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Data detection in relay-based communication systems using Bayesian methods

机译:使用贝叶斯方法的基于中继的通信系统中的数据检测

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Data detection in a relay-based communication system (RCS) is challenging because its end-to-end channel, which comprises a cascade of several channels, has unique statistical characteristics. Assuming different channel conditions, in this paper, we address the problem of data detection in an RCS where one amplify-and-forward relay is used as an intermediate node between a transmitter and a receiver. Our approach is based on Bayesian methodologies in which a variant of Markov Chain Monte Carlo (MCMC) technique, known as Metropolis-Hasting-within-Gibbs, is applied for systems with quasi-static channel models, whereas particle filtering technique is used for systems with fast varying channels to develop joint data detection and channel estimation algorithms. By providing detailed derivations, we present two algorithms for each channel condition by formulating the transmission process of the communication systems in different ways. The effectiveness of our algorithms is demonstrated through computer simulations. (C) 2015 Elsevier Inc. All rights reserved.
机译:基于中继的通信系统(RCS)中的数据检测具有挑战性,因为其端对端通道(包括多个通道的级联)具有独特的统计特性。假设信道条件不同,在本文中,我们解决了RCS中的数据检测问题,在该系统中,一个放大转发中继用作发送器和接收器之间的中间节点。我们的方法基于贝叶斯方法,其中将马尔可夫链蒙特卡罗(MCMC)技术的一种变体(称为“大都市内保持吉布斯”)应用于具有准静态通道模型的系统,而将粒子滤波技术用于系统利用快速变化的通道来开发联合数据检测和通道估计算法。通过提供详细的推导,我们通过以不同方式制定通信系统的传输过程,针对每种信道状况提出了两种算法。通过计算机仿真证明了我们算法的有效性。 (C)2015 Elsevier Inc.保留所有权利。

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