The paper proposes a high-performance list decoding algorithm, called BP-LCOSD, for decoding surface codes with erroneous syndrome measurements. The key contributions are:
The proposed BP-LCOSD algorithm outperforms existing decoders, such as the minimum-weight perfect matching (MWPM) decoder and BP-based decoders, in terms of both syndrome error rate and logical error rate. Numerical results demonstrate that the BP-LCOSD algorithm can significantly improve the decoding performance of surface codes with erroneous syndromes.
The paper first provides an overview of surface codes, the MWPM decoder, the BP-OSD algorithm, and the channel model. It then introduces the proposed BP-LCOSD algorithm in detail, including the steps of enhancing the BP decoder with syndrome soft information, refining error LLRs with LCOSD, and extracting quantum/syndrome errors. Finally, the complexity analysis and numerical results are presented, showing the effectiveness of the proposed algorithm.
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