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Principal component background suppression

机译:主要成分背景抑制

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We have developed an adaptable background suppression algorithm, based on the statistical technique of principal components, to mitigate the effects of sensor line of sight motion (clutter) across structured background scenes. The central idea is construction of a "background space" as a linear vector subspace modeling the background being viewed. We have applied our algorithm to two test cases which were constructed by simulating random motion of a staring array focal plane over a high resolution scene. The first test case, with clutter noise only, found a low-intensity signal (S/N=0.05) with a 245-fold enhancement by projecting out a background space using 40 principal components. The second test case added Gaussian electronic noise and found the signal with a 34-fold increase in signal-to-noise using 16 principal components. This is believed to closely represent the actual problem encountered in staring array focal planes. Our results show that increasing the number of principal components increases the algorithm's ability to suppress clutter up to the point where electronic noise becomes dominant. We give a heuristic argument for determining the proper number of principal components for maximum signal-to-noise enhancement.
机译:基于主组件的统计技术,我们开发了一种适应性的背景抑制算法,以减轻结构化背景场景的传感器线路视觉运动(杂波)的影响。中心思想是建造“背景空间”作为建模背景的线性矢量子空间。我们已经将算法应用于两个测试用例,通过在高分辨率场景上模拟凝视阵列焦平面的随机运动来构造。第一个测试用例仅具有杂波噪声,通过使用40个主组件突出背景空间,发现了低强度信号(S / n = 0.05),增强了245倍。第二个测试案例增加了高斯电子噪声,并发现使用16个主组件的信号对噪声增加34倍的信号。据信旨在密切代表暗示阵列焦平面遇到的实际问题。我们的结果表明,增加主成分的数量增加了算法抑制杂波的能力,直到电子噪声变得优势的程度。我们为确定最大信号对噪声增强的主组件提供了一种启发式论点。

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