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Joint channel estimation and data detection for OFDM systems over doubly selective channels

机译:双选择信道上OFDm系统的联合信道估计和数据检测

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摘要

In this paper, a joint channel estimation and data detection algorithm is proposed for OFDM systems under doubly selective channels (DSCs). After representing the DSC using Karhunen-Loève basis expansion model (K-L BEM), the proposed algorithm is developed based on the expectationmaximization (EM) algorithm. Basically, it is an iterative algorithm including two steps at each iteration. In the first step, the unknown coefficients in K-L BEM are first integrated out to obtain a function which only depends on data, and meanwhile, a maximum a posteriori (MAP) channel estimator is obtained. In the second step, data are directly detected by a novel approach based on the function obtained in the first step. Moreover, a Bayesian Cramer-Rao Lower Bound (BCRB) which is valid for any channel estimator is also derived to evaluate the performance of the proposed channel estimator. The effectiveness of the proposed algorithm is finally corroborated by simulation results. ©2009 IEEE.
机译:本文针对双选择信道(DSC)下的OFDM系统,提出了一种联合信道估计和数据检测算法。在使用Karhunen-Loève基展开模型(K-L BEM)表示DSC之后,基于期望最大化(EM)算法开发了该算法。基本上,这是一个迭代算法,每个迭代包括两个步骤。第一步,首先将K-L BEM中的未知系数进行积分以获得仅依赖于数据的函数,同时,获得最大后验(MAP)信道估计器。在第二步中,基于第一步中获得的功能,通过新颖的方法直接检测数据。此外,还导出了适用于任何信道估计器的贝叶斯Cramer-Rao下界(BCRB),以评估所提出的信道估计器的性能。仿真结果最终证实了所提算法的有效性。 ©2009 IEEE。

著录项

  • 作者

    He L; Ma S; Ng TS; Wu YC;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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