非均匀性检测与多级维纳滤波

W. Ogle, H. Nguyen, J. S. Goldstein
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引用次数: 4

摘要

本文介绍了用于雷达空时自适应处理的多级维纳滤波器,并结合广义内积作为非均匀环境下的预处理器。利用多通道机载雷达测量程序的记录数据,对多级维纳滤波和采样矩阵反演的性能进行了评估。为每个量程仓计算恒定虚警率检验统计量,该分析中使用的性能指标是目标值与噪声值均方根值的比值。考虑了高和低样本支持环境。证明了降秩多级维纳滤波器优于全秩样本矩阵反演,即使使用广义内积预处理器。此外,多级维纳滤波器在低采样支持环境中与预处理器一起使用时显示出最大的影响。在这种情况下,它几乎达到了全秩和高样本支持情况的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nonhomogeneity detection and the multistage Wiener filter
This paper introduces the multistage Wiener filter for radar space-time adaptive processing, combined with the generalized inner-product as a preprocessor in nonhomogeneous environments. By using recorded data from the Multichannel Airborne Radar Measurement program, the performance of the multistage Wiener filter and sample matrix inversion are assessed both with and without the preprocessor. The constant false-alarm rate test statistic is computed for each range bin and the performance metric used in this analysis is the ratio of the target value to the root mean square value of the noise values. Both high and low sample-support environments are considered. The reduced-rank multistage Wiener filter is demonstrated to outperform full rank sample matrix inversion, even with the generalized inner-product preprocessor. Additionally, the multistage Wiener filter is shown to have its largest impact when used in conjunction with the preprocessor in the low sample-support environment. In this case, it nearly achieves the performance obtained by the full-rank and high sample-support case.
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