基于深度学习的BP极码译码算法优化与改进

Li Ge, Guiping Li
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引用次数: 0

摘要

摘要为了解决5G条件下极性码信念传播译码算法的高延迟问题和深度学习条件下信念传播译码算法的维数限制问题,提出了一种基于分块思想的多层感知器信念传播译码(MLP-BP)算法。在本工作中,利用神经网络对极坐标码进行分块解码,并设置BP解码算法的正确传递消息值,完成传播过程。仿真结果表明,与BP译码算法相比,该算法具有更好的译码性能,降低了译码延迟,也适用于长极码。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization and Improvement of BP Decoding Algorithm for Polar Codes Based on Deep Learning
Abstract In order to solve the high latency problem of polar codes belief propagation decoding algorithm in the 5G and the dimension limitation problem of belief propagation decoding algorithm under deep learning, a multilayer perceptron belief propagation decoding (MLP-BP) algorithm based on partitioning idea is proposed. In this work, polar codes is decoded using neural networks in partitioning, and the right transfer message value of BP decoding algorithm is also set to complete the propagation process. Simulation results show that, compared with BP decoding algorithm, the proposed algorithm has better decoding performance, reducing the decoding latency, and it is also applicable to long polar codes.
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