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Blind identification of multiuser nonlinear channels using tensor decomposition and precoding

机译:张量分解和预编码对多用户非线性信道的盲识别

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摘要

This paper presents two blind identification methods for nonlinear memoryless channels in multiuser communication systems. These methods are based on the parallel factor (PARAFAC) decomposition of a tensor composed of channel output covariances. Such a decomposition is possible owing to a new precoding scheme developed for phase-shift keying (PSK) signals modeled as Markov chains. Some conditions on the transition probability matrices (TPM) of the Markov chains are established to introduce temporal correlation and satisfy statistical correlation constraints inducing the PARAFAC decomposition of the considered tensor. The proposed blind channel estimation algorithms are evaluated by means of computer simulations.
机译:本文提出了两种针对多用户通信系统中非线性无记忆信道的盲识别方法。这些方法基于由通道输出协方差组成的张量的并行因子(PARAFAC)分解。由于针对模型化为马尔可夫链的相移键控(PSK)信号开发了新的预编码方案,因此这种分解是可能的。建立了马尔可夫链的转移概率矩阵(TPM)的一些条件,以引入时间相关性并满足统计相关性约束,从而引起考虑的张量的PARAFAC分解。所提出的盲信道估计算法是通过计算机仿真来评估的。

著录项

  • 来源
    《Signal processing 》 |2009年第12期| 2644-2656| 共13页
  • 作者单位

    13S Laboratory, University of Nice-Sophia Antipolis/CNRS, Les Algorithmes/Euclide B-2000, route des Lucioles, BP 121, 06903 Sophia-Antipolis Cedex, France Departamento de Engenharia de Teleinformatica, Federal University of Ceara, Campus do Pici, 60.755-640, 6007 Fortaleza, Brazil;

    13S Laboratory, University of Nice-Sophia Antipolis/CNRS, Les Algorithmes/Euclide B-2000, route des Lucioles, BP 121, 06903 Sophia-Antipolis Cedex, France;

    Departamento de Engenharia de Teleinformatica, Federal University of Ceara, Campus do Pici, 60.755-640, 6007 Fortaleza, Brazil;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    blind nonlinear channel identification; markov chain; multiuser channel; PARAFAC decomposition; volterra model;

    机译:盲非线性通道识别;马可夫链多用户渠道;PARAFAC分解;沃尔泰拉模型;

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