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Markov Chain Monte Carlo Algorithms for CDMA and MIMO Communication Systems

机译:CDMA和MIMO通信系统的马尔可夫链蒙特卡罗算法

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In this paper, we develop novel Bayesian detection methods that are applicable to both synchronous code-division multiple-access and multiple-input multiple-output communication systems. Markov chain Monte Carlo (MCMC) simulation techniques are used to obtain Bayesian estimates (soft information) of the transmitted symbols. Unlike previous reports that widely use statistical inference to estimate a posteriori probability (APP) values, we present alternative statistical methods that are developed by viewing the underlying problem as a multidimensional Monte Carlo integration. We show that this approach leads to results that are similar to those that would be obtained through a proper Rao-Blackwellization technique and thus conclude that our proposed methods are superior to those reported in the literature. We also note that when the channel signal-to-noise ratio is high, MCMC simulator experiences some very slow modes of convergence. Thus accurate estimation of APP values requires simulations of very long Markov chains, which may be infeasible in practice. We propose two solutions to this problem using the theory of importance sampling. Extensive computer simulations show that both solutions improve the system performance greatly. We also compare the proposed MCMC detection algorithms with the sphere decoding and minimum mean square error turbo detectors and show that the MCMC detectors have superior performance.
机译:在本文中,我们开发了适用于同步码分多址和多输入多输出通信系统的新颖贝叶斯检测方法。马尔可夫链蒙特卡罗(MCMC)仿真技术用于获得传输符号的贝叶斯估计(软信息)。与以前的报告广泛使用统计推断来估计后验概率(APP)值的报告不同,我们提供了通过将基本问题视为多维蒙特卡洛积分而开发的替代统计方法。我们表明,这种方法导致的结果与通过适当的Rao-Blackwellization技术获得的结果相似,因此得出结论,我们提出的方法优于文献报道的方法。我们还注意到,当通道信噪比很高时,MCMC仿真器会遇到一些非常慢的收敛模式。因此,APP值的准确估计需要模拟很长的马尔可夫链,这在实践中可能不可行。我们使用重要性抽样理论为这个问题提出了两种解决方案。大量的计算机仿真表明,这两种解决方案都可以大大提高系统性能。我们还将提出的MCMC检测算法与球面解码和最小均方误差turbo检测器进行了比较,表明MCMC检测器具有出色的性能。

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