Code-Weight Sphere Decoding
Abstract
Ultra-reliable low-latency communications (URLLC) demand high-performance error-correcting codes and decoders in the finite blocklength regime. This letter introduces a novel two-stage near-maximum likelihood (near-ML) decoding framework applicable to any linear block code. Our approach first employs a low-complexity initial decoder. If this initial stage fails a cyclic redundancy check, it triggers a second stage: the proposed code-weight sphere decoding (WSD). WSD iteratively refines the codeword estimate by exploring a localized sphere of candidates constructed from pre-computed low-weight codewords. This strategy adaptively minimizes computational overhead at high signal-to-noise ratios while achieving near-ML performance, especially for low-rate codes. Extensive simulations demonstrate that our two-stage decoder provides an excellent trade-off between decoding reliability and complexity, establishing it as a promising solution for next-generation URLLC systems.
Cite
@article{arxiv.2508.19631,
title = {Code-Weight Sphere Decoding},
author = {Yubeen Jo and Geon Choi and Yongjune Kim and Namyoon Lee},
journal= {arXiv preprint arXiv:2508.19631},
year = {2026}
}
Comments
5 pages, 8 figures