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Clutter Nulling Performance of SMI in Amplitude Heterogeneous Clutter Environments

机译:幅度非均匀杂波环境下SMI的杂波消除性能

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摘要

In order to investigate the clutter nulling performance of the sample matrix inversion (SMI) algorithm in amplitude heterogeneous environments, we derive an analytical expression for the average signal-to-interference plus noise ratio (SINR) loss based on random matrix theory. The results show that comparing with the case where the training data utilizes the homogeneous secondary samples (which are independent and identically distributed (IID) to the snapshot in the cell under test (CUT)), formulating the adaptive weight with the secondary samples which have stronger clutter power than that in CUT will increase the output SINR. Nevertheless, the achievable performance improvement might be quite limited. Conversely, selecting the secondary samples with weaker clutter power will degrade the performance.
机译:为了研究幅度异质环境中样本矩阵求逆(SMI)算法的杂波归零性能,我们基于随机矩阵理论推导了平均信号干扰加噪声比(SINR)损失的解析表达式。结果表明,与训练数据利用同质次要样本(独立且均匀分布(IID)到被测单元(CUT)中的快照)的情况相比,采用具有以下特征的次要样本制定自适应权重比CUT中更强的杂波功率将增加输出SINR。但是,可以实现的性能改进可能非常有限。相反,选择杂波功率较弱的次级样本会降低性能。

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