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Sea Clutter Covariance Matrix Estimation and Its Application to Whitening Filter

机译:海杂波协方差矩阵估计及其在美白滤波器的应用

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The accurate estimation of clutter covariance matrix (CCM) is essential in designing a radar detector/filter to suppress sea clutter. This estimation might not be easily accomplished because of the scarcity of valid training vectors adjacent to the range cell under test (CUT). We propose a new CCM estimation algorithm that is derived by modeling time-series clutter returns into a clutter Doppler spectrum in the frequency domain and exploiting mutual independence among spectral components. To justify its excellence over the conventional sample covariance matrix (SCM) algorithm, we design two filters—a maximum signal-to-interference-plus-noise ratio (SINR)-based filter and a whitening filter—that use the estimated CCMs and compare their performance in a numerically simulated sea clutter scenario. Comparisons are made by showing the eigenvector spectra of the estimated CCMs and the frequency responses and outputs of the filters. Moreover, SINRs at the target Doppler bin are examined and compared with a theoretical, analytically derived SINR.
机译:杂波协方差矩阵(CCM)的准确估计对于设计雷达检测器/过滤器来抑制海杂波至关重要。由于涉及被测范围电池(切割)的有效训练向量的稀缺性,可能不容易实现该估计。我们提出了一种新的CCM估计算法,该算法通过建模时序列杂波来返回到频域中的杂波多普勒频谱并利用光谱分量之间的相互独立性。为了通过传统的样本协方差矩阵(SCM)算法证明其卓越性,我们设计了两个过滤器 - 最大的信号到干扰 - 加噪声比(SINR)基础滤波器和美白滤波器 - 使用估计的CCM和比较它们在数值模拟的海洋杂波场景中的表现。通过显示估计的CCM的特征向量和滤波器的频率响应和输出来进行比较。此外,检查目标多普勒垃圾箱的SINRS,并与理论,分析衍生的SINR进行比较。

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