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A State-Space Cross-Relation Approach to Adaptive Blind SIMO System Identification

机译:一种状态空间交叉关联的自适应盲SIMO系统识别方法

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摘要

In this work, we address blind single-input multiple-output (SIMO) system identification in conjunction with dynamical modeling of the underlying system. A multichannel cross-relation observation model in the DFT domain is employed to derive a blind adaptive algorithm that recursively learns the posterior distribution on the unknown SIMO system. The proposed algorithm inherently incorporates the time-varying nature of the channels and a representation of the observation noise. We show that the resulting cross-relation state-space frequency-domain adaptive filter (CR-SSFDAF), owing to its stable and diagonalized structure and near-optimal step-size control, can be efficiently operated in time-varying and noisy conditions.
机译:在这项工作中,我们结合基础系统的动态建模解决盲目单输入多输出(SIMO)系统标识。使用DFT域中的多通道交叉关系观察模型来导出盲自适应算法,该算法递归地学习未知SIMO系统上的后验分布。所提出的算法固有地结合了信道的时变性质和观察噪声的表示。我们表明,由于其稳定的对角线结构和接近最佳的步长控制,所得到的交叉关系状态空间频域自适应滤波器(CR-SSFDAF)可以在时变和嘈杂的条件下有效运行。

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