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Small target detection based on difference accumulation and Gaussian curvature under complex conditions

机译:基于复杂条件下的差值累积和高斯曲率的小目标检测

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摘要

Small target detection is a significant subject in infrared search and track and other photoelectric imaging systems. The small target is imaged under complex conditions, which contains clouds, horizon and bright part. In this paper, a novel small target detection method is proposed based on difference accumulation, clustering and Gaussian curvature. Difference accumulation varies from regions. Therefore, after obtaining difference accumulations, clustering is applied to determine whether the pixel belongs to the heterogeneous region, and eliminate heterogeneous region. Then Gaussian curvature is used to separate target from the homogeneous region. Experiments are conducted for verification, along with comparisons to several other methods. The experimental results demonstrate that our method has an advantage of 12 orders of magnitude on SCRG and BSF than others. Given that the false alarm rate is 1, the detection probability can be approximately 0.9 by using proposed method. (C) 2017 Elsevier B.V. All rights reserved.
机译:小目标检测是红外搜索和轨道和其他光电成像系统中的重要课题。小目标在复杂的条件下成像,其中包含云,地平线和明亮的部分。本文基于差累积,聚类和高斯曲率提出了一种新型小型目标检测方法。差异累积因地区而异。因此,在获得差异累积之后,应用聚类以确定像素是否属于异构区域,并消除异构区域。然后高斯曲率用于将目标与均匀区域分开。进行实验进行验证,以及其他几种方法的比较。实验结果表明,我们的方法在SCRG和BSF上具有比其他更高的12个级。鉴于假警报速率为1,通过使用所提出的方法,检测概率可以大约0.9。 (c)2017 Elsevier B.v.保留所有权利。

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