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首页> 外文期刊>EURASIP journal on applied signal processing >Blind Equalization of a Nonlinear Satellite System Using MCMC Simulation Methods
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Blind Equalization of a Nonlinear Satellite System Using MCMC Simulation Methods

机译:基于MCMC仿真方法的非线性卫星系统盲均衡

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摘要

This paper proposes the use of Markov Chain Monte-Carlo (MCMC) simulation methods for equalizing a satellite communication system. The main difficulties encountered are the nonlinear distorsions caused by the amplifier stage in the satellite. Several processing methods manage to take into account the nonlinearity of the system but they require the knowledge of a training/learning input sequence for updating the parameters of the equalizer. Blind equalization methods also exist but they require a Volterra modelization of the system. The aim of the paper is also to blindly restore the emitted message. To reach the goal, we adopt a Bayesian point of view. We jointly use the prior knowledge on the emitted symbols, and the information available from the received signal. This is done by considering the posterior distribution of the input sequence and the parameters of the model. Such a distribution is very difficult to study and thus motivates the implementation of MCMC methods. The presentation of the method is cut into two parts. The first part solves the problem for a simplified model; the second part deals with the complete model, and a part of the solution uses the algorithm developed for the simplified model. The algorithms are illustrated and their performance is evaluated using bit error rate versus signal-to-noise ratio curves.
机译:本文提出使用马尔可夫链蒙特卡罗(MCMC)仿真方法来均衡卫星通信系统。遇到的主要困难是卫星放大器级引起的非线性失真。几种处理方法设法考虑到系统的非线性,但是它们需要用于更新均衡器参数的训练/学习输入序列的知识。也存在盲均衡方法,但是它们需要对系统进行Volterra建模。本文的目的还在于盲目还原发出的消息。为了达到这个目标,我们采用贝叶斯的观点。我们共同使用关于发射符号的先验知识以及可从接收信号中获得的信息。这是通过考虑输入序列的后验分布和模型参数来完成的。这样的分布很难研究,因此激发了MCMC方法的实施。该方法的介绍分为两部分。第一部分解决了简化模型的问题。第二部分处理完整模型,解决方案的一部分使用针对简化模型开发的算法。说明了这些算法,并使用误码率与信噪比的关系曲线评估了它们的性能。

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