pnas/pnas.tex
author Scott Morrison <scott@tqft.net>
Wed, 17 Nov 2010 10:56:17 -0800
changeset 637 c1cf892a4ab7
parent 636 14e85db55dce
child 638 6a7f2a6295d1
permissions -rw-r--r--
minor changes to rewritten intro
Ignore whitespace changes - Everywhere: Within whitespace: At end of lines:
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     1
%% PNAStmpl.tex
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     2
%% Template file to use for PNAS articles prepared in LaTeX
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     3
%% Version: Apr 14, 2008
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     4
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     5
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     6
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     7
%% BASIC CLASS FILE 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     8
%% PNAStwo for two column articles is called by default.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
     9
%% Uncomment PNASone for single column articles. One column class
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    10
%% and style files are available upon request from pnas@nas.edu.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    11
%% (uncomment means get rid of the '%' in front of the command)
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    12
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    13
%\documentclass{pnasone}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    14
\documentclass{pnastwo}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    15
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    16
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    17
%% Changing position of text on physical page:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    18
%% Since not all printers position
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    19
%% the printed page in the same place on the physical page,
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    20
%% you can change the position yourself here, if you need to:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    21
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    22
% \advance\voffset -.5in % Minus dimension will raise the printed page on the 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    23
                         %  physical page; positive dimension will lower it.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    24
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    25
%% You may set the dimension to the size that you need.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    26
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    27
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    28
%% OPTIONAL GRAPHICS STYLE FILE
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    29
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    30
%% Requires graphics style file (graphicx.sty), used for inserting
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    31
%% .eps files into LaTeX articles.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    32
%% Note that inclusion of .eps files is for your reference only;
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    33
%% when submitting to PNAS please submit figures separately.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    34
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    35
%% Type into the square brackets the name of the driver program 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    36
%% that you are using. If you don't know, try dvips, which is the
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    37
%% most common PC driver, or textures for the Mac. These are the options:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    38
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    39
% [dvips], [xdvi], [dvipdf], [dvipdfm], [dvipdfmx], [pdftex], [dvipsone],
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    40
% [dviwindo], [emtex], [dviwin], [pctexps], [pctexwin], [pctexhp], [pctex32],
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    41
% [truetex], [tcidvi], [vtex], [oztex], [textures], [xetex]
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    42
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    43
%\usepackage[dvips]{graphicx}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    44
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    45
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    46
%% OPTIONAL POSTSCRIPT FONT FILES
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    47
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    48
%% PostScript font files: You may need to edit the PNASoneF.sty
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    49
%% or PNAStwoF.sty file to make the font names match those on your system. 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    50
%% Alternatively, you can leave the font style file commands commented out
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    51
%% and typeset your article using the default Computer Modern 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    52
%% fonts (recommended). If accepted, your article will be typeset
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    53
%% at PNAS using PostScript fonts.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    54
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    55
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    56
% Choose PNASoneF for one column; PNAStwoF for two column:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    57
%\usepackage{PNASoneF}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    58
%\usepackage{PNAStwoF}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    59
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    60
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    61
%% ADDITIONAL OPTIONAL STYLE FILES
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    62
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    63
%% The AMS math files are commonly used to gain access to useful features
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    64
%% like extended math fonts and math commands.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    65
571
f958e0ea62f8 compilable PNAS file\! The blob intro typesets (poorly) onto 3 2-column pages
Scott Morrison <scott@tqft.net>
parents: 566
diff changeset
    66
\usepackage{amssymb,amsfonts,amsmath,amsthm}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    67
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    68
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    69
%% OPTIONAL MACRO FILES
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    70
%% Insert self-defined macros here.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    71
%% \newcommand definitions are recommended; \def definitions are supported
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    72
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    73
%\newcommand{\mfrac}[2]{\frac{\displaystyle #1}{\displaystyle #2}}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    74
%\def\s{\sigma}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    75
571
f958e0ea62f8 compilable PNAS file\! The blob intro typesets (poorly) onto 3 2-column pages
Scott Morrison <scott@tqft.net>
parents: 566
diff changeset
    76
\input{preamble}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    77
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    78
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    79
%% Don't type in anything in the following section:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    80
%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    81
%% For PNAS Only:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    82
\contributor{Submitted to Proceedings
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    83
of the National Academy of Sciences of the United States of America}
571
f958e0ea62f8 compilable PNAS file\! The blob intro typesets (poorly) onto 3 2-column pages
Scott Morrison <scott@tqft.net>
parents: 566
diff changeset
    84
%\url{www.pnas.org/cgi/doi/10.1073/pnas.0709640104}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    85
\copyrightyear{2008}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    86
\issuedate{Issue Date}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    87
\volume{Volume}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    88
\issuenumber{Issue Number}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    89
%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    90
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    91
\begin{document}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    92
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    93
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    94
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    95
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    96
%% For titles, only capitalize the first letter
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    97
%% \title{Almost sharp fronts for the surface quasi-geostrophic equation}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
    98
633
2906548b2a95 changing title?
Scott Morrison <scott@tqft.net>
parents: 622
diff changeset
    99
\title{Higher categories, colimits and the blob complex}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   100
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   101
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   102
%% Enter authors via the \author command.  
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   103
%% Use \affil to define affiliations.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   104
%% (Leave no spaces between author name and \affil command)
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   105
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   106
%% Note that the \thanks{} command has been disabled in favor of
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   107
%% a generic, reserved space for PNAS publication footnotes.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   108
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   109
%% \author{<author name>
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   110
%% \affil{<number>}{<Institution>}} One number for each institution.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   111
%% The same number should be used for authors that
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   112
%% are affiliated with the same institution, after the first time
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   113
%% only the number is needed, ie, \affil{number}{text}, \affil{number}{}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   114
%% Then, before last author ...
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   115
%% \and
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   116
%% \author{<author name>
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   117
%% \affil{<number>}{}}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   118
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   119
%% For example, assuming Garcia and Sonnery are both affiliated with
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   120
%% Universidad de Murcia:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   121
%% \author{Roberta Graff\affil{1}{University of Cambridge, Cambridge,
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   122
%% United Kingdom},
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   123
%% Javier de Ruiz Garcia\affil{2}{Universidad de Murcia, Bioquimica y Biologia
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   124
%% Molecular, Murcia, Spain}, \and Franklin Sonnery\affil{2}{}}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   125
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   126
\author{Scott Morrison\affil{1}{Miller Institute for Basic Research, UC Berkeley, CA 94704, USA} \and Kevin Walker\affil{2}{Microsoft Station Q, 2243 CNSI Building, UC Santa Barbara, CA 93106, USA}}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   127
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   128
\contributor{Submitted to Proceedings of the National Academy of Sciences
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   129
of the United States of America}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   130
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   131
%% The \maketitle command is necessary to build the title page.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   132
\maketitle
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   133
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   134
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   135
\begin{article}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   136
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   137
\begin{abstract} -- enter abstract text here -- \end{abstract}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   138
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   139
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   140
%% When adding keywords, separate each term with a straight line: |
578
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   141
\keywords{n-categories | topological quantum field theory | hochschild homology}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   142
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   143
%% Optional for entering abbreviations, separate the abbreviation from
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   144
%% its definition with a comma, separate each pair with a semicolon:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   145
%% for example:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   146
%% \abbreviations{SAM, self-assembled monolayer; OTS,
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   147
%% octadecyltrichlorosilane}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   148
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   149
% \abbreviations{TQFT, topological quantum field theory}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   150
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   151
%% The first letter of the article should be drop cap: \dropcap{}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   152
%\dropcap{I}n this article we study the evolution of ''almost-sharp'' fronts
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   153
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   154
%% Enter the text of your article beginning here and ending before
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   155
%% \begin{acknowledgements}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   156
%% Section head commands for your reference:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   157
%% \section{}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   158
%% \subsection{}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   159
%% \subsubsection{}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   160
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   161
\dropcap{T}he aim of this paper is to describe a derived category analogue of topological quantum field theories.
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   162
630
e0093da0d39f silly commit to move stuff from office to home
Kevin Walker <kevin@canyon23.net>
parents: 627
diff changeset
   163
For our purposes, an $n{+}1$-dimensional TQFT is a locally defined system of
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   164
invariants of manifolds of dimensions 0 through $n+1$. In particular,
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   165
the TQFT invariant $A(Y)$ of a closed $k$-manifold $Y$ is a linear $(n{-}k)$-category.
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   166
If $Y$ has boundary then $A(Y)$ is a collection of $(n{-}k)$-categories which afford
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   167
a representation of the $(n{-}k{+}1)$-category $A(\bd Y)$.
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   168
(See \cite{1009.5025} and \cite{kw:tqft};
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   169
for a more homotopy-theoretic point of view see \cite{0905.0465}.)
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   170
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   171
We now comment on some particular values of $k$ above.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   172
A linear 0-category is a vector space, and a representation
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   173
of a vector space is an element of the dual space.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   174
Thus a TQFT assigns to each closed $n$-manifold $Y$ a vector space $A(Y)$,
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   175
and to each $(n{+}1)$-manifold $W$ an element of $A(\bd W)^*$.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   176
For the remainder of this paper we will in fact be interested in so-called $(n{+}\epsilon)$-dimensional
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   177
TQFTs, which are slightly weaker structures and do not assign anything to general $(n{+}1)$-manifolds, but only to mapping cylinders.
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   178
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   179
When $k=n-1$ we have a linear 1-category $A(S)$ for each $(n{-}1)$-manifold $S$,
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   180
and a representation of $A(\bd Y)$ for each $n$-manifold $Y$.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   181
The TQFT gluing rule in dimension $n$ states that
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   182
$A(Y_1\cup_S Y_2) \cong A(Y_1) \ot_{A(S)} A(Y_2)$,
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   183
where $Y_1$ and $Y_2$ and $n$-manifolds with common boundary $S$.
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   184
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   185
When $k=0$ we have an $n$-category $A(pt)$.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   186
This can be thought of as the local part of the TQFT, and the full TQFT can be reconstructed from $A(pt)$
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   187
via colimits (see below).
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   188
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   189
We call a TQFT semisimple if $A(S)$ is a semisimple 1-category for all $(n{-}1)$-manifolds $S$
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   190
and $A(Y)$ is a finite-dimensional vector space for all $n$-manifolds $Y$.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   191
Examples of semisimple TQFTs include Witten-Reshetikhin-Turaev theories, 
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   192
Turaev-Viro theories, and Dijkgraaf-Witten theories.
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   193
These can all be given satisfactory accounts in the framework outlined above.
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   194
(The WRT invariants need to be reinterpreted as $3{+}1$-dimensional theories with only a weak dependence on interiors in order to be
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   195
extended all the way down to dimension 0.)
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   196
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   197
For other TQFT-like invariants, however, the above framework seems to be inadequate.
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   198
637
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   199
\nn{kevin's rewrite stops here}
c1cf892a4ab7 minor changes to rewritten intro
Scott Morrison <scott@tqft.net>
parents: 636
diff changeset
   200
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   201
However new invariants on manifolds, particularly those coming from
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   202
Seiberg-Witten theory and Ozsv\'{a}th-Szab\'{o} theory, do not fit the framework well.
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   203
In particular, they have more complicated gluing formulas, involving derived or
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   204
$A_\infty$ tensor products \cite{1003.0598,1005.1248}.
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   205
It seems worthwhile to find a more general notion of TQFT that explain these.
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   206
While we don't claim to fulfill that goal here, our notions of $n$-category and
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   207
of the blob complex are hopefully a step in the right direction,
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   208
and provide similar gluing formulas.
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   209
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   210
One approach to such a generalization might be simply to define a
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   211
TQFT invariant via its gluing formulas, replacing tensor products with
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   212
derived tensor products. However, it is probably difficult to prove
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   213
the invariance of such a definition, as the object associated to a manifold
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   214
will a priori depend on the explicit presentation used to apply the gluing formulas.
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   215
We instead give a manifestly invariant construction, and
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   216
deduce gluing formulas based on $A_\infty$ tensor products.
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   217
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   218
\nn{Triangulated categories are important; often calculations are via exact sequences,
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   219
and the standard TQFT constructions are quotients, which destroy exactness.}
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   220
609
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   221
\nn{In many places we omit details; they can be found in MW.
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   222
(Blanket statement in order to avoid too many citations to MW.)}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   223
624
Kevin Walker <kevin@canyon23.net>
parents: 623
diff changeset
   224
\nn{perhaps say something explicit about the relationship of this paper to big blob paper.
Kevin Walker <kevin@canyon23.net>
parents: 623
diff changeset
   225
like: in this paper we try to give a clear view of the big picture without getting bogged down in details}
Kevin Walker <kevin@canyon23.net>
parents: 623
diff changeset
   226
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   227
\nn{diff w/ lurie}
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   228
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   229
\section{Definitions}
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   230
\subsection{$n$-categories} \mbox{}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   231
581
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   232
\nn{rough draft of n-cat stuff...}
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   233
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   234
\nn{maybe say something about goals: well-suited to TQFTs; avoid proliferation of coherency axioms;
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   235
non-recursive (n-cats not defined n terms of (n-1)-cats; easy to show that the motivating
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   236
examples satisfy the axioms; strong duality; both plain and infty case;
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   237
(?) easy to see that axioms are correct, in the sense of nothing missing (need
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   238
to say this better if we keep it)}
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   239
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   240
\nn{maybe: the typical n-cat definition tries to do two things at once: (1) give a list of basic properties
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   241
which are weak enough to include the basic examples and strong enough to support the proofs
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   242
of the main theorems; and (2) specify a minimal set of generators and/or axioms.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   243
We separate these two tasks, and address only the first, which becomes much easier when not burdened by the second.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   244
More specifically, life is easier when working with maximal, rather than minimal, collections of axioms.}
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   245
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   246
\nn{say something about defining plain and infty cases simultaneously}
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   247
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   248
There are five basic ingredients 
615
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   249
\cite{life-of-brian} of an $n$-category definition:
581
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   250
$k$-morphisms (for $0\le k \le n$), domain and range, composition,
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   251
identity morphisms, and special behavior in dimension $n$ (e.g. enrichment
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   252
in some auxiliary category, or strict associativity instead of weak associativity).
584
Scott Morrison <scott@tqft.net>
parents: 583
diff changeset
   253
We will treat each of these in turn.
581
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   254
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   255
To motivate our morphism axiom, consider the venerable notion of the Moore loop space
599
ae1ee41f20dd various
Scott Morrison <scott@tqft.net>
parents: 598
diff changeset
   256
\cite[\S 2.2]{MR505692}.
581
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   257
In the standard definition of a loop space, loops are always parameterized by the unit interval $I = [0,1]$,
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   258
so composition of loops requires a reparameterization $I\cup I \cong I$, and this leads to a proliferation
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   259
of higher associativity relations.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   260
While this proliferation is manageable for 1-categories (and indeed leads to an elegant theory
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   261
of Stasheff polyhedra and $A_\infty$ categories), it becomes undesirably complex for higher categories.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   262
In a Moore loop space, we have a separate space $\Omega_r$ for each interval $[0,r]$, and a 
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   263
{\it strictly associative} composition $\Omega_r\times \Omega_s\to \Omega_{r+s}$.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   264
Thus we can have the simplicity of strict associativity in exchange for more morphisms.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   265
We wish to imitate this strategy in higher categories.
f2471d26002c some n-cat motivation
Kevin Walker <kevin@canyon23.net>
parents: 580
diff changeset
   266
Because we are mainly interested in the case of strong duality, we replace the intervals $[0,r]$ not with
629
a1fa4428ddbc adding reference to Ronnie Brown's paper, from MO
Scott Morrison <scott@tqft.net>
parents: 628
diff changeset
   267
a product of $k$ intervals (c.f. \cite{0909.2212}) but rather with any $k$-ball, that is, any $k$-manifold which is homeomorphic
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   268
to the standard $k$-ball $B^k$.
583
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   269
\nn{maybe add that in addition we want functoriality}
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   270
600
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   271
We haven't said precisely what sort of balls we are considering,
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   272
because we prefer to let this detail be a parameter in the definition.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   273
It is useful to consider unoriented, oriented, Spin and $\mbox{Pin}_\pm$ balls.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   274
Also useful are more exotic structures, such as balls equipped with a map to some target space,
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   275
or equipped with $m$ independent vector fields.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   276
(The latter structure would model $n$-categories with less duality than we usually assume.)
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   277
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   278
%In fact, the axioms here may easily be varied by considering balls with structure (e.g. $m$ independent vector fields, a map to some target space, etc.). Such variations are useful for axiomatizing categories with less duality, and also as technical tools in proofs.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   279
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   280
\begin{axiom}[Morphisms]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   281
\label{axiom:morphisms}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   282
For each $0 \le k \le n$, we have a functor $\cC_k$ from 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   283
the category of $k$-balls and 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   284
homeomorphisms to the category of sets and bijections.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   285
\end{axiom}
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   286
586
0510346848ed restore and complete the fragment
Kevin Walker <kevin@canyon23.net>
parents: 585
diff changeset
   287
Note that the functoriality in the above axiom allows us to operate via
0510346848ed restore and complete the fragment
Kevin Walker <kevin@canyon23.net>
parents: 585
diff changeset
   288
homeomorphisms which are not the identity on the boundary of the $k$-ball.
0510346848ed restore and complete the fragment
Kevin Walker <kevin@canyon23.net>
parents: 585
diff changeset
   289
The action of these homeomorphisms gives the ``strong duality" structure.
595
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   290
As such, we don't subdivide the boundary of a morphism
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   291
into domain and range --- the duality operations can convert between domain and range.
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   292
628
4cce595ae1d3 adding Gerstenhaber-Voronov, explicitly not proving the mapping spaces result, and slight tweaks
Scott Morrison <scott@tqft.net>
parents: 627
diff changeset
   293
Later \nn{make sure this actually happens, or reorganise} we inductively define an extension of the functors $\cC_k$ to functors $\cl{\cC}_k$ from arbitrary manifolds to sets. We need the restriction of these functors to $k$-spheres, for $k<n$, for the next axiom.
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   294
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   295
\begin{axiom}[Boundaries]\label{nca-boundary}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   296
For each $k$-ball $X$, we have a map of sets $\bd: \cC_k(X)\to \cl{\cC}_{k-1}(\bd X)$.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   297
These maps, for various $X$, comprise a natural transformation of functors.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   298
\end{axiom}
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   299
594
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   300
For $c\in \cl{\cC}_{k-1}(\bd X)$ we define $\cC_k(X; c) = \bd^{-1}(c)$.
587
38ec3d05d0d8 enrichment; decompositions (meta)
Kevin Walker <kevin@canyon23.net>
parents: 586
diff changeset
   301
38ec3d05d0d8 enrichment; decompositions (meta)
Kevin Walker <kevin@canyon23.net>
parents: 586
diff changeset
   302
Many of the examples we are interested in are enriched in some auxiliary category $\cS$
597
26c4d576e155 fixing typo
Kevin Walker <kevin@canyon23.net>
parents: 595
diff changeset
   303
(e.g. vector spaces or rings, or, in the $A_\infty$ case, chain complexes or topological spaces).
595
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   304
This means that in the top dimension $k=n$ the sets $\cC_n(X; c)$ have the structure
587
38ec3d05d0d8 enrichment; decompositions (meta)
Kevin Walker <kevin@canyon23.net>
parents: 586
diff changeset
   305
of an object of $\cS$, and all of the structure maps of the category (above and below) are
38ec3d05d0d8 enrichment; decompositions (meta)
Kevin Walker <kevin@canyon23.net>
parents: 586
diff changeset
   306
compatible with the $\cS$ structure on $\cC_n(X; c)$.
38ec3d05d0d8 enrichment; decompositions (meta)
Kevin Walker <kevin@canyon23.net>
parents: 586
diff changeset
   307
38ec3d05d0d8 enrichment; decompositions (meta)
Kevin Walker <kevin@canyon23.net>
parents: 586
diff changeset
   308
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   309
Given two hemispheres (a `domain' and `range') that agree on the equator, we need to be able to assemble them into a boundary value of the entire sphere.
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   310
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   311
\begin{lem}
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   312
\label{lem:domain-and-range}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   313
Let $S = B_1 \cup_E B_2$, where $S$ is a $k{-}1$-sphere $(1\le k\le n)$,
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   314
$B_i$ is a $k{-}1$-ball, and $E = B_1\cap B_2$ is a $k{-}2$-sphere (Figure \ref{blah3}).
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   315
Let $\cC(B_1) \times_{\cl{\cC}(E)} \cC(B_2)$ denote the fibered product of the 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   316
two maps $\bd: \cC(B_i)\to \cl{\cC}(E)$.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   317
Then we have an injective map
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   318
\[
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   319
	\gl_E : \cC(B_1) \times_{\cl{\cC}(E)} \cC(B_2) \into \cl{\cC}(S)
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   320
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   321
which is natural with respect to the actions of homeomorphisms.
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   322
%(When $k=1$ we stipulate that $\cl{\cC}(E)$ is a point, so that the above fibered product
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   323
%becomes a normal product.)
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   324
\end{lem}
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   325
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   326
If $\bdy B = S$, we denote $\bdy^{-1}(\im(\gl_E))$ by $\cC(B)_E$.
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   327
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   328
\begin{axiom}[Gluing]
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   329
\label{axiom:composition}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   330
Let $B = B_1 \cup_Y B_2$, where $B$, $B_1$ and $B_2$ are $k$-balls ($0\le k\le n$)
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   331
and $Y = B_1\cap B_2$ is a $k{-}1$-ball (Figure \ref{blah5}).
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   332
Let $E = \bd Y$, which is a $k{-}2$-sphere.
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   333
%Note that each of $B$, $B_1$ and $B_2$ has its boundary split into two $k{-}1$-balls by $E$.
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   334
We have restriction maps $\cC(B_i)_E \to \cC(Y)$.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   335
Let $\cC(B_1)_E \times_{\cC(Y)} \cC(B_2)_E$ denote the fibered product of these two maps. 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   336
We have a map
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   337
\[
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   338
	\gl_Y : \cC(B_1)_E \times_{\cC(Y)} \cC(B_2)_E \to \cC(B)_E
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   339
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   340
which is natural with respect to the actions of homeomorphisms, and also compatible with restrictions
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   341
to the intersection of the boundaries of $B$ and $B_i$.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   342
If $k < n$,
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   343
or if $k=n$ and we are in the $A_\infty$ case, 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   344
we require that $\gl_Y$ is injective.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   345
(For $k=n$ in the plain (non-$A_\infty$) case, see below.)
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   346
\end{axiom}
582
Kevin Walker <kevin@canyon23.net>
parents: 581
diff changeset
   347
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   348
\begin{axiom}[Strict associativity] \label{nca-assoc}
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   349
The gluing maps above are strictly associative.
584
Scott Morrison <scott@tqft.net>
parents: 583
diff changeset
   350
Given any decomposition of a ball $B$ into smaller balls
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   351
$$\bigsqcup B_i \to B,$$ 
584
Scott Morrison <scott@tqft.net>
parents: 583
diff changeset
   352
any sequence of gluings (where all the intermediate steps are also disjoint unions of balls) yields the same result.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   353
\end{axiom}
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   354
For the next axiom, a \emph{pinched product} is a map locally modeled on a degeneracy map between simplices.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   355
\begin{axiom}[Product (identity) morphisms]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   356
\label{axiom:product}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   357
For each pinched product $\pi:E\to X$, with $X$ a $k$-ball and $E$ a $k{+}m$-ball ($m\ge 1$),
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   358
there is a map $\pi^*:\cC(X)\to \cC(E)$.
595
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   359
These maps must be
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   360
\begin{enumerate}
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   361
\item natural with respect to maps of pinched products,
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   362
\item functorial with respect to composition of pinched products, 
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   363
\item compatible with gluing and restriction of pinched products.
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   364
\end{enumerate}
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   365
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   366
%%% begin noop %%%
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   367
% this was the original list of conditions, which I've replaced with the much terser list above -S
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   368
\noop{
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   369
These maps must satisfy the following conditions.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   370
\begin{enumerate}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   371
\item
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   372
If $\pi:E\to X$ and $\pi':E'\to X'$ are pinched products, and
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   373
if $f:X\to X'$ and $\tilde{f}:E \to E'$ are maps such that the diagram
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   374
\[ \xymatrix{
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   375
	E \ar[r]^{\tilde{f}} \ar[d]_{\pi} & E' \ar[d]^{\pi'} \\
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   376
	X \ar[r]^{f} & X'
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   377
} \]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   378
commutes, then we have 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   379
\[
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   380
	\pi'^*\circ f = \tilde{f}\circ \pi^*.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   381
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   382
\item
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   383
Product morphisms are compatible with gluing.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   384
Let $\pi:E\to X$, $\pi_1:E_1\to X_1$, and $\pi_2:E_2\to X_2$ 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   385
be pinched products with $E = E_1\cup E_2$.
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   386
Let $a\in \cC(X)$, and let $a_i$ denote the restriction of $a$ to $X_i\subset X$.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   387
Then 
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   388
\[
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   389
	\pi^*(a) = \pi_1^*(a_1)\bullet \pi_2^*(a_2) .
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   390
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   391
\item
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   392
Product morphisms are associative.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   393
If $\pi:E\to X$ and $\rho:D\to E$ are pinched products then
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   394
\[
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   395
	\rho^*\circ\pi^* = (\pi\circ\rho)^* .
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   396
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   397
\item
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   398
Product morphisms are compatible with restriction.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   399
If we have a commutative diagram
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   400
\[ \xymatrix{
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   401
	D \ar@{^(->}[r] \ar[d]_{\rho} & E \ar[d]^{\pi} \\
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   402
	Y \ar@{^(->}[r] & X
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   403
} \]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   404
such that $\rho$ and $\pi$ are pinched products, then
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   405
\[
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   406
	\res_D\circ\pi^* = \rho^*\circ\res_Y .
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   407
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   408
\end{enumerate}
595
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   409
} %%% end \noop %%%
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   410
\end{axiom}
604
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   411
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   412
To state the next axiom we need the notion of {\it collar maps} on $k$-morphisms.
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   413
Let $X$ be a $k$-ball and $Y\subset\bd X$ be a $(k{-}1)$-ball.
604
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   414
Let $J$ be a 1-ball.
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   415
Let $Y\times_p J$ denote $Y\times J$ pinched along $(\bd Y)\times J$.
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   416
A collar map is an instance of the composition
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   417
\[
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   418
	\cC(X) \to \cC(X\cup_Y (Y\times_p J)) \to \cC(X) ,
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   419
\]
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   420
where the first arrow is gluing with a product morphism on $Y\times_p J$ and
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   421
the second is induced by a homeomorphism from $X\cup_Y (Y\times_p J)$ to $X$ which restricts
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   422
to the identity on the boundary.
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   423
f0dff7f0f337 definition of collar maps
Kevin Walker <kevin@canyon23.net>
parents: 603
diff changeset
   424
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   425
\begin{axiom}[\textup{\textbf{[plain  version]}} Extended isotopy invariance in dimension $n$.]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   426
\label{axiom:extended-isotopies}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   427
Let $X$ be an $n$-ball and $f: X\to X$ be a homeomorphism which restricts
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   428
to the identity on $\bd X$ and isotopic (rel boundary) to the identity.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   429
Then $f$ acts trivially on $\cC(X)$.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   430
In addition, collar maps act trivially on $\cC(X)$.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   431
\end{axiom}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   432
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   433
\smallskip
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   434
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   435
For $A_\infty$ $n$-categories, we replace
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   436
isotopy invariance with the requirement that families of homeomorphisms act.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   437
For the moment, assume that our $n$-morphisms are enriched over chain complexes.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   438
Let $\Homeo_\bd(X)$ denote homeomorphisms of $X$ which fix $\bd X$ and
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   439
$C_*(\Homeo_\bd(X))$ denote the singular chains on this space.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   440
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   441
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   442
\begin{axiom}[\textup{\textbf{[$A_\infty$ version]}} Families of homeomorphisms act in dimension $n$.]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   443
\label{axiom:families}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   444
For each $n$-ball $X$ and each $c\in \cl{\cC}(\bd X)$ we have a map of chain complexes
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   445
\[
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   446
	C_*(\Homeo_\bd(X))\tensor \cC(X; c) \to \cC(X; c) .
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   447
\]
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   448
These action maps are required to be associative up to homotopy,
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   449
and also compatible with composition (gluing) in the sense that
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   450
a diagram like the one in Theorem \ref{thm:CH} commutes.
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   451
\end{axiom}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   452
601
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   453
\subsection{Example (the fundamental $n$-groupoid)}
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   454
We will define $\pi_{\le n}(T)$, the fundamental $n$-groupoid of a topological space $T$.
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   455
When $X$ is a $k$-ball with $k<n$, define $\pi_{\le n}(T)(X)$
600
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   456
to be the set of continuous maps from $X$ to $T$.
601
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   457
When $X$ is an $n$-ball, define $\pi_{\le n}(T)(X)$ to be homotopy classes (rel boundary) of such maps.
600
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   458
Define boundary restrictions and gluing in the obvious way.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   459
If $\rho:E\to X$ is a pinched product and $f:X\to T$ is a $k$-morphism,
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   460
define the product morphism $\rho^*(f)$ to be $f\circ\rho$.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   461
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   462
We can also define an $A_\infty$ version $\pi_{\le n}^\infty(T)$ of the fundamental $n$-groupoid.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   463
For $X$ an $n$-ball define $\pi_{\le n}^\infty(T)(X)$ to be the space of all maps from $X$ to $T$
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   464
(if we are enriching over spaces) or the singular chains on that space (if we are enriching over chain complexes).
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   465
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   466
601
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   467
\subsection{Example (string diagrams)}
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   468
Fix a `traditional' $n$-category $C$ with strong duality (e.g.\ a pivotal 2-category).
600
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   469
Let $X$ be a $k$-ball and define $\cS_C(X)$ to be the set of $C$ string diagrams drawn on $X$;
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   470
that is, certain cell complexes embedded in $X$, with the codimension-$j$ cells labeled by $j$-morphisms of $C$.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   471
If $X$ is an $n$-ball, identify two such string diagrams if they evaluate to the same $n$-morphism of $C$.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   472
Boundary restrictions and gluing are again straightforward to define.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   473
Define product morphisms via product cell decompositions.
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   474
612
871dffc348ab bordism example
Scott Morrison <scott@tqft.net>
parents: 611
diff changeset
   475
\subsection{Example (bordism)}
871dffc348ab bordism example
Scott Morrison <scott@tqft.net>
parents: 611
diff changeset
   476
When $X$ is a $k$-ball with $k<n$, $\Bord^n(X)$ is the set of all $k$-dimensional
871dffc348ab bordism example
Scott Morrison <scott@tqft.net>
parents: 611
diff changeset
   477
submanifolds $W$ in $X\times \bbR^\infty$ which project to $X$ transversely
871dffc348ab bordism example
Scott Morrison <scott@tqft.net>
parents: 611
diff changeset
   478
to $\bd X$.
871dffc348ab bordism example
Scott Morrison <scott@tqft.net>
parents: 611
diff changeset
   479
For an $n$-ball $X$ define $\Bord^n(X)$ to be homeomorphism classes rel boundary of such $n$-dimensional submanifolds.
600
e9032f8dee24 Examples and misc.; quality of writing perhaps not so great.
Kevin Walker <kevin@canyon23.net>
parents: 599
diff changeset
   480
612
871dffc348ab bordism example
Scott Morrison <scott@tqft.net>
parents: 611
diff changeset
   481
There is an $A_\infty$ analogue enriched in topological spaces, where at the top level we take all such submanifolds, rather than homeomorphism classes. For each fixed $\bdy W \subset \bdy X \times \bbR^\infty$, we can topologize the set of submanifolds by ambient isotopy rel boundary.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   482
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   483
\subsection{The blob complex}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   484
\subsubsection{Decompositions of manifolds}
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   485
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   486
A \emph{ball decomposition} of $W$ is a 
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   487
sequence of gluings $M_0\to M_1\to\cdots\to M_m = W$ such that $M_0$ is a disjoint union of balls
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   488
$\du_a X_a$ and each $M_i$ is a manifold.
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   489
If $X_a$ is some component of $M_0$, its image in $W$ need not be a ball; $\bd X_a$ may have been glued to itself.
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   490
A {\it permissible decomposition} of $W$ is a map
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   491
\[
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   492
	\coprod_a X_a \to W,
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   493
\]
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   494
which can be completed to a ball decomposition $\du_a X_a = M_0\to\cdots\to M_m = W$.
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   495
A permissible decomposition is weaker than a ball decomposition; we forget the order in which the balls
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   496
are glued up to yield $W$, and just require that there is some non-pathological way to do this.
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   497
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   498
Given permissible decompositions $x = \{X_a\}$ and $y = \{Y_b\}$ of $W$, we say that $x$ is a refinement
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   499
of $y$, or write $x \le y$, if there is a ball decomposition $\du_a X_a = M_0\to\cdots\to M_m = W$
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   500
with $\du_b Y_b = M_i$ for some $i$.
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   501
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   502
\begin{defn}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   503
The poset $\cell(W)$ has objects the permissible decompositions of $W$, 
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   504
and a unique morphism from $x$ to $y$ if and only if $x$ is a refinement of $y$.
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   505
See Figure \ref{partofJfig} for an example.
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   506
\end{defn}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   507
598
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   508
This poset in fact has more structure, since we can glue together permissible decompositions of $W_1$ and $W_2$ to obtain a permissible decomposition of $W_1 \sqcup W_2$. 
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   509
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   510
An $n$-category $\cC$ determines 
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   511
a functor $\psi_{\cC;W}$ from $\cell(W)$ to the category of sets 
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   512
(possibly with additional structure if $k=n$).
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   513
Each $k$-ball $X$ of a decomposition $y$ of $W$ has its boundary decomposed into $k{-}1$-balls,
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   514
and there is a subset $\cC(X)\spl \subset \cC(X)$ of morphisms whose boundaries
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   515
are splittable along this decomposition.
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   516
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   517
\begin{defn}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   518
Define the functor $\psi_{\cC;W} : \cell(W) \to \Set$ as follows.
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   519
For a decomposition $x = \bigsqcup_a X_a$ in $\cell(W)$, $\psi_{\cC;W}(x)$ is the subset
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   520
\begin{equation*}
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   521
%\label{eq:psi-C}
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   522
	\psi_{\cC;W}(x) \subset \prod_a \cC(X_a)\spl
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   523
\end{equation*}
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   524
where the restrictions to the various pieces of shared boundaries amongst the cells
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   525
$X_a$ all agree (this is a fibered product of all the labels of $n$-cells over the labels of $n-1$-cells). When $k=n$, the `subset' and `product' in the above formula should be interpreted in the appropriate enriching category.
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   526
If $x$ is a refinement of $y$, the map $\psi_{\cC;W}(x) \to \psi_{\cC;W}(y)$ is given by the composition maps of $\cC$.
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   527
\end{defn}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   528
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   529
We will use the term `field on $W$' to refer to a point of this functor,
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   530
that is, a permissible decomposition $x$ of $W$ together with an element of $\psi_{\cC;W}(x)$.
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   531
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   532
632
771544392058 more intro
Kevin Walker <kevin@canyon23.net>
parents: 631
diff changeset
   533
\subsubsection{Colimits}
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   534
\nn{Motivation: How can we extend an $n$-category from balls to arbitrary manifolds?}
628
4cce595ae1d3 adding Gerstenhaber-Voronov, explicitly not proving the mapping spaces result, and slight tweaks
Scott Morrison <scott@tqft.net>
parents: 627
diff changeset
   535
\nn{Mention that the axioms for $n$-categories can be stated in terms of decompositions of balls?}
608
455106e40a61 minor, during call
Scott Morrison <scott@tqft.net>
parents: 607
diff changeset
   536
\nn{Explain codimension colimits here too}
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   537
598
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   538
We can now give a straightforward but rather abstract definition of the blob complex of an $n$-manifold $W$
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   539
with coefficients in the $n$-category $\cC$ as the homotopy colimit along $\cell(W)$
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   540
of the functor $\psi_{\cC; W}$ described above. We write this as $\clh{\cC}(W)$.
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   541
599
ae1ee41f20dd various
Scott Morrison <scott@tqft.net>
parents: 598
diff changeset
   542
An explicit realization of the homotopy colimit is provided by the simplices of the functor $\psi_{\cC; W}$. That is, $$\clh{\cC}(W) = \DirectSum_{\bar{x}} \psi_{\cC; W}(x_0)[m],$$ where $\bar{x} = x_0 \leq \cdots \leq x_m$ is a simplex in $\cell(W)$. The differential acts on $(\bar{x},a)$ (here $a \in \psi_{\cC; W}(x_0)$) as
ae1ee41f20dd various
Scott Morrison <scott@tqft.net>
parents: 598
diff changeset
   543
$$\bdy (\bar{x},a) = (\bar{x}, \bdy a) + (-1)^{\deg a} \left( (d_0 \bar{x}, g(a)) + \sum_{i=1}^m (-1)^i (d_i \bar{x}, a) \right)$$
ae1ee41f20dd various
Scott Morrison <scott@tqft.net>
parents: 598
diff changeset
   544
where $g$ is the gluing map from $x_0$ to $x_1$, and $d_i \bar{x}$ denotes the $i$-th face of the simplex $\bar{x}$.
598
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   545
628
4cce595ae1d3 adding Gerstenhaber-Voronov, explicitly not proving the mapping spaces result, and slight tweaks
Scott Morrison <scott@tqft.net>
parents: 627
diff changeset
   546
Alternatively, we can take advantage of the product structure on $\cell(W)$ to realize the homotopy colimit via the cone-product polyhedra in $\cell(W)$. A cone-product polyhedra is obtained from a point by successively taking the cone or taking the product with another cone-product polyhedron. Just as simplices correspond to linear directed graphs, cone-product polyheda correspond to directed trees: taking cone adds a new root before the existing root, and taking product identifies the roots of several trees. The `local homotopy colimit' is then defined according to the same formula as above, but with $\bar{x}$ a cone-product polyhedron in $\cell(W)$. The differential acts on $(\bar{x},a)$ both on $a$ and on $\bar{x}$, applying the appropriate gluing map to $a$ when required.
601
6bfa35fb758a minor changes to cone-product polyhedra discussion
Scott Morrison <scott@tqft.net>
parents: 600
diff changeset
   547
A Eilenberg-Zilber subdivision argument shows this is the same as the usual realization.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   548
605
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   549
%When $\cC$ is a topological $n$-category,
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   550
%the flexibility available in the construction of a homotopy colimit allows
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   551
%us to give a much more explicit description of the blob complex which we'll write as $\bc_*(W; \cC)$.
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   552
%\todo{either need to explain why this is the same, or significantly rewrite this section}
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   553
When $\cC$ is the topological $n$-category based on string diagrams for a traditional
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   554
$n$-category $C$,
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   555
one can show \cite{1009.5025} that the above two constructions of the homotopy colimit
606
Kevin Walker <kevin@canyon23.net>
parents: 605
diff changeset
   556
are equivalent to the more concrete construction which we describe next, and which we denote $\bc_*(W; \cC)$.
Kevin Walker <kevin@canyon23.net>
parents: 605
diff changeset
   557
Roughly speaking, the generators of $\bc_k(W; \cC)$ are string diagrams on $W$ together with
605
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   558
a configuration of $k$ balls (or ``blobs") in $W$ whose interiors are pairwise disjoint or nested.
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   559
The restriction of the string diagram to innermost blobs is required to be ``null" in the sense that
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   560
it evaluates to a zero $n$-morphism of $C$.
78db9976b145 intro to more concrete \bc_* definition and misc
Kevin Walker <kevin@canyon23.net>
parents: 604
diff changeset
   561
The next few paragraphs describe this in more detail.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   562
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   563
We say a collection of balls $\{B_i\}$ in a manifold $W$ is \emph{permissible}
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   564
if there exists a permissible decomposition $M_0\to\cdots\to M_m = W$ such that
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   565
each $B_i$ appears as a connected component of one of the $M_j$. Note that this allows the balls to be pairwise either disjoint or nested. Such a collection of balls cuts $W$ into pieces, the connected components of $W \setminus \bigcup \bdy B_i$. These pieces need not be manifolds, but they do automatically have permissible decompositions.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   566
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   567
The $k$-blob group $\bc_k(W; \cC)$ is generated by the $k$-blob diagrams. A $k$-blob diagram consists of
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   568
\begin{itemize}
608
455106e40a61 minor, during call
Scott Morrison <scott@tqft.net>
parents: 607
diff changeset
   569
\item a permissible collection of $k$ embedded balls, and
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   570
\item for each resulting piece of $W$, a field,
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   571
\end{itemize}
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   572
such that for any innermost blob $B$, the field on $B$ goes to zero under the gluing map from $\cC$. We call such a field a `null field on $B$'.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   573
608
455106e40a61 minor, during call
Scott Morrison <scott@tqft.net>
parents: 607
diff changeset
   574
The differential acts on a $k$-blob diagram by summing over ways to forget one of the $k$ blobs, with alternating signs.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   575
598
20de3d710f77 writing inconclusively about homotopy colimits, but have to run
Scott Morrison <scott@tqft.net>
parents: 597
diff changeset
   576
We now spell this out for some small values of $k$. For $k=0$, the $0$-blob group is simply fields on $W$. For $k=1$, a generator consists of a field on $W$ and a ball, such that the restriction of the field to that ball is a null field. The differential simply forgets the ball. Thus we see that $H_0$ of the blob complex is the quotient of fields by fields which are null on some ball.
580
99611dfed1f3 k-blobs for small k, and blob cochains
Scott Morrison <scott@tqft.net>
parents: 579
diff changeset
   577
99611dfed1f3 k-blobs for small k, and blob cochains
Scott Morrison <scott@tqft.net>
parents: 579
diff changeset
   578
For $k=2$, we have a two types of generators; they each consists of a field $f$ on $W$, and two balls $B_1$ and $B_2$. In the first case, the balls are disjoint, and $f$ restricted to either of the $B_i$ is a null field. In the second case, the balls are properly nested, say $B_1 \subset B_2$, and $f$ restricted to $B_1$ is null. Note that this implies that $f$ restricted to $B_2$ is also null, by the associativity of the gluing operation. This ensures that the differential is well-defined.
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   579
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   580
\section{Properties of the blob complex}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   581
\subsection{Formal properties}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   582
\label{sec:properties}
602
109ecc26c50d writing intro; just an expanded version of the existing notes, feel free to savage
Scott Morrison <scott@tqft.net>
parents: 601
diff changeset
   583
The blob complex enjoys the following list of formal properties. The first three are immediate from the definitions.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   584
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   585
\begin{property}[Functoriality]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   586
\label{property:functoriality}%
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   587
The blob complex is functorial with respect to homeomorphisms.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   588
That is, 
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   589
for a fixed $n$-category $\cC$, the association
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   590
\begin{equation*}
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   591
X \mapsto \bc_*(X; \cC)
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   592
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   593
is a functor from $n$-manifolds and homeomorphisms between them to chain 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   594
complexes and isomorphisms between them.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   595
\end{property}
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   596
As a consequence, there is an action of $\Homeo(X)$ on the chain complex $\bc_*(X; \cC)$; 
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   597
this action is extended to all of $C_*(\Homeo(X))$ in Theorem \ref{thm:CH} below.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   598
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   599
\begin{property}[Disjoint union]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   600
\label{property:disjoint-union}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   601
The blob complex of a disjoint union is naturally isomorphic to the tensor product of the blob complexes.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   602
\begin{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   603
\bc_*(X_1 \du X_2) \iso \bc_*(X_1) \tensor \bc_*(X_2)
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   604
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   605
\end{property}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   606
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   607
If an $n$-manifold $X$ contains $Y \sqcup Y^\text{op}$ (we allow $Y = \eset$) as a codimension $0$ submanifold of its boundary, 
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   608
write $X \bigcup_{Y}\selfarrow$ for the manifold obtained by gluing together $Y$ and $Y^\text{op}$.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   609
\begin{property}[Gluing map]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   610
\label{property:gluing-map}%
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   611
%If $X_1$ and $X_2$ are $n$-manifolds, with $Y$ a codimension $0$-submanifold of $\bdy X_1$, and $Y^{\text{op}}$ a codimension $0$-submanifold of $\bdy X_2$, there is a chain map
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   612
%\begin{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   613
%\gl_Y: \bc_*(X_1) \tensor \bc_*(X_2) \to \bc_*(X_1 \cup_Y X_2).
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   614
%\end{equation*}
607
6f0ad8c4f8e2 minor, during call
Scott Morrison <scott@tqft.net>
parents: 606
diff changeset
   615
Given a gluing $X \to X \bigcup_{Y}\selfarrow$, there is
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   616
a map
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   617
\[
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   618
	\bc_*(X) \to \bc_*(X \bigcup_{Y}\selfarrow),
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   619
\]
574
e5ab1b074d88 minor edits and cleanup
Scott Morrison <scott@tqft.net>
parents: 573
diff changeset
   620
natural with respect to homeomorphisms, and associative with respect to iterated gluings.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   621
\end{property}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   622
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   623
\begin{property}[Contractibility]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   624
\label{property:contractibility}%
589
14b7d867e423 a few changes, maybe bad ones...
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   625
The blob complex on an $n$-ball is contractible in the sense 
14b7d867e423 a few changes, maybe bad ones...
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   626
that it is homotopic to its $0$-th homology, and this is just the vector space associated to the ball by the $n$-category.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   627
\begin{equation*}
589
14b7d867e423 a few changes, maybe bad ones...
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   628
\xymatrix{\bc_*(B^n;\cC) \ar[r]^(0.4){\iso}_(0.4){\text{qi}} & H_0(\bc_*(B^n;\cC)) \ar[r]^(0.6)\iso & \cC(B^n)}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   629
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   630
\end{property}
627
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   631
%\nn{maybe should say something about the $A_\infty$ case}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   632
583
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   633
\begin{proof}(Sketch)
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   634
For $k\ge 1$, the contracting homotopy sends a $k$-blob diagram to the $(k{+}1)$-blob diagram
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   635
obtained by adding an outer $(k{+}1)$-st blob consisting of all $B^n$.
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   636
For $k=0$ we choose a splitting $s: H_0(\bc_*(B^n)) \to \bc_0(B^n)$ and send 
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   637
$x\in \bc_0(B^n)$ to $x - s([x])$, where $[x]$ denotes the image of $x$ in $H_0(\bc_*(B^n))$.
Kevin Walker <kevin@canyon23.net>
parents: 582
diff changeset
   638
\end{proof}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   639
627
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   640
If $\cC$ is an $A-\infty$ $n$-category then $\bc_*(B^n;\cC)$ is still homotopy equivalent to $\cC(B^n)$,
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   641
but this is no longer concentrated in degree zero.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   642
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   643
\subsection{Specializations}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   644
\label{sec:specializations}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   645
615
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   646
The blob complex has several important special cases.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   647
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   648
\begin{thm}[Skein modules]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   649
\label{thm:skein-modules}
589
14b7d867e423 a few changes, maybe bad ones...
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   650
\nn{Plain n-categories only?}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   651
The $0$-th blob homology of $X$ is the usual 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   652
(dual) TQFT Hilbert space (a.k.a.\ skein module) associated to $X$
589
14b7d867e423 a few changes, maybe bad ones...
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   653
by $\cC$.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   654
\begin{equation*}
589
14b7d867e423 a few changes, maybe bad ones...
Scott Morrison <scott@tqft.net>
parents: 577
diff changeset
   655
H_0(\bc_*(X;\cC)) \iso A_{\cC}(X)
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   656
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   657
\end{thm}
599
ae1ee41f20dd various
Scott Morrison <scott@tqft.net>
parents: 598
diff changeset
   658
This follows from the fact that the $0$-th homology of a homotopy colimit is the usual colimit, or directly from the explicit description of the blob complex.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   659
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   660
\begin{thm}[Hochschild homology when $X=S^1$]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   661
\label{thm:hochschild}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   662
The blob complex for a $1$-category $\cC$ on the circle is
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   663
quasi-isomorphic to the Hochschild complex.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   664
\begin{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   665
\xymatrix{\bc_*(S^1;\cC) \ar[r]^(0.47){\iso}_(0.47){\text{qi}} & \HC_*(\cC).}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   666
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   667
\end{thm}
628
4cce595ae1d3 adding Gerstenhaber-Voronov, explicitly not proving the mapping spaces result, and slight tweaks
Scott Morrison <scott@tqft.net>
parents: 627
diff changeset
   668
This theorem is established by extending the statement to bimodules as well as categories, then verifying that the universal properties of Hochschild homology also hold for $\bc_*(S^1; -)$.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   669
615
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   670
\begin{thm}[Mapping spaces]
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   671
\label{thm:map-recon}
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   672
Let $\pi^\infty_{\le n}(T)$ denote the $A_\infty$ $n$-category based on maps 
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   673
$B^n \to T$.
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   674
(The case $n=1$ is the usual $A_\infty$-category of paths in $T$.)
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   675
Then 
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   676
$$\bc_*(X; \pi^\infty_{\le n}(T)) \simeq \CM{X}{T}.$$
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   677
\end{thm}
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   678
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   679
This says that we can recover (up to homotopy) the space of maps to $T$ via blob homology from local data. 
628
4cce595ae1d3 adding Gerstenhaber-Voronov, explicitly not proving the mapping spaces result, and slight tweaks
Scott Morrison <scott@tqft.net>
parents: 627
diff changeset
   680
Note that there is no restriction on the connectivity of $T$ as there is for the corresponding result in topological chiral homology \cite[Theorem 3.8.6]{0911.0018}. The result was proved in \cite[\S 7.3]{1009.5025}.
615
222da6df3edc various minor, and moving mapping spaces to 'specializations'
Scott Morrison <scott@tqft.net>
parents: 614
diff changeset
   681
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   682
\subsection{Structure of the blob complex}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   683
\label{sec:structure}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   684
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   685
In the following $\CH{X} = C_*(\Homeo(X))$ is the singular chain complex of the space of homeomorphisms of $X$, fixed on $\bdy X$.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   686
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   687
\begin{thm}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   688
\label{thm:CH}\label{thm:evaluation}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   689
There is a chain map
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   690
\begin{equation*}
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   691
e_X: \CH{X} \tensor \bc_*(X) \to \bc_*(X)
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   692
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   693
such that
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   694
\begin{enumerate}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   695
\item Restricted to $CH_0(X)$ this is the action of homeomorphisms described in Property \ref{property:functoriality}. 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   696
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   697
\item For
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   698
any codimension $0$-submanifold $Y \sqcup Y^\text{op} \subset \bdy X$ the following diagram
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   699
(using the gluing maps described in Property \ref{property:gluing-map}) commutes (up to homotopy).
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   700
\begin{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   701
\xymatrix@C+0.3cm{
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   702
     \CH{X} \tensor \bc_*(X)
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   703
        \ar[r]_{e_{X}}  \ar[d]^{\gl^{\Homeo}_Y \tensor \gl_Y}  &
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   704
            \bc_*(X) \ar[d]_{\gl_Y} \\
611
fd6e53389f2c futzing with preambles
Scott Morrison <scott@tqft.net>
parents: 608
diff changeset
   705
     \CH{X \bigcup_Y \selfarrow} \tensor \bc_*(X \bigcup_Y \selfarrow) \ar[r]_<<<<<<<{e_{(X \bigcup_Y \scalebox{0.5}{\selfarrow})}}    & \bc_*(X \bigcup_Y \selfarrow)
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   706
}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   707
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   708
\end{enumerate}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   709
609
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   710
Further, this map is associative, in the sense that the following diagram commutes (up to homotopy).
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   711
\begin{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   712
\xymatrix{
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   713
\CH{X} \tensor \CH{X} \tensor \bc_*(X) \ar[r]^<<<<<{\id \tensor e_X} \ar[d]^{\compose \tensor \id} & \CH{X} \tensor \bc_*(X) \ar[d]^{e_X} \\
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   714
\CH{X} \tensor \bc_*(X) \ar[r]^{e_X} & \bc_*(X)
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   715
}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   716
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   717
\end{thm}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   718
609
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   719
\begin{proof}(Sketch.)
622
dda6d3a00b09 minor tweaks in sketch proofs
Scott Morrison <scott@tqft.net>
parents: 620
diff changeset
   720
We introduce yet another homotopy equivalent version of
609
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   721
the blob complex, $\cB\cT_*(X)$.
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   722
Blob diagrams have a natural topology, which is ignored by $\bc_*(X)$.
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   723
In $\cB\cT_*(X)$ we take this topology into account, treating the blob diagrams as something
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   724
analogous to a simplicial space (but with cone-product polyhedra replacing simplices).
622
dda6d3a00b09 minor tweaks in sketch proofs
Scott Morrison <scott@tqft.net>
parents: 620
diff changeset
   725
More specifically, a generator of $\cB\cT_k(X)$ is an $i$-parameter family of $j$-blob diagrams, with $i+j=k$. An essential step in the proof of this equivalence is a result to the effect that a $k$-parameter family of homeomorphism can be localized to at most $k$ small sets.
609
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   726
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   727
With this alternate version in hand, it is straightforward to prove the theorem.
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   728
The evaluation map $\Homeo(X)\times BD_j(X)\to BD_j(X)$
614
ab6bfadab93e oops, unbreaking stuff
Scott Morrison <scott@tqft.net>
parents: 613
diff changeset
   729
induces a chain map $\CH{X}\tensor C_*(BD_j(X))\to C_*(BD_j(X))$
ab6bfadab93e oops, unbreaking stuff
Scott Morrison <scott@tqft.net>
parents: 613
diff changeset
   730
and hence a map $e_X: \CH{X} \tensor \cB\cT_*(X) \to \cB\cT_*(X)$.
609
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   731
It is easy to check that $e_X$ thus defined has the desired properties.
ddf9c4daf210 proof for CH_* action
Kevin Walker <kevin@canyon23.net>
parents: 608
diff changeset
   732
\end{proof}
575
4e6f00784bd3 writing on the plane to kyoto: the blob complex as homotopy colimit and explicitly (but not why these are the same), and copy and paste of statements of axioms
Scott Morrison <scott@tqft.net>
parents: 574
diff changeset
   733
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   734
\begin{thm}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   735
\label{thm:blobs-ainfty}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   736
Let $\cC$ be  a topological $n$-category.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   737
Let $Y$ be an $n{-}k$-manifold. 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   738
There is an $A_\infty$ $k$-category $\bc_*(Y;\cC)$, defined on each $m$-ball $D$, for $0 \leq m < k$, 
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   739
to be the set $$\bc_*(Y;\cC)(D) = \cl{\cC}(Y \times D)$$ and on $k$-balls $D$ to be the set 
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   740
$$\bc_*(Y;\cC)(D) = \bc_*(Y \times D; \cC).$$ 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   741
(When $m=k$ the subsets with fixed boundary conditions form a chain complex.) 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   742
These sets have the structure of an $A_\infty$ $k$-category, with compositions coming from the gluing map in 
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   743
Property \ref{property:gluing-map} and with the action of families of homeomorphisms given in Theorem \ref{thm:evaluation}.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   744
\end{thm}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   745
\begin{rem}
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   746
When $Y$ is a point this produces an $A_\infty$ $n$-category from a topological $n$-category, 
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   747
which can be thought of as a free resolution.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   748
\end{rem}
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   749
This result is described in more detail as Example 6.2.8 of \cite{1009.5025}.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   750
618
Kevin Walker <kevin@canyon23.net>
parents: 617
diff changeset
   751
Fix a topological $n$-category $\cC$, which we'll now omit from notation.
Kevin Walker <kevin@canyon23.net>
parents: 617
diff changeset
   752
Recall that for any $(n-1)$-manifold $Y$, the blob complex $\bc_*(Y)$ is naturally an $A_\infty$ category.
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   753
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   754
\begin{thm}[Gluing formula]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   755
\label{thm:gluing}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   756
\mbox{}% <-- gets the indenting right
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   757
\begin{itemize}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   758
\item For any $n$-manifold $X$, with $Y$ a codimension $0$-submanifold of its boundary, the blob complex of $X$ is naturally an
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   759
$A_\infty$ module for $\bc_*(Y)$.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   760
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   761
\item The blob complex of a glued manifold $X\bigcup_Y \selfarrow$ is the $A_\infty$ self-tensor product of
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   762
$\bc_*(X)$ as an $\bc_*(Y)$-bimodule:
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   763
\begin{equation*}
585
e2996d7b4e6c various, mostly working on axioms
Scott Morrison <scott@tqft.net>
parents: 584
diff changeset
   764
\bc_*(X\bigcup_Y \selfarrow) \simeq \bc_*(X) \Tensor^{A_\infty}_{\mathclap{\bc_*(Y)}} \selfarrow
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   765
\end{equation*}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   766
\end{itemize}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   767
\end{thm}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   768
618
Kevin Walker <kevin@canyon23.net>
parents: 617
diff changeset
   769
\begin{proof} (Sketch.)
620
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   770
The $A_\infty$ action of $\bc_*(Y)$ follows from the naturality of the blob complex with respect to gluing
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   771
and the $C_*(\Homeo(-))$ action of Theorem \ref{thm:evaluation}.
618
Kevin Walker <kevin@canyon23.net>
parents: 617
diff changeset
   772
620
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   773
Let $T_*$ denote the self tensor product of $\bc_*(X)$, which is a homotopy colimit.
622
dda6d3a00b09 minor tweaks in sketch proofs
Scott Morrison <scott@tqft.net>
parents: 620
diff changeset
   774
There is a tautological map from the 0-simplices of $T_*$ to $\bc_*(X\bigcup_Y \selfarrow)$,
620
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   775
and this map can be extended to a chain map on all of $T_*$ by sending the higher simplices to zero.
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   776
Constructing a homotopy inverse to this natural map invloves making various choices, but one can show that the
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   777
choices form contractible subcomplexes and apply the acyclic models theorem.
618
Kevin Walker <kevin@canyon23.net>
parents: 617
diff changeset
   778
\end{proof}
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   779
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   780
We next describe the blob complex for product manifolds, in terms of the $A_\infty$ blob complex of the $A_\infty$ $n$-categories constructed as above.
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   781
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   782
\begin{thm}[Product formula]
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   783
\label{thm:product}
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   784
Let $W$ be a $k$-manifold and $Y$ be an $n-k$ manifold.
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   785
Let $\cC$ be an $n$-category.
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   786
Let $\bc_*(Y;\cC)$ be the $A_\infty$ $k$-category associated to $Y$ as above.
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   787
Then
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   788
\[
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   789
	\bc_*(Y\times W; \cC) \simeq \clh{\bc_*(Y;\cC)}(W).
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   790
\]
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   791
\end{thm}
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   792
The statement can be generalized to arbitrary fibre bundles, and indeed to arbitrary maps
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   793
(see \cite[\S7.1]{1009.5025}).
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   794
620
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   795
\begin{proof} (Sketch.)
623
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   796
The proof is similar to that of the second part of Theorem \ref{thm:gluing}.
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   797
There is a natural map from the 0-simplices of $\clh{\bc_*(Y;\cC)}(W)$ to $\bc_*(Y\times W; \cC)$,
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   798
given by reinterpreting a decomposition of $W$ labeled by $(n{-}k)$-morphisms of $\bc_*(Y; \cC)$ as a blob 
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   799
diagram on $W\times Y$.
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   800
This map can be extended to all of $\clh{\bc_*(Y;\cC)}(W)$ by sending higher simplices to zero.
620
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   801
623
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   802
To construct the homotopy inverse of the above map one first shows that
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   803
$\bc_*(Y\times W; \cC)$ is homotopy equivalent to the subcomplex generated by blob diagrams which
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   804
are small with respect any fixed open cover of $Y\times W$.
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   805
For a sufficiently fine open cover the generators of this ``small" blob complex are in the image of the map
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   806
of the previous paragraph, and furthermore the preimage in $\clh{\bc_*(Y;\cC)}(W)$ of such small diagrams
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   807
lie in contractible subcomplexes.
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   808
A standard acyclic models argument now constructs the homotopy inverse.
620
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   809
\end{proof}
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   810
28b016b716b1 adding some proof sketches
Kevin Walker <kevin@canyon23.net>
parents: 619
diff changeset
   811
%\nn{Theorem \ref{thm:product} is proved in \S \ref{ss:product-formula}, and Theorem \ref{thm:gluing} in \S \ref{sec:gluing}.}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   812
623
53aed9fdfcd9 proof of product thm
Kevin Walker <kevin@canyon23.net>
parents: 622
diff changeset
   813
\section{Deligne conjecture for $n$-categories}
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   814
\label{sec:applications}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   815
625
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   816
Let $M$ and $N$ be $n$-manifolds with common boundary $E$.
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   817
Recall (Theorem \ref{thm:gluing}) that the $A_\infty$ category $A = \bc_*(E)$
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   818
acts on $\bc_*(M)$ and $\bc_*(N)$.
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   819
Let $\hom_A(\bc_*(M), \bc_*(N))$ denote the chain complex of $A_\infty$ module maps
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   820
from $\bc_*(M)$ to $\bc_*(N)$.
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   821
Let $R$ be another $n$-manifold with boundary $-E$.
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   822
There is a chain map
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   823
\[
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   824
	\hom_A(\bc_*(M), \bc_*(N)) \ot \bc_*(M) \ot_A \bc_*(R) \to \bc_*(N) \ot_A \bc_*(R) .
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   825
\]
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   826
We think of this map as being associated to a surgery which cuts $M$ out of $M\cup_E R$ and
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   827
replaces it with $N$, yielding $N\cup_E R$.
626
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   828
(This is a more general notion of surgery that usual --- $M$ and $N$ can be any manifolds
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   829
which share a common boundary.)
627
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   830
In analogy to Hochschild cochains, we will call elements of $\hom_A(\bc_*(M), \bc_*(N))$ ``blob cochains".
625
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   831
626
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   832
Recall (Theorem \ref{thm:evaluation}) that chains on the space of mapping cylinders also act on the 
625
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   833
blob complex.
626
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   834
An $n$-dimensional surgery cylinder is 
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   835
defined to be a sequence of mapping cylinders and surgeries (Figure \ref{delfig2}), 
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   836
modulo changing the order of distant surgeries, and conjugating a submanifold not modified in a surgery by a homeomorphism. 
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   837
One can associated to this data an $(n{+}1)$-manifold with a foliation by intervals,
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   838
and the relations we impose correspond to homeomorphisms of the $(n{+}1)$-manifolds
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   839
which preserve the foliation.
625
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   840
626
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   841
Surgery cylinders form an operad, by gluing the outer boundary of one cylinder into an inner boundary of another.
625
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   842
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   843
\begin{thm}[Higher dimensional Deligne conjecture]
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   844
\label{thm:deligne}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   845
The singular chains of the $n$-dimensional surgery cylinder operad act on blob cochains.
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   846
\end{thm}
577
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   847
627
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   848
More specifically, let $M_0, N_0, \ldots, M_k, N_k$ be $n$-manifolds and let $SC^n_{\overline{M}, \overline{N}}$
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   849
denote the component of the operad with outer boundary $M_0\cup N_0$ and inner boundaries
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   850
$M_1\cup N_1,\ldots, M_k\cup N_k$.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   851
Then there is a collection of chain maps
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   852
\begin{multline*}
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   853
	C_*(SC^n_{\overline{M}, \overline{N}})\otimes \hom(\bc_*(M_1), \bc_*(N_1))\otimes\cdots \\
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   854
		\otimes \hom(\bc_*(M_{k}), \bc_*(N_{k})) \to  \hom(\bc_*(M_0), \bc_*(N_0))
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   855
\end{multline*}
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   856
which satisfy the operad compatibility conditions.
577
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   857
595
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   858
\begin{proof}
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   859
We have already defined the action of mapping cylinders, in Theorem \ref{thm:evaluation}, 
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   860
and the action of surgeries is just composition of maps of $A_\infty$-modules. 
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   861
We only need to check that the relations of the $n$-SC operad are satisfied. 
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   862
This follows from the locality of the action of $\CH{-}$ (i.e., that it is compatible with gluing) and associativity.
595
9c708975b61b making pinched products axioms terser, and writing a short proof of the higher deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 594
diff changeset
   863
\end{proof} 
577
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   864
627
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   865
Consider the special case where $n=1$ and all of the $M_i$'s and $N_i$'s are 1-balls.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   866
We have that $SC^1_{\overline{M}, \overline{N}}$ is homotopy equivalent to the little
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   867
disks operad and $\hom(\bc_*(M_i), \bc_*(N_i))$ is homotopy equivalent to Hochschild cochains.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   868
This special case is just the usual Deligne conjecture
628
4cce595ae1d3 adding Gerstenhaber-Voronov, explicitly not proving the mapping spaces result, and slight tweaks
Scott Morrison <scott@tqft.net>
parents: 627
diff changeset
   869
(see \cite{hep-th/9403055, MR1328534, MR1805894, MR1805923, MR2064592}).
627
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   870
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   871
The general case when $n=1$ goes beyond the original Deligne conjecture, as the $M_i$'s and $N_i$'s
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   872
could be disjoint unions of 1-balls and circles, and the surgery cylinders could be high genus surfaces.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   873
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   874
If all of the $M_i$'s and $N_i$'s are $n$-balls, then $SC^n_{\overline{M}, \overline{N}}$
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   875
contains a copy of the little $(n{+}1)$-balls operad.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   876
Thus the little $(n{+}1)$-balls operad acts on blob cochains of the $n$-ball.
b0ed73b141d8 finish deligne section; misc
Kevin Walker <kevin@canyon23.net>
parents: 626
diff changeset
   877
577
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   878
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   879
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   880
%% == end of paper:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   881
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   882
%% Optional Materials and Methods Section
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   883
%% The Materials and Methods section header will be added automatically.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   884
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   885
%% Enter any subheads and the Materials and Methods text below.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   886
%\begin{materials}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   887
% Materials text
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   888
%\end{materials}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   889
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   890
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   891
%% Optional Appendix or Appendices
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   892
%% \appendix Appendix text...
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   893
%% or, for appendix with title, use square brackets:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   894
%% \appendix[Appendix Title]
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   895
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   896
\begin{acknowledgments}
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   897
It is a pleasure to acknowledge helpful conversations with 
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   898
Kevin Costello,
625
c6d069b8f931 starting on Deligne section
Kevin Walker <kevin@canyon23.net>
parents: 624
diff changeset
   899
Michael Freedman,
610
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   900
Justin Roberts,
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   901
and
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   902
Peter Teichner.
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   903
We also thank the Aspen Center for Physics for providing a pleasant and productive
Kevin Walker <kevin@canyon23.net>
parents: 609
diff changeset
   904
environment during the last stages of this project.
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   905
\end{acknowledgments}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   906
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   907
%% PNAS does not support submission of supporting .tex files such as BibTeX.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   908
%% Instead all references must be included in the article .tex document. 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   909
%% If you currently use BibTeX, your bibliography is formed because the 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   910
%% command \verb+\bibliography{}+ brings the <filename>.bbl file into your
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   911
%% .tex document. To conform to PNAS requirements, copy the reference listings
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   912
%% from your .bbl file and add them to the article .tex file, using the
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   913
%% bibliography environment described above.  
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   914
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   915
%%  Contact pnas@nas.edu if you need assistance with your
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   916
%%  bibliography.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   917
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   918
% Sample bibliography item in PNAS format:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   919
%% \bibitem{in-text reference} comma-separated author names up to 5,
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   920
%% for more than 5 authors use first author last name et al. (year published)
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   921
%% article title  {\it Journal Name} volume #: start page-end page.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   922
%% ie,
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   923
% \bibitem{Neuhaus} Neuhaus J-M, Sitcher L, Meins F, Jr, Boller T (1991) 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   924
% A short C-terminal sequence is necessary and sufficient for the
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   925
% targeting of chitinases to the plant vacuole. 
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   926
% {\it Proc Natl Acad Sci USA} 88:10362-10366.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   927
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   928
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   929
%% Enter the largest bibliography number in the facing curly brackets
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   930
%% following \begin{thebibliography}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   931
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   932
%%%% BIBTEX
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   933
\bibliographystyle{alpha}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   934
\bibliography{../bibliography/bibliography}
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   935
572
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   936
%%%% non-BIBTEX
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   937
%\begin{thebibliography}{}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   938
%
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   939
%\end{thebibliography}
e0f5ec582725 incorporating statements of results in PNAS article
Scott Morrison <scott@tqft.net>
parents: 571
diff changeset
   940
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   941
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   942
\end{article}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   943
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   944
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   945
%% Adding Figure and Table References
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   946
%% Be sure to add figures and tables after \end{article}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   947
%% and before \end{document}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   948
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   949
%% For figures, put the caption below the illustration.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   950
%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   951
%% \begin{figure}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   952
%% \caption{Almost Sharp Front}\label{afoto}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   953
%% \end{figure}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   954
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   955
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   956
\begin{figure}
594
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   957
\centering
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   958
\begin{tikzpicture}[%every label/.style={green}
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   959
]
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   960
\node[fill=black, circle, label=below:$E$, inner sep=1.5pt](S) at (0,0) {};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   961
\node[fill=black, circle, label=above:$E$, inner sep=1.5pt](N) at (0,2) {};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   962
\draw (S) arc  (-90:90:1);
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   963
\draw (N) arc  (90:270:1);
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   964
\node[left] at (-1,1) {$B_1$};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   965
\node[right] at (1,1) {$B_2$};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   966
\end{tikzpicture}
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   967
\caption{Combining two balls to get a full boundary.}\label{blah3}\end{figure}
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   968
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   969
\begin{figure}
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   970
\centering
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   971
\begin{tikzpicture}[%every label/.style={green},
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   972
				x=1.5cm,y=1.5cm]
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   973
\node[fill=black, circle, label=below:$E$, inner sep=2pt](S) at (0,0) {};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   974
\node[fill=black, circle, label=above:$E$, inner sep=2pt](N) at (0,2) {};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   975
\draw (S) arc  (-90:90:1);
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   976
\draw (N) arc  (90:270:1);
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   977
\draw (N) -- (S);
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   978
\node[left] at (-1/4,1) {$B_1$};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   979
\node[right] at (1/4,1) {$B_2$};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   980
\node at (1/6,3/2)  {$Y$};
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   981
\end{tikzpicture}
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   982
\caption{From two balls to one ball.}\label{blah5}\end{figure}
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   983
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   984
\begin{figure}
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   985
\begin{equation*}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   986
\mathfig{.23}{ncat/zz2}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   987
\end{equation*}
594
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   988
\caption{A small part of $\cell(W)$.}
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   989
\label{partofJfig}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   990
\end{figure}
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   991
577
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   992
\begin{figure}
626
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   993
%$$\mathfig{.4}{deligne/manifolds}$$
f83c27d2d210 more on deligne
Kevin Walker <kevin@canyon23.net>
parents: 625
diff changeset
   994
$$\mathfig{.4}{deligne/mapping-cylinders}$$
594
6945422bed13 adding some figures for the axioms
Scott Morrison <scott@tqft.net>
parents: 591
diff changeset
   995
\caption{An $n$-dimensional surgery cylinder.}\label{delfig2}
577
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   996
\end{figure}
9a60488cd2fc out of battery. writing a little about the deligne conjecture
Scott Morrison <scott@tqft.net>
parents: 575
diff changeset
   997
573
8378e03d3c7f starting on cell decompositions
Scott Morrison <scott@tqft.net>
parents: 572
diff changeset
   998
566
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
   999
%% For Tables, put caption above table
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1000
%%
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1001
%% Table caption should start with a capital letter, continue with lower case
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1002
%% and not have a period at the end
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1003
%% Using @{\vrule height ?? depth ?? width0pt} in the tabular preamble will
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1004
%% keep that much space between every line in the table.
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1005
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1006
%% \begin{table}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1007
%% \caption{Repeat length of longer allele by age of onset class}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1008
%% \begin{tabular}{@{\vrule height 10.5pt depth4pt  width0pt}lrcccc}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1009
%% table text
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1010
%% \end{tabular}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1011
%% \end{table}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1012
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1013
%% For two column figures and tables, use the following:
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1014
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1015
%% \begin{figure*}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1016
%% \caption{Almost Sharp Front}\label{afoto}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1017
%% \end{figure*}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1018
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1019
%% \begin{table*}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1020
%% \caption{Repeat length of longer allele by age of onset class}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1021
%% \begin{tabular}{ccc}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1022
%% table text
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1023
%% \end{tabular}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1024
%% \end{table*}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1025
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1026
\end{document}
33de88ae7b62 PNAS style files, and template
Scott Morrison <scott@tqft.net>
parents:
diff changeset
  1027