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Generalised persymmetric parametric adaptive coherence estimator for multichannel adaptive signal detection

机译:用于多通道自适应信号检测的广义全对称参量自适应相干估计

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摘要

In this study, the authors deal with the problem of detecting a signal in partially homogeneous environments, where both the test data and the training data share the same covariance matrix up to an unknown scaling factor. A generalised persymmetric parametric adaptive coherence estimator (GPer-PACE) detector is proposed, where the disturbance is modelled as a multichannel autoregressive process. To mitigate the effect of limited training samples, the subspatial aperture smoothing is performed in the design of the authors’ GPer-PACE detector. Moreover, the persymmetric structure information is exploited to further reduce the sample requirements. The performance of the GPer-PACE is assessed by numerical examples. The results show that the GPer-PACE outperforms other traditional detectors in sample-deficient scenarios.
机译:在这项研究中,作者处理了在部分均质的环境中检测信号的问题,其中测试数据和训练数据共享相同的协方差矩阵,直到未知的比例因子。提出了一种广义的全对称参量自适应相干估计器(GPer-PACE),该模型将干扰建模为一个多通道自回归过程。为了减轻有限训练样本的影响,在作者的GPer-PACE检测器的设计中进行了亚空间孔径平滑。而且,利用了全对称结构信息来进一步减少样本需求。 GPer-PACE的性能通过数值示例进行评估。结果表明,在样本不足的情况下,GPer-PACE优于其他传统检测器。

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