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Invariant Adaptive Detection of Range-Spread Targets Under Structured Noise Covariance

机译:结构噪声协方差下距离扩展目标的不变自适应检测

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摘要

The invariance principle is adopted to develop an exhaustive study for adaptive detection of range-spread targets in Gaussian noise sharing a block-diagonal covariance structure. For this problem, the usual generalized likelihood ratio principle is intractable. In this paper, we first determine the largest group of affine transformations that does not alter the decision problem. Then, a maximal invariant identified by this group is derived, which can characterize the totality of the invariant detectors and extends the existing results for the point-target case. A theoretical performance analysis of the maximal invariant is also given. Finally, we propose two classes of invariant detectors, which are distinguished by whether a constant false alarm rate (CFAR) is maintained. Numerical experiments are provided for a comparison of the proposed detectors, where a tradeoff between the CFARness and the improved performance has been observed and studied.
机译:采用不变性原理进行详尽的研究,以自适应检测共享高斯噪声的块对角协方差结构中的距离扩展目标。对于此问题,通常的广义似然比原理很难处理。在本文中,我们首先确定不改变决策问题的最大仿射变换组。然后,导出由该组标识的最大不变量,它可以表征不变检测器的总数并扩展点目标情况的现有结果。还给出了最大不变性的理论性能分析。最后,我们提出了两类不变检测器,它们通过是否保持恒定的误报率(CFAR)来区分。数值实验提供了对所提出的探测器的比较,其中已经观察到并研究了CFAR灵敏度与改进性能之间的折衷。

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