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Genetic Algorithm-based Polar Code Construction for the AWGN Channel

机译:基于遗传算法的AWGN信道极化码构造

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We propose a new polar code construction framework (i.e., selecting the frozen bit positions) for the additive white Gaussian noise (AWGN) channel, tailored to a given decoding algorithm, rather than based on the (not necessarily optimal) assumption of successive cancellation (SC) decoding. The proposed framework is based on the Genetic Algorithm (GenAlg), where populations (i.e., collections) of information sets evolve successively via evolutionary transformations based on their individual error-rate performance. These populations converge towards an information set that fits the decoding behavior. Using our proposed algorithm, we construct a polar code of length 2048 with code rate 0.5, without the CRC-aid, tailored to plain successive cancellation list (SCL) decoding, achieving the same error-rate performance as the CRC-aided SCL decoding, and leading to a coding gain of 1dB at BER of 10(exp6). Further, a belief propagation (BP)-tailored polar code approaches the SCL error-rate performance without any modifications in the decoding algorithm itself.
机译:我们针对加性高斯白噪声(AWGN)信道提出了一种新的极坐标代码构造框架(即,选择冻结的比特位置),该框架针对给定的解码算法进行了量身定制,而不是基于连续取消(不一定最优)的假设( SC)解码。所提出的框架基于遗传算法(GenAlg),其中信息集的总体(即集合)基于其各自的错误率性能,通过进化变换连续地进化。这些群体朝着适合解码行为的信息集收敛。使用我们提出的算法,我们构建了长度为2048且编码率为0.5的极坐标码,无需CRC辅助,专门针对普通连续消除列表(SCL)解码进行了调整,从而实现了与CRC辅助SCL解码相同的误码率性能,并在BER为10(exp6)时产生1dB的编码增益。此外,针对信念传播(BP)定制的极地代码可在不对解码算法本身进行任何修改的情况下达到SCL错误率性能。

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