Directional derivatives and higher order chain rules for abelian functor calculus
Abstract
In this paper, we consider abelian functor calculus, the calculus of functors of abelian categories established by the second author and McCarthy. We carefully construct a category of abelian categories and suitably homotopically defined functors, and show that this category, equipped with the directional derivative, is a cartesian differential category in the sense of Blute, Cockett, and Seely. This provides an abstract framework that makes certain analogies between classical and functor calculus explicit. Inspired by Huang, Marcantognini, and Young's chain rule for higher order directional derivatives of functions, we define a higher order directional derivative for functors of abelian categories. We show that our higher order directional derivative is related to the iterated partial directional derivatives of the second author and McCarthy by a Fa\`a di Bruno style formula. We obtain a higher order chain rule for our directional derivatives using a feature of the cartesian differential category structure, and with this provide a formulation for the th layers of the Taylor tower of a composition of functors in terms of the derivatives and directional derivatives of and , reminiscent of similar formulations for functors of spaces or spectra by Arone and Ching. Throughout, we provide explicit chain homotopy equivalences that tighten previously established quasi-isomorphisms for properties of abelian functor calculus.
Keywords
Cite
@article{arxiv.1610.01930,
title = {Directional derivatives and higher order chain rules for abelian functor calculus},
author = {Kristine Bauer and Brenda Johnson and Christina Osborne and Emily Riehl and Amelia Tebbe},
journal= {arXiv preprint arXiv:1610.01930},
year = {2017}
}
Comments
v2: final journal version with a number of clarifications and an expanded appendix written in response to the referee's report; 51 pages