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Message-passing algorithms for channel estimation and decoding using approximate inference

机译:使用近似推理的消息传递算法,用于信道估计和解码

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We design iterative receiver schemes for a generic communication system by treating channel estimation and information decoding as an inference problem in graphical models. We introduce a recently proposed inference framework that combines belief propagation (BP) and the mean field (MF) approximation and includes these algorithms as special cases. We also show that the expectation propagation and expectation maximization (EM) algorithms can be embedded in the BP-MF framework with slight modifications. By applying the considered inference algorithms to our probabilistic model, we derive four different message-passing receiver schemes. Our numerical evaluation in a wireless scenario demonstrates that the receiver based on the BP-MF framework and its variant based on BP-EM yield the best compromise between performance, computational complexity and numerical stability among all candidate algorithms.
机译:通过将信道估计和信息解码视为图形模型中的推理问题,我们为通用通信系统设计了迭代接收器方案。我们介绍了一个最近提出的推理框架,该框架结合了置信传播(BP)和平均场(MF)近似,并将这些算法作为特殊情况包括在内。我们还表明,期望传播和期望最大化(EM)算法可以稍作修改就可以嵌入BP-MF框架中。通过将考虑的推理算法应用于我们的概率模型,我们得出了四种不同的消息传递接收器方案。我们在无线场景中的数值评估表明,在所有候选算法中,基于BP-MF框架的接收器及其基于BP-EM的变体在性能,计算复杂性和数值稳定性之间取得了最佳折衷。

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