Decoding Quantum LDPC Codes Using Graph Neural Networks

August 09, 2024 Β· Declared Dead Β· πŸ› Global Communications Conference

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Authors Vukan Ninkovic, Ognjen Kundacina, Dejan Vukobratovic, Christian HΓ€ger, Alexandre Graell i Amat arXiv ID 2408.05170 Category quant-ph: Quantum Computing Cross-listed cs.IT, cs.LG Citations 12 Venue Global Communications Conference Last Checked 5 months ago
Abstract
In this paper, we propose a novel decoding method for Quantum Low-Density Parity-Check (QLDPC) codes based on Graph Neural Networks (GNNs). Similar to the Belief Propagation (BP)-based QLDPC decoders, the proposed GNN-based QLDPC decoder exploits the sparse graph structure of QLDPC codes and can be implemented as a message-passing decoding algorithm. We compare the proposed GNN-based decoding algorithm against selected classes of both conventional and neural-enhanced QLDPC decoding algorithms across several QLDPC code designs. The simulation results demonstrate excellent performance of GNN-based decoders along with their low complexity compared to competing methods.
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