(\cC_k(X))$ denote the equalizer of these two maps.
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Then (here's the axiom/definition part) there is an injective ``gluing" map
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\[
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	\Eq^c_Y(\cC_k(X)) \hookrightarrow \cC_k(X\sgl, c\sgl) ,
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\]
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and this gluing map is compatible with all of the above structure (actions
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of homeomorphisms, boundary restrictions, orientation reversal, disjoint union).
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Furthermore, up to homeomorphisms of $X\sgl$ isotopic to the identity,
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the gluing map is surjective.
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From the point of view of $X\sgl$ and the image $Y \subset X\sgl$ of the 
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gluing surface, we say that fields in the image of the gluing map
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are transverse to $Y$ or splittable along $Y$.
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\item There are maps $\cC_{k-1}(Y) \to \cC_k(Y \times I)$, denoted
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$c \mapsto c\times I$.
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These maps comprise a natural transformation of functors, and commute appropriately
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with all the structure maps above (disjoint union, boundary restriction, etc.).
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Furthermore, if $f: Y\times I \to Y\times I$ is a fiber-preserving homeomorphism
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covering $\bar{f}:Y\to Y$, then $f(c\times I) = \bar{f}(c)\times I$.
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\end{enumerate}
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\nn{need to introduce two notations for glued fields --- $x\bullet y$ and $x\sgl$}
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\bigskip
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Using the functoriality and $\bullet\times I$ properties above, together
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with boundary collar homeomorphisms of manifolds, we can define the notion of 
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{\it extended isotopy}.
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Let $M$ be an $n$-manifold and $Y \subset \bd M$ be a codimension zero submanifold
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of $\bd M$.
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Let $x \in \cC(M)$ be a field on $M$ and such that $\bd x$ is splittable along $\bd Y$.
100
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Let $c$ be $x$ restricted to $Y$.
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Let $M \cup (Y\times I)$ denote $M$ glued to $Y\times I$ along $Y$.
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Then we have the glued field $x \bullet (c\times I)$ on $M \cup (Y\times I)$.
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Let $f: M \cup (Y\times I) \to M$ be a collaring homeomorphism.
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Then we say that $x$ is {\it extended isotopic} to $f(x \bullet (c\times I))$.
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More generally, we define extended isotopy to be the equivalence relation on fields
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on $M$ generated by isotopy plus all instance of the above construction
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(for all appropriate $Y$ and $x$).
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\nn{should also say something about pseudo-isotopy}
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\nn{remark that if top dimensional fields are not already linear
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then we will soon linearize them(?)}
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We now describe in more detail systems of fields coming from sub-cell-complexes labeled
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by $n$-category morphisms.
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Given an $n$-category $C$ with the right sort of duality
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(e.g. pivotal 2-category, 1-category with duals, star 1-category, disklike $n$-category),
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we can construct a system of fields as follows.
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Roughly speaking, $\cC(X)$ will the set of all embedded cell complexes in $X$
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with codimension $i$ cells labeled by $i$-morphisms of $C$.
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We'll spell this out for $n=1,2$ and then describe the general case.
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If $X$ has boundary, we require that the cell decompositions are in general
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position with respect to the boundary --- the boundary intersects each cell
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transversely, so cells meeting the boundary are mere half-cells.
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Put another way, the cell decompositions we consider are dual to standard cell
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decompositions of $X$.
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We will always assume that our $n$-categories have linear $n$-morphisms.
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For $n=1$, a field on a 0-manifold $P$ is a labeling of each point of $P$ with
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an object (0-morphism) of the 1-category $C$.
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A field on a 1-manifold $S$ consists of
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\begin{itemize}
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    \item A cell decomposition of $S$ (equivalently, a finite collection
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of points in the interior of $S$);
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    \item a labeling of each 1-cell (and each half 1-cell adjacent to $\bd S$)
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by an object (0-morphism) of $C$;
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    \item a transverse orientation of each 0-cell, thought of as a choice of
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``domain" and ``range" for the two adjacent 1-cells; and
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    \item a labeling of each 0-cell by a morphism (1-morphism) of $C$, with
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domain and range determined by the transverse orientation and the labelings of the 1-cells.
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\end{itemize}
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If $C$ is an algebra (i.e. if $C$ has only one 0-morphism) we can ignore the labels
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of 1-cells, so a field on a 1-manifold $S$ is a finite collection of points in the
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interior of $S$, each transversely oriented and each labeled by an element (1-morphism)
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of the algebra.
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\medskip
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For $n=2$, fields are just the sort of pictures based on 2-categories (e.g.\ tensor categories)
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that are common in the literature.
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We describe these carefully here.
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A field on a 0-manifold $P$ is a labeling of each point of $P$ with
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an object of the 2-category $C$.
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A field of a 1-manifold is defined as in the $n=1$ case, using the 0- and 1-morphisms of $C$.
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A field on a 2-manifold $Y$ consists of
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\begin{itemize}
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    \item A cell decomposition of $Y$ (equivalently, a graph embedded in $Y$ such
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that each component of the complement is homeomorphic to a disk);
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    \item a labeling of each 2-cell (and each partial 2-cell adjacent to $\bd Y$)
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by a 0-morphism of $C$;
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    \item a transverse orientation of each 1-cell, thought of as a choice of
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``domain" and ``range" for the two adjacent 2-cells;
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    \item a labeling of each 1-cell by a 1-morphism of $C$, with
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domain and range determined by the transverse orientation of the 1-cell
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and the labelings of the 2-cells;
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    \item for each 0-cell, a homeomorphism of the boundary $R$ of a small neighborhood
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of the 0-cell to $S^1$ such that the intersections of the 1-cells with $R$ are not mapped
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to $\pm 1 \in S^1$; and
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    \item a labeling of each 0-cell by a 2-morphism of $C$, with domain and range
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determined by the labelings of the 1-cells and the parameterizations of the previous
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bullet.
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\end{itemize}
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\nn{need to say this better; don't try to fit everything into the bulleted list}
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For general $n$, a field on a $k$-manifold $X^k$ consists of
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\begin{itemize}
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    \item A cell decomposition of $X$;
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    \item an explicit general position homeomorphism from the link of each $j$-cell
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to the boundary of the standard $(k-j)$-dimensional bihedron; and
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    \item a labeling of each $j$-cell by a $(k-j)$-dimensional morphism of $C$, with
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domain and range determined by the labelings of the link of $j$-cell.
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\end{itemize}
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%\nn{next definition might need some work; I think linearity relations should
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%be treated differently (segregated) from other local relations, but I'm not sure
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%the next definition is the best way to do it}
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\medskip
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For top dimensional ($n$-dimensional) manifolds, we're actually interested
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in the linearized space of fields.
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By default, define $\lf(X) = \c[\cC(X)]$; that is, $\lf(X)$ is
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the vector space of finite
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linear combinations of fields on $X$.
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If $X$ has boundary, we of course fix a boundary condition: $\lf(X; a) = \c[\cC(X; a)]$.
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Thus the restriction (to boundary) maps are well defined because we never
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take linear combinations of fields with differing boundary conditions.
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In some cases we don't linearize the default way; instead we take the
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spaces $\lf(X; a)$ to be part of the data for the system of fields.
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In particular, for fields based on linear $n$-category pictures we linearize as follows.
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Define $\lf(X; a) = \c[\cC(X; a)]/K$, where $K$ is the space generated by
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obvious relations on 0-cell labels.
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More specifically, let $L$ be a cell decomposition of $X$
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and let $p$ be a 0-cell of $L$.
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Let $\alpha_c$ and $\alpha_d$ be two labelings of $L$ which are identical except that
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$\alpha_c$ labels $p$ by $c$ and $\alpha_d$ labels $p$ by $d$.
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Then the subspace $K$ is generated by things of the form
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$\lambda \alpha_c + \alpha_d - \alpha_{\lambda c + d}$, where we leave it to the reader
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to infer the meaning of $\alpha_{\lambda c + d}$.
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Note that we are still assuming that $n$-categories have linear spaces of $n$-morphisms.
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\nn{Maybe comment further: if there's a natural basis of morphisms, then no need;
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will do something similar below; in general, whenever a label lives in a linear
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space we do something like this; ? say something about tensor
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product of all the linear label spaces?  Yes:}
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For top dimensional ($n$-dimensional) manifolds, we linearize as follows.
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Define an ``almost-field" to be a field without labels on the 0-cells.
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(Recall that 0-cells are labeled by $n$-morphisms.)
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To each unlabeled 0-cell in an almost field there corresponds a (linear) $n$-morphism
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space determined by the labeling of the link of the 0-cell.
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(If the 0-cell were labeled, the label would live in this space.)
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We associate to each almost-labeling the tensor product of these spaces (one for each 0-cell).
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We now define $\lf(X; a)$ to be the direct sum over all almost labelings of the
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above tensor products.
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\subsection{Local relations}
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\label{sec:local-relations}
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A {\it local relation} is a collection subspaces $U(B; c) \sub \lf(B; c)$,
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for all $n$-manifolds $B$ which are
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homeomorphic to the standard $n$-ball and all $c \in \cC(\bd B)$, 
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satisfying the following properties.
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\begin{enumerate}
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\item functoriality: 
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$f(U(B; c)) = U(B', f(c))$ for all homeomorphisms $f: B \to B'$
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\item local relations imply extended isotopy: 
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if $x, y \in \cC(B; c)$ and $x$ is extended isotopic 
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to $y$, then $x-y \in U(B; c)$.
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\item ideal with respect to gluing:
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if $B = B' \cup B''$, $x\in U(B')$, and $c\in \cC(B'')$, then $x\bullet r \in U(B)$
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\end{enumerate}
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See \cite{kw:tqft} for details.
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For maps into spaces, $U(B; c)$ is generated by things of the form $a-b \in \lf(B; c)$,
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where $a$ and $b$ are maps (fields) which are homotopic rel boundary.
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For $n$-category pictures, $U(B; c)$ is equal to the kernel of the evaluation map
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$\lf(B; c) \to \mor(c', c'')$, where $(c', c'')$ is some (any) division of $c$ into
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domain and range.
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\nn{maybe examples of local relations before general def?}
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132
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\subsection{Constructing a TQFT}
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139
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In this subsection we briefly review the construction of a TQFT from a system of fields and local relations.
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(For more details, see \cite{kw:tqft}.)
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Let $W$ be an $n{+}1$-manifold.
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We can think of the path integral $Z(W)$ as assigning to each
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boundary condition $x\in \cC(\bd W)$ a complex number $Z(W)(x)$.
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In other words, $Z(W)$ lies in $\c^{\lf(\bd W)}$, the vector space of linear
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maps $\lf(\bd W)\to \c$.
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The locality of the TQFT implies that $Z(W)$ in fact lies in a subspace
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$Z(\bd W) \sub \c^{\lf(\bd W)}$ defined by local projections.
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The linear dual to this subspace, $A(\bd W) = Z(\bd W)^*$,
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can be thought of as finite linear combinations of fields modulo local relations.
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(In other words, $A(\bd W)$ is a sort of generalized skein module.)
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This is the motivation behind the definition of fields and local relations above.
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139
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In more detail, let $X$ be an $n$-manifold.
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%To harmonize notation with the next section, 
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%let $\bc_0(X)$ be the vector space of finite linear combinations of fields on $X$, so
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%$\bc_0(X) = \lf(X)$.
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Define $U(X) \sub \lf(X)$ to be the space of local relations in $\lf(X)$;
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$U(X)$ is generated by things of the form $u\bullet r$, where
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$u\in U(B)$ for some embedded $n$-ball $B\sub X$ and $r\in \cC(X\setmin B)$.
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Define
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\[
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	A(X) \deq \lf(X) / U(X) .
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\]
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(The blob complex, defined in the next section, 
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is in some sense the derived version of $A(X)$.)
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If $X$ has boundary we can similarly define $A(X; c)$ for each 
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boundary condition $c\in\cC(\bd X)$.
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139
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The above construction can be extended to higher codimensions, assigning
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a $k$-category $A(Y)$ to an $n{-}k$-manifold $Y$, for $0 \le k \le n$.
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These invariants fit together via actions and gluing formulas.
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We describe only the case $k=1$ below.
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(The construction of the $n{+}1$-dimensional part of the theory (the path integral) 
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requires that the starting data (fields and local relations) satisfy additional
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conditions.
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We do not assume these conditions here, so when we say ``TQFT" we mean a decapitated TQFT
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that lacks its $n{+}1$-dimensional part.)
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Let $Y$ be an $n{-}1$-manifold.
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Define a (linear) 1-category $A(Y)$ as follows.
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The objects of $A(Y)$ are $\cC(Y)$.
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diff changeset
   330
The morphisms from $a$ to $b$ are $A(Y\times I; a, b)$, where $a$ and $b$ label the two boundary components of the cylinder $Y\times I$.
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   331
Composition is given by gluing of cylinders.
100
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kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   332
139
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   333
Let $X$ be an $n$-manifold with boundary and consider the collection of vector spaces
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   334
$A(X; \cdot) \deq \{A(X; c)\}$ where $c$ ranges through $\cC(\bd X)$.
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   335
This collection of vector spaces affords a representation of the category $A(\bd X)$, where
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   336
the action is given by gluing a collar $\bd X\times I$ to $X$.
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   337
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   338
Given a splitting $X = X_1 \cup_Y X_2$ of a closed $n$-manifold $X$ along an $n{-}1$-manifold $Y$,
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   339
we have left and right actions of $A(Y)$ on $A(X_1; \cdot)$ and $A(X_2; \cdot)$.
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   340
The gluing theorem for $n$-manifolds states that there is a natural isomorphism
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   341
\[
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   342
	A(X) \cong A(X_1; \cdot) \otimes_{A(Y)} A(X_2; \cdot) .
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 132
diff changeset
   343
\]
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   344
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   345
132
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 117
diff changeset
   346
\section{The blob complex}
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   347
\label{sec:blob-definition}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   348
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   349
Let $X$ be an $n$-manifold.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   350
Assume a fixed system of fields and local relations.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   351
In this section we will usually suppress boundary conditions on $X$ from the notation
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   352
(e.g. write $\lf(X)$ instead of $\lf(X; c)$).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   353
140
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   354
We want to replace the quotient
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   355
\[
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   356
	A(X) \deq \lf(X) / U(X)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   357
\]
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   358
of the previous section with a resolution
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   359
\[
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   360
	\cdots \to \bc_2(X) \to \bc_1(X) \to \bc_0(X) .
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   361
\]
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   362
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   363
We will define $\bc_0(X)$, $\bc_1(X)$ and $\bc_2(X)$, then give the general case $\bc_k(X)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   364
140
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   365
We of course define $\bc_0(X) = \lf(X)$.
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   366
(If $X$ has nonempty boundary, instead define $\bc_0(X; c) = \lf(X; c)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   367
We'll omit this sort of detail in the rest of this section.)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   368
In other words, $\bc_0(X)$ is just the space of all linearized fields on $X$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   369
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   370
$\bc_1(X)$ is, roughly, the space of all local relations that can be imposed on $\bc_0(X)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   371
Less roughly (but still not the official definition), $\bc_1(X)$ is finite linear
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   372
combinations of 1-blob diagrams, where a 1-blob diagram to consists of
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   373
\begin{itemize}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   374
\item An embedded closed ball (``blob") $B \sub X$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   375
\item A field $r \in \cC(X \setmin B; c)$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   376
(for some $c \in \cC(\bd B) = \cC(\bd(X \setmin B))$).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   377
\item A local relation field $u \in U(B; c)$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   378
(same $c$ as previous bullet).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   379
\end{itemize}
140
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   380
(See Figure \ref{blob1diagram}.)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   381
\begin{figure}[!ht]\begin{equation*}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   382
\mathfig{.9}{tempkw/blob1diagram}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   383
\end{equation*}\caption{A 1-blob diagram.}\label{blob1diagram}\end{figure}
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   384
In order to get the linear structure correct, we (officially) define
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   385
\[
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   386
	\bc_1(X) \deq \bigoplus_B \bigoplus_c U(B; c) \otimes \lf(X \setmin B; c) .
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   387
\]
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   388
The first direct sum is indexed by all blobs $B\subset X$, and the second
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   389
by all boundary conditions $c \in \cC(\bd B)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   390
Note that $\bc_1(X)$ is spanned by 1-blob diagrams $(B, u, r)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   391
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   392
Define the boundary map $\bd : \bc_1(X) \to \bc_0(X)$ by 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   393
\[ 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   394
	(B, u, r) \mapsto u\bullet r, 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   395
\]
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   396
where $u\bullet r$ denotes the linear
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   397
combination of fields on $X$ obtained by gluing $u$ to $r$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   398
In other words $\bd : \bc_1(X) \to \bc_0(X)$ is given by
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   399
just erasing the blob from the picture
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   400
(but keeping the blob label $u$).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   401
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   402
Note that the skein space $A(X)$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   403
is naturally isomorphic to $\bc_0(X)/\bd(\bc_1(X))) = H_0(\bc_*(X))$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   404
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   405
$\bc_2(X)$ is, roughly, the space of all relations (redundancies) among the 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   406
local relations encoded in $\bc_1(X)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   407
More specifically, $\bc_2(X)$ is the space of all finite linear combinations of
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   408
2-blob diagrams, of which there are two types, disjoint and nested.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   409
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   410
A disjoint 2-blob diagram consists of
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   411
\begin{itemize}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   412
\item A pair of closed balls (blobs) $B_0, B_1 \sub X$ with disjoint interiors.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   413
\item A field $r \in \cC(X \setmin (B_0 \cup B_1); c_0, c_1)$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   414
(where $c_i \in \cC(\bd B_i)$).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   415
\item Local relation fields $u_i \in U(B_i; c_i)$, $i=1,2$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   416
\end{itemize}
140
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   417
(See Figure \ref{blob2ddiagram}.)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   418
\begin{figure}[!ht]\begin{equation*}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   419
\mathfig{.9}{tempkw/blob2ddiagram}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   420
\end{equation*}\caption{A disjoint 2-blob diagram.}\label{blob2ddiagram}\end{figure}
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   421
We also identify $(B_0, B_1, u_0, u_1, r)$ with $-(B_1, B_0, u_1, u_0, r)$;
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   422
reversing the order of the blobs changes the sign.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   423
Define $\bd(B_0, B_1, u_0, u_1, r) = 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   424
(B_1, u_1, u_0\bullet r) - (B_0, u_0, u_1\bullet r) \in \bc_1(X)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   425
In other words, the boundary of a disjoint 2-blob diagram
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   426
is the sum (with alternating signs)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   427
of the two ways of erasing one of the blobs.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   428
It's easy to check that $\bd^2 = 0$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   429
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   430
A nested 2-blob diagram consists of
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   431
\begin{itemize}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   432
\item A pair of nested balls (blobs) $B_0 \sub B_1 \sub X$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   433
\item A field $r \in \cC(X \setmin B_0; c_0)$
132
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 117
diff changeset
   434
(for some $c_0 \in \cC(\bd B_0)$), which is splittable along $\bd B_1$.
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   435
\item A local relation field $u_0 \in U(B_0; c_0)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   436
\end{itemize}
140
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   437
(See Figure \ref{blob2ndiagram}.)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   438
\begin{figure}[!ht]\begin{equation*}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   439
\mathfig{.9}{tempkw/blob2ndiagram}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   440
\end{equation*}\caption{A nested 2-blob diagram.}\label{blob2ndiagram}\end{figure}
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   441
Let $r = r_1 \bullet r'$, where $r_1 \in \cC(B_1 \setmin B_0; c_0, c_1)$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   442
(for some $c_1 \in \cC(B_1)$) and
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   443
$r' \in \cC(X \setmin B_1; c_1)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   444
Define $\bd(B_0, B_1, u_0, r) = (B_1, u_0\bullet r_1, r') - (B_0, u_0, r)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   445
Note that the requirement that
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   446
local relations are an ideal with respect to gluing guarantees that $u_0\bullet r_1 \in U(B_1)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   447
As in the disjoint 2-blob case, the boundary of a nested 2-blob is the alternating
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   448
sum of the two ways of erasing one of the blobs.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   449
If we erase the inner blob, the outer blob inherits the label $u_0\bullet r_1$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   450
It is again easy to check that $\bd^2 = 0$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   451
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   452
As with the 1-blob diagrams, in order to get the linear structure correct it is better to define
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   453
(officially)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   454
\begin{eqnarray*}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   455
	\bc_2(X) & \deq &
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   456
	\left( 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   457
		\bigoplus_{B_0, B_1 \text{disjoint}} \bigoplus_{c_0, c_1}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   458
			U(B_0; c_0) \otimes U(B_1; c_1) \otimes \lf(X\setmin (B_0\cup B_1); c_0, c_1)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   459
	\right) \\
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   460
	&& \bigoplus \left( 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   461
		\bigoplus_{B_0 \subset B_1} \bigoplus_{c_0}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   462
			U(B_0; c_0) \otimes \lf(X\setmin B_0; c_0)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   463
	\right) .
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   464
\end{eqnarray*}
132
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 117
diff changeset
   465
The final $\lf(X\setmin B_0; c_0)$ above really means fields splittable along $\bd B_1$,
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   466
but we didn't feel like introducing a notation for that.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   467
For the disjoint blobs, reversing the ordering of $B_0$ and $B_1$ introduces a minus sign
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   468
(rather than a new, linearly independent 2-blob diagram).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   469
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   470
Now for the general case.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   471
A $k$-blob diagram consists of
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   472
\begin{itemize}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   473
\item A collection of blobs $B_i \sub X$, $i = 0, \ldots, k-1$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   474
For each $i$ and $j$, we require that either $B_i$ and $B_j$have disjoint interiors or
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   475
$B_i \sub B_j$ or $B_j \sub B_i$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   476
(The case $B_i = B_j$ is allowed.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   477
If $B_i \sub B_j$ the boundaries of $B_i$ and $B_j$ are allowed to intersect.)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   478
If a blob has no other blobs strictly contained in it, we call it a twig blob.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   479
\item Fields (boundary conditions) $c_i \in \cC(\bd B_i)$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   480
(These are implied by the data in the next bullets, so we usually
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   481
suppress them from the notation.)
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   482
$c_i$ and $c_j$ must have identical restrictions to $\bd B_i \cap \bd B_j$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   483
if the latter space is not empty.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   484
\item A field $r \in \cC(X \setmin B^t; c^t)$,
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   485
where $B^t$ is the union of all the twig blobs and $c^t \in \cC(\bd B^t)$
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   486
is determined by the $c_i$'s.
132
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 117
diff changeset
   487
$r$ is required to be splittable along the boundaries of all blobs, twigs or not.
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   488
\item For each twig blob $B_j$ a local relation field $u_j \in U(B_j; c_j)$,
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   489
where $c_j$ is the restriction of $c^t$ to $\bd B_j$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   490
If $B_i = B_j$ then $u_i = u_j$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   491
\end{itemize}
140
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   492
(See Figure \ref{blobkdiagram}.)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   493
\begin{figure}[!ht]\begin{equation*}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   494
\mathfig{.9}{tempkw/blobkdiagram}
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 139
diff changeset
   495
\end{equation*}\caption{A $k$-blob diagram.}\label{blobkdiagram}\end{figure}
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   496
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   497
If two blob diagrams $D_1$ and $D_2$ 
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   498
differ only by a reordering of the blobs, then we identify
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   499
$D_1 = \pm D_2$, where the sign is the sign of the permutation relating $D_1$ and $D_2$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   500
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   501
$\bc_k(X)$ is, roughly, all finite linear combinations of $k$-blob diagrams.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   502
As before, the official definition is in terms of direct sums
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   503
of tensor products:
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   504
\[
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   505
	\bc_k(X) \deq \bigoplus_{\overline{B}} \bigoplus_{\overline{c}}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   506
		\left( \otimes_j U(B_j; c_j)\right) \otimes \lf(X \setmin B^t; c^t) .
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   507
\]
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   508
Here $\overline{B}$ runs over all configurations of blobs, satisfying the conditions above.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   509
$\overline{c}$ runs over all boundary conditions, again as described above.
132
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents: 117
diff changeset
   510
$j$ runs over all indices of twig blobs. The final $\lf(X \setmin B^t; c^t)$ must be interpreted as fields which are splittable along all of the blobs in $\overline{B}$.
100
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   511
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   512
The boundary map $\bd : \bc_k(X) \to \bc_{k-1}(X)$ is defined as follows.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   513
Let $b = (\{B_i\}, \{u_j\}, r)$ be a $k$-blob diagram.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   514
Let $E_j(b)$ denote the result of erasing the $j$-th blob.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   515
If $B_j$ is not a twig blob, this involves only decrementing
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   516
the indices of blobs $B_{j+1},\ldots,B_{k-1}$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   517
If $B_j$ is a twig blob, we have to assign new local relation labels
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   518
if removing $B_j$ creates new twig blobs.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   519
If $B_l$ becomes a twig after removing $B_j$, then set $u_l = u_j\bullet r_l$,
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   520
where $r_l$ is the restriction of $r$ to $B_l \setmin B_j$.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   521
Finally, define
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   522
\eq{
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   523
    \bd(b) = \sum_{j=0}^{k-1} (-1)^j E_j(b).
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   524
}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   525
The $(-1)^j$ factors imply that the terms of $\bd^2(b)$ all cancel.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   526
Thus we have a chain complex.
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   527
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   528
\nn{?? say something about the ``shape" of tree? (incl = cone, disj = product)}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   529
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   530
\nn{?? remark about dendroidal sets}
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   531
c5a43be00ed4 No new content, just rearranging (and procrastinating)
kevin@6e1638ff-ae45-0410-89bd-df963105f760
parents:
diff changeset
   532