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A CFAR Adaptive Subspace Detector Based on a Single Observation in System-Dependent Clutter Background

机译:基于单次观测的系统相关杂波背景下的CFAR自适应子空间检测器

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In this paper, the problem of detecting target in system-dependent clutter (SDC) background with a single observation from the test cell is researched. Classical detectors, such as the generalized likelihood ratio detectors (GLRDs) and the adaptive matched filters (AMFs), etc., usually deal with the clutter and the noise as a whole. The low rank detectors (LRDs) make use of the low rank property of the clutter to improve the detection performance. However, the performance of LRDs degrades when the signal is not orthogonal with respect to (w.r.t.) the clutter. In this paper, an adaptive subspace detector for SDC (SDC-ASD) background which deals with the clutter and the noise separately is proposed. The SDC-ASD designs the test statistic by replacing the signal and the clutter covariance matrix with their maximum likelihood estimations (MLEs). Its theoretical false alarm probability and detection probability are analytically deduced. Analytical results show that the test statistic has the form of non-central $F$ distribution. Besides, it is shown that the SDC-ASD has constant false alarm rate (CFAR) performance w.r.t. the clutter and the noise. Numerical experiments are provided to validate the detection performance of the SDC-ASD in dealing with the target detection in SDC background.
机译:本文研究了从测试单元进行单次观测在系统相关杂波(SDC)背景下检测目标的问题。传统的检测器,例如广义似然比检测器(GLRD)和自适应匹配滤波器(AMF)等,通常会从整体上处理杂波和噪声。低秩检测器(LRD)利用杂波的低秩属性来提高检测性能。但是,当信号相对于杂波不正交时,LRD的性能会降低。本文提出了一种适用于SDC(SDC-ASD)背景的自适应子空间检测器,该检测器分别处理杂波和噪声。 SDC-ASD通过用最大似然估计(MLE)替换信号和杂乱协方差矩阵来设计测试统计量。分析推导了其理论上的虚警概率和检测概率。分析结果表明,检验统计量具有非中央 $ F $ 分布的形式。此外,还表明,SDC-ASD具有恒定的误报率(CFAR)性能。混乱和噪音。通过数值实验验证了SDC-ASD在处理SDC背景下目标检测中的性能。

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