基于特征分集的扩展目标自适应雷达探测

F. Bandiera, G. Ricci, M. Tesauro
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引用次数: 2

摘要

本文研究了未知统计量高斯噪声中扩展目标的自适应检测。假设雷达可以改变发射信号的方位角。更准确地说,它利用了N个N维的签名;来自每个雷达单元的可能有用信号是一个相干脉冲序列,而干扰是一个高斯过程,独立于每个单元,但具有相同的(未知的)协方差矩阵,而不管被照射的矩阵如何。在此基础上,我们提出了一种基于两步法设计的自适应检测器。性能评估和与先前提出的检测器的比较表明,所提出的检测器可以作为一种可行的手段来应对不确定场景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive radar detection of extended targets via signature diversity
The paper addresses adaptive detection of extended targets in Gaussian noise with unknown statistics. It is assumed that the radar can change the transmitted signal in azimuth. More precisely, it makes use of N N-dimensional signatures; the possible useful signal from each radar cell is a coherent pulse train while the disturbance is a Gaussian process, independent from cell to cell, but with the same (unknown) covariance matrix regardless of the illuminated one. Based on the above model, we propose an adaptive detector designed according to a two-step procedure. Its performance assessment and the comparison with a previously-proposed detector show that the proposed one can be a viable means to cope with uncertain scenarios.
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