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Reconstruction-Computation-Quantization (RCQ): A Paradigm for Low Bit Width LDPC Decoding

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arxiv 2111.08920 v2 pith:CHM425T3 submitted 2021-11-17 eess.SP

classification eess.SP
keywords decodingldpcls-rcqdecoderlayeredminsumparametersperformance
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

This paper uses the reconstruction-computation-quantization (RCQ) paradigm to decode low-density parity-check (LDPC) codes. RCQ facilitates dynamic non-uniform quantization to achieve good frame error rate (FER) performance with very low message precision. For message-passing according to a flooding schedule, the RCQ parameters are designed by discrete density evolution (DDE). Simulation results on an IEEE 802.11 LDPC code show that for 4-bit messages, a flooding MinSum RCQ decoder outperforms table-lookup approaches such as information bottleneck (IB) or Min-IB decoding, with significantly fewer parameters to be stored. Additionally, this paper introduces layer-specific RCQ (LS-RCQ), an extension of RCQ decoding for layered architectures. LS-RCQ uses layer-specific message representations to achieve the best possible FER performance. For LS-RCQ, this paper proposes using layered DDE featuring hierarchical dynamic quantization (HDQ) to design LS-RCQ parameters efficiently. Finally, this paper studies field-programmable gate array (FPGA) implementations of RCQ decoders. Simulation results for a (9472, 8192) quasi-cyclic (QC) LDPC code show that a layered MinSum RCQ decoder with 3-bit messages achieves more than a $10\%$ reduction in LUTs and routed nets and more than a $6\%$ decrease in register usage while maintaining comparable decoding performance, compared to a 5-bit offset MinSum decoder.

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  1. Fixed Point Exploration For CV-QKD IR QC-MET-LDPC Toward Hardware Implementation

    cs.AR 2026-07 conditional novelty 4.0 of 10

    For a low-rate MET-LDPC code at very low SNR, SPA decoding is most robust to fixed-point precision, and Q8.4 is the practical hardware-efficient choice for SPA.

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