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Target and Background Separation in Hyperspectral Imagery for Automatic Target Detection

机译:自动目标检测的高光谱图像中的目标和背景分离

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In this paper, we propose a method for separating known targets of interests from the background in hyperspectral imagery. More precisely, we regard the given hyperspectral image (HSI) as being made up of the sum of low-rank background HSI and a sparse target HSI that contains the known targets based on a pre-learned target dictionary specified by the user. Based on the proposed method, two strategies are outlined and evaluated independently to realize the target detection on both synthetic and real experiments.
机译:在本文中,我们提出了一种从高光谱图像中分离已知感兴趣目标的方法。更确切地说,我们将给定的高光谱图像(HSI)视为由低级背景HSI的和和基于用户指定的预先学习的目标字典的已知目标的稀疏目标HSI组成。基于所提出的方法,概述了两种策略,独立评估,以实现合成和实验的目标检测。

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