Analytical analysis of STAP algorithms for cases with mismatched steering and clutter statistics

K. McDonald, Rick S. Blum
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引用次数: 4

Abstract

In the majority of adaptive radar detection algorithms, the covariance matrix for the clutter-plus-noise is estimated using samples taken from range cells surrounding the cell under test. In a nonhomogeneous environment, this can lead to a mismatch between the mean of the estimated covariance matrix and the true covariance matrix for the range cell under test. Further, an inaccurate target steering vector may also be employed. Closed form expressions are provided, which give the performance for such cases when any of a set of popular space-time adaptive processing (STAP) algorithms are used. The expressions are exact for some interesting cases. For some other cases, it is demonstrated that the expressions provide good approximations to the exact performance. To simplify the analysis, the samples from the surrounding range cells are assumed to be independent and identically distributed and these samples are assumed to be independent from the sample taken from the cell under test. A small number of important parameters describe which types of mismatches are important and which are not. Monte Carlo simulations are included which closely match the predictions of our equations. Numerical results demonstrate that steering vector mismatch can offset covariance matrix mismatch in some cases.
操舵不匹配和杂波统计情况下STAP算法的分析分析
在大多数自适应雷达检测算法中,杂波加噪声的协方差矩阵是使用从被测单元周围的距离单元中获取的样本来估计的。在非齐次环境中,这可能导致估计的协方差矩阵的平均值与被测范围单元的真实协方差矩阵之间的不匹配。此外,还可以采用不准确的目标转向矢量。给出了封闭形式表达式,该表达式给出了任意一组流行的时空自适应处理(STAP)算法在这种情况下的性能。这些表达式适用于一些有趣的情况。对于其他一些情况,证明了表达式可以很好地近似于确切的性能。为了简化分析,假设来自周围量程单元的样本是独立且同分布的,并且假设这些样本与来自待测单元的样本独立。少数重要的参数描述了哪些类型的不匹配是重要的,哪些不是。蒙特卡罗模拟包括密切匹配我们的方程的预测。数值结果表明,在某些情况下,转向矢量失配可以抵消协方差矩阵失配。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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