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On Mutual Information-Maximizing Quantized Belief Propagation Decoding of LDPC Codes

机译:LDPC码互信息最大化量化置信传播译码研究

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A severe problem for mutual information-maximizing lookup table (MIM-LUT) decoding of low-density parity-check (LDPC) code is the high memory cost for using large tables, while decomposing large tables to small tables deteriorates decoding error performance. In this paper, we propose a systematic method, called mutual information- maximizing quantized belief propagation (MIM-QBP) decoding, to remove the lookup tables used for MIM-LUT decoding. Our method leads to a very practical decoder, namely the MIM-QBP decoder, which can be implemented based only on simple mappings and additions. Simulation results show that the proposed MIM-QBP decoder can outperform the state-of-the-art MIM-LUT decoder. Moreover, the MIM-QBP decoder with only 3 bits per message can outperform the floating-point belief propagation (BP) decoder at high signal-to-noise ratio (SNR) regions with a maximum of 10 iterations.
机译:用于互信最大化查找表(MIM-LUT)解码的严重问题是低密度奇偶校验(LDPC)代码是使用大表的高内存成本,同时将大表分解给小表劣化了解码误差性能。在本文中,我们提出了一种系统方法,称为互信息最大化量化信念传播(MIM-QBP)解码,以删除用于MIM-LUT解码的查找表。我们的方法导致了一个非常实用的解码器,即MIM-QBP解码器,只能基于简单的映射和添加。仿真结果表明,所提出的MIM-QBP解码器可以优于最先进的MIM-LUT解码器。此外,每条消息仅具有3位的MIM-QBP解码器可以在高信噪比(SNR)区域以最大10次迭代的高信噪比(SNR)区域优于浮点信念传播(BP)解码器。

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