TY - GEN
T1 - High Rate Efficient Local List Decoding from HDX
AU - Dikstein, Yotam
AU - Hopkins, Max
AU - Pitassi, Toniann
AU - Impagliazzo, Russell
N1 - Publisher Copyright:
© 2026 Copyright held by the owner/author(s).
PY - 2026/6/9
Y1 - 2026/6/9
N2 - We construct the first (locally computable, approximately) locally list decodable codes with rate, efficiency, and error tolerance approaching the information theoretic limit, a core regime of interest for the complexity theoretic task of hardness amplification. Our algorithms run in polylogarithmic time and sub-logarithmic depth, which together with classic constructions in the unique decoding (low-noise) regime leads to the resolution of several long-standing problems in coding and complexity theory: 1. Near-optimally input-preserving hardness amplification (and corresponding fast PRGs) 2. Constant rate codes with log(N)-depth list decoding (RNC1) 3. Complexity-preserving distance amplification Our codes are built on the powerful theory of (local-spectral) high dimensional expanders (HDX). At a technical level, we make two key contributions. First, we introduce a new framework for (poly log(N)-round) belief propagation on HDX that leverages a mix of local correction and global expansion to control error build-up while maintaining high rate. Second, we introduce the notion of strongly explicit local routing on HDX, local algorithms that given any two target vertices, output a random path between them in only polylogarithmic time (and, preferably, sub-logarithmic depth). Constructing such schemes on certain coset HDX allows us to instantiate our otherwise combinatorial framework in polylogarithmic time and low depth, completing the result.
AB - We construct the first (locally computable, approximately) locally list decodable codes with rate, efficiency, and error tolerance approaching the information theoretic limit, a core regime of interest for the complexity theoretic task of hardness amplification. Our algorithms run in polylogarithmic time and sub-logarithmic depth, which together with classic constructions in the unique decoding (low-noise) regime leads to the resolution of several long-standing problems in coding and complexity theory: 1. Near-optimally input-preserving hardness amplification (and corresponding fast PRGs) 2. Constant rate codes with log(N)-depth list decoding (RNC1) 3. Complexity-preserving distance amplification Our codes are built on the powerful theory of (local-spectral) high dimensional expanders (HDX). At a technical level, we make two key contributions. First, we introduce a new framework for (poly log(N)-round) belief propagation on HDX that leverages a mix of local correction and global expansion to control error build-up while maintaining high rate. Second, we introduce the notion of strongly explicit local routing on HDX, local algorithms that given any two target vertices, output a random path between them in only polylogarithmic time (and, preferably, sub-logarithmic depth). Constructing such schemes on certain coset HDX allows us to instantiate our otherwise combinatorial framework in polylogarithmic time and low depth, completing the result.
KW - HDX
KW - high dimensional expanders
KW - PRG
KW - pseudorandom generators
UR - https://www.scopus.com/pages/publications/105042678924
U2 - 10.1145/3798129.3800886
DO - 10.1145/3798129.3800886
M3 - Conference contribution
AN - SCOPUS:105042678924
T3 - Proceedings of the Annual ACM Symposium on Theory of Computing
SP - 1789
EP - 1799
BT - STOC 2026 - Proceedings of the 58th Annual ACM Symposium on Theory of Computing
A2 - Bhaskara, Aditya
A2 - Czumaj, Artur
PB - Association for Computing Machinery
T2 - 58th Annual ACM Symposium on Theory of Computing, STOC 2026
Y2 - 22 June 2026 through 26 June 2026
ER -