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Expectation Propagation-Based Sampling Decoding: Enhancement and Optimization

机译:期望基于传播的采样解码:增强和优化

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摘要

In this paper, the paradigm of expectation propagation (EP) algorithm in large-scale MIMO detection is extended by the sampling decoding in an Markov chain Monte Carlo way to boost the approximation of the target posterior distribution. The proposed EP-based sampling decoding scheme not only theoretically addresses the inherent convergence problem of EP, but also is able to achieve the near-optimal decoding performance with the increment of Markov moves. Specifically, the EP-based independent Metropolis-Hastings (MH) is proposed to guarantee the exponential convergence to the target posterior distribution, thus bridging the EP detector and the sampling decoding as a whole. Meanwhile, the output yielded by the EP detector also provides a good initial setup for the sampling decoding, which results in a better convergence performance in the approximation. To further improve the convergence performance and the decoding efficiency, the EP-based Gibbs sampling is given, where the choice of the standard deviation of the discrete Gaussian distribution in the Markov mixing is also studied for a better decoding performance. Moreover, we extend the proposed EP-based Gibbs sampling decoding to the soft-output decoding in MIMO bit-interleaved coded modulation (BICM) systems, which enjoys a flexible decoding trade-off between performance and complexity by the number of Markov moves.
机译:在本文中,通过Markov链蒙特卡洛的采样解码来延长大规模MIMO检测中预期传播(EP)算法的范例,以提高目标后部分布的近似。所提出的基于EP的采样解码方案不仅理论上地解决了EP的固有融合问题,而且能够通过Markov移动的增量来实现近最佳的解码性能。具体地,提出了基于EP的独立大都会 - 黑阵(MH)以保证指数收敛到目标后部分布,从而弥合EP检测器和整体的采样解码。同时,EP检测器产生的输出也为采样解码提供了良好的初始设置,这导致近似的更好的收敛性能。为了进一步提高收敛性能和解码效率,还给出了基于EP的GIBBS采样,其中还研究了马尔可夫混合中的离散高斯分布的标准偏差,以获得更好的解码性能。此外,我们将所提出的基于EP的GIBBS采样解码扩展到MIMO比特交错的编码调制(BICM)系统中的软输出解码,这在Markov移动的数量之间具有性能和复杂性之间的灵活解码权衡。

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