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Adaptive Detection of Subpixel Targets With Hypothesis Dependent Background Power

机译:假设相关的背景功率对亚像素目标的自适应检测

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摘要

We design and assess an adaptive scheme to detect a subpixel target in a sequence of images in the presence of an additive correlated Gaussian background. The presence of the subpixel target decreases the background power that hence may be different under the null and alternative hypotheses. We use the generalized likelihood ratio test (GLRT) to adapt the recently proposed modified matched subspace detector (MMSD) to unknown background variances under the null and alternative hypotheses using the secondary and primary data, respectively. We derive a modified adaptive subspace detector (MASD) that is sensitive to both energy in the target subspace and reduced energy in the orthogonal subspace. We contrast it with the MMSD and the well-known adaptive cosine estimator (ACE). Numerical simulations attest to the validity of the theoretical analysis and show that the proposed detector performance outperforms the ACE, especially in the case of dark subpixel targets. The performance-degrading effects of limited secondary data are presented for the proposed detector.
机译:我们设计和评估一种自适应方案,以在存在加性相关高斯背景的情况下检测图像序列中的亚像素目标。子像素目标的存在会降低背景功率,因此在零假设和替代假设下可能会有所不同。我们使用广义似然比检验(GLRT),分别使用次要数据和主要数据,在零假设和替代假设下,使最近提出的改进的匹配子空间检测器(MMSD)适应未知背景方差。我们推导了一种改进的自适应子空间检测器(MASD),该检测器既对目标子空间中的能量又对正交子空间中的能量减少敏感。我们将其与MMSD和著名的自适应余弦估计器(ACE)进行对比。数值模拟证明了理论分析的正确性,并表明所提出的检测器性能优于ACE,尤其是在暗亚像素目标的情况下。对于所提出的检测器,提出了有限的次级数据对性能的影响。

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