Title
Hypercontractivity on High Dimensional Expanders
Abstract
Hypercontractivity is one of the most powerful tools in Boolean function analysis. Originally studied over the discrete hypercube, recent years have seen increasing interest in extensions to settings like the p-biased cube, slice, or Grassmannian, where variants of hypercontractivity have found a number of breakthrough applications including the resolution of Khot's 2-2 Games Conjecture (Khot, Minzer, Safra FOCS 2018). In this work, we develop a new theory of hypercontractivity on high dimensional expanders (HDX), an important class of expanding complexes that has recently seen similarly impressive applications in both coding theory and approximate sampling. Our results lead to a new understanding of the structure of Boolean functions on HDX, including a tight analog of the KKL Theorem and a new characterization of non-expanding sets. Unlike previous settings satisfying hypercontractivity, HDX can be asymmetric, sparse, and very far from products, which makes the application of traditional proof techniques challenging. We handle these barriers with the introduction of two newtools of independent interest: a new explicit combinatorial Fourier basis for HDX that behaveswell under restriction, and a newlocal-to-global method for analyzing higher moments. Interestingly, unlike analogous second moment methods that apply equally across all types of expanding complexes, our tools rely inherently on simplicial structure. This suggests a new distinction among high dimensional expanders based upon their behavior beyond the second moment. This is an extended abstract. The full paper may be found at https://arxiv.org/abs/2111.09444.
Year
DOI
Venue
2022
10.1145/3519935.3520040
PROCEEDINGS OF THE 54TH ANNUAL ACM SIGACT SYMPOSIUM ON THEORY OF COMPUTING (STOC '22)
Keywords
DocType
ISSN
High Dimensional Expanders, Hypercontractivity, Small-Set Expansion
Conference
0737-8017
Citations 
PageRank 
References 
0
0.34
0
Authors
4
Name
Order
Citations
PageRank
Mitali Bafna101.01
Max Hopkins200.34
Tali Kaufman349938.33
Shachar Lovett452055.02