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Persymmetric adaptive subspace detectors for range-spread targets

机译:用于范围扩展目标的外部对称自适应子空间探测器

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摘要

This paper investigates the problem of adaptive detection of a range-spread target in colored Gaussian disturbance. The range-spread target is described by a multi-rank subspace model, which lies in a subspace but with unknown coordinates. The disturbance, usually including clutter and thermal noise, has an unknown covariance matrix. Under the above assumption, we design the Rao and generalized likelihood ratio test (GLRT) detectors by the two-step procedure, which incorporates persymmetric structure of received data. The two detectors are shown to coincide with each other. Remarkably, the proposed detector ensures constant false alarm rate property. Experimental results conducted by both simulation and real data verify that the proposed detector outperforms the existing counterparts in training-limited scenarios. (C) 2019 Elsevier Inc. All rights reserved.
机译:本文调查了彩色高斯干扰中展开目标的自适应检测问题。 范围扩展目标由多级子空间模型描述,该模型位于子空间,但具有未知的坐标。 通常包括杂波和热噪声的干扰具有未知的协方差矩阵。 在上述假设下,我们通过两步过程设计RAO和广义似然比测试(GLRT)探测器,其包括接收数据的存在存在性结构。 示出两个探测器彼此重合。 值得注意的是,所提出的探测器可确保恒定的误报率属性。 通过模拟和真实数据进行的实验结果验证了所提出的探测器优于培训有限情况的现有对应物。 (c)2019 Elsevier Inc.保留所有权利。

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