SOME: Symmetric One-Hot Matching Elector -- A Lightweight Microsecond Decoder for Quantum Error Correction
Xinyi Guo, Geguang Miao, Shinichi Nishizawa, Hiromitsu Awano, Shinji Kimura, Takashi Sato

TL;DR
SOME is a lightweight, microsecond quantum error correction decoder that reformulates the decoding problem as a QUBO, significantly reducing complexity and decoding time while maintaining high error thresholds.
Contribution
It introduces the Symmetric One-Hot Matching Elector (SOME), a novel QUBO-based decoder that simplifies quantum error correction with high efficiency and performance.
Findings
Achieves up to 99.9x reduction in variable count.
Reduces decoding time from milliseconds to microseconds.
Maintains performance up to 10.5% physical error rate.
Abstract
Conventional quantum error correction (QEC) decoders such as Minimum-Weight Perfect Matching (MWPM) and Union-Find (UF) offer high thresholds and fast decoding, respectively, but both suffer from high topological complexity. In contrast, Ising model-based decoders reduce topological complexity but demand considerable decoding time. We propose the Symmetric One-Hot Matching Elector (SOME), a novel decoder that reformulates the QEC decoding task as a Quadratic Unconstrained Binary Optimization (QUBO) problem -- termed the One-Hot QUBO (OHQ). Each variable in the QUBO represents whether a given pair of flipped syndromes is matched, while the error probabilities between the pair are encoded as interaction coefficients (weight). Constraints ensure that each flipped syndrome is matched exactly once. Valid solutions of OHQ correspond to self-inverse permutation matrices, characterized by…
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Taxonomy
TopicsOptical Network Technologies · Quantum Information and Cryptography · Quantum Computing Algorithms and Architecture
