Optimal Reconstruction Codes with Given Reads in Multiple Burst-Substitutions Channels
Abstract
We study optimal reconstruction codes over the multiple-burst substitution channel. Our main contribution is establishing a trade-off between the error-correction capability of the code, the number of reads used in the reconstruction process, and the decoding list size. We show that over a channel that introduces at most bursts, we can use a length- code capable of correcting errors, with reads, and decoding with a list of size , where . In the process of proving this, we establish sharp asymptotic bounds on the size of error balls in the burst metric. More precisely, we prove a Johnson-type lower bound via Kahn's Theorem on large matchings in hypergraphs, and an upper bound via a novel variant of Kleitman's Theorem under the burst metric, which might be of independent interest. Beyond this main trade-off, we derive several related results using a variety of combinatorial techniques. In particular, along with tools from recent advances in discrete geometry, we improve the classical Gilbert-Varshamov bound in the asymptotic regime for multiple bursts, and determine the minimum redundancy required for reconstruction codes with polynomially many reads. We also propose an efficient list-reconstruction algorithm that achieves the above guarantees, based on a majority-with-threshold decoding scheme.
Cite
@article{arxiv.2506.12924,
title = {Optimal Reconstruction Codes with Given Reads in Multiple Burst-Substitutions Channels},
author = {Wenjun Yu and Yubo Sun and Zixiang Xu and Gennian Ge and Moshe Schwartz},
journal= {arXiv preprint arXiv:2506.12924},
year = {2025}
}