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Maximum-Likelihood Precoder Selection for ML Detector in MIMO-OFDM Systems

机译:MIMO-OFDM系统中ML检测器的最大似然预编码器选择

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摘要

Spatial Multiplexing with precoding provides an opportunity to enhance the capacity and reliability of multi-input multi-output orthogonal frequency division multiplexing (MIMO-OFDM) systems. However, precoder selection may require knowledeg of all subcarriers, which may cause a large amount of feedback if not properly designed. In addition, if the maximum-likelihood (ML) detector is employed, the conventional precoder selection that maximizes the minimum stream SNR is not optimal in terms of the error probability. In this paper, we propose to reduce the feedback overhead by introducing a ML clustering concept in selecting the optimal precoder for ML detector. Numerical results show that the proposed precoder selection based on the ML clustering provides enhanced performance for ML receiver compared with conventional interpolation and clustering algorithms.
机译:具有预编码的空间复用为增强多输入多输出正交频分复用(MIMO-OFDM)系统的容量和可靠性提供了机会。但是,预编码器的选择可能需要了解所有子载波,如果设计不当,可能会导致大量反馈。另外,如果采用最大似然(ML)检测器,则就错误概率而言,使最小流SNR最大化的常规预编码器选择不是最佳的。在本文中,我们建议通过在选择用于ML检测器的最佳预编码器时引入ML聚类概念来减少反馈开销。数值结果表明,与传统的插值和聚类算法相比,基于ML聚类的预编码器选择为ML接收机提供了增强的性能。

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