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首页> 外文期刊>IEEE transactions on wireless communications >Joint Channel Estimation and Channel Decoding in Physical-Layer Network Coding Systems: An EM-BP Factor Graph Framework
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Joint Channel Estimation and Channel Decoding in Physical-Layer Network Coding Systems: An EM-BP Factor Graph Framework

机译:物理层网络编码系统中的联合信道估计和信道解码:EM-BP因素图框架

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This paper addresses the problem of joint channel estimation and channel decoding in physical-layer network coding (PNC) systems. In PNC, multiple users transmit to a relay simultaneously. PNC channel decoding is different from conventional multi-user channel decoding: specifically, the PNC relay aims to decode a network-coded message rather than the individual messages of the users. Although prior work has shown that PNC can significantly improve the throughput of a relay network, the improvement is predicated on the availability of accurate channel estimates. Channel estimation in PNC, however, can be particularly challenging because of 1) the overlapped signals of multiple users; 2) the correlations among data symbols induced by channel coding; and 3) time-varying channels. We combine the expectation-maximization (EM) algorithm and belief propagation (BP) algorithm on a unified factor-graph framework to tackle these challenges. In this framework, channel estimation is performed by an EM subgraph, and channel decoding is performed by a BP subgraph that models a virtual encoder matched to the target of PNC channel decoding. Iterative message passing between these two subgraphs allow the optimal solutions for both to be approached progressively. We present extensive simulation results demonstrating the superiority of our PNC receivers over other PNC receivers.
机译:本文解决了物理层网络编码(PNC)系统中联合信道估计和信道解码的问题。在PNC中,多个用户同时传输到中继。 PNC信道解码不同于常规的多用户信道解码:具体而言,PNC中继旨在解码网络编码的消息,而不是用户的单个消息。尽管先前的工作表明,PNC可以显着提高中继网络的吞吐量,但这种改进是基于准确的信道估计的可用性。然而,由于1)多个用户的信号重叠,PNC中的信道估计可能特别具有挑战性。 2)信道编码引起的数据符号之间的相关性; 3)时变频道。我们将期望最大化(EM)算法和置信传播(BP)算法结合在一个统一的因子图框架上,以解决这些挑战。在此框架中,由EM子图执行信道估计,由BP子图执行信道解码,该BP子图对与PNC信道解码的目标匹配的虚拟编码器进行建模。通过在这两个子图之间传递迭代消息,可以逐步找到针对这两个子图的最佳解决方案。我们提供了广泛的仿真结果,证明了我们的PNC接收器优于其他PNC接收器。

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