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A novel infrared small moving target detection method based on tracking interest points under complicated background

机译:复杂背景下基于兴趣点跟踪的红外小目标检测新方法

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摘要

Infrared moving target detection is an important part of infrared technology. We introduce a novel infrared small moving target detection method based on tracking interest points under complicated background. Firstly, Difference of Gaussians (DOG) filters are used to detect a group of interest points (including the moving targets). Secondly, a sort of small targets tracking method inspired by Human Visual System (HVS) is used to track these interest points for several frames, and then the correlations between interest points in the first frame and the last frame are obtained. Last, a new clustering method named as R-means is proposed to divide these interest points into two groups according to the correlations, one is target points and another is background points. In experimental results, the target-to-clutter ratio (TCR) and the receiver operating characteristics (ROC) curves are computed experimentally to compare the performances of the proposed method and other five sophisticated methods. From the results, the proposed method shows a better discrimination of targets and clutters and has a lower false alarm rate than the existing moving target detection methods.
机译:红外移动目标检测是红外技术的重要组成部分。介绍了一种在复杂背景下基于跟踪兴趣点的红外小目标检测方法。首先,差分高斯(DOG)过滤器用于检测一组兴趣点(包括运动目标)。其次,利用人类视觉系统(HVS)启发的一种小目标跟踪方法,对多个帧的这些兴趣点进行跟踪,然后得到第一帧和最后一帧中兴趣点之间的相关性。最后,提出了一种新的聚类方法,称为R-means,根据相关性将这些兴趣点分为两组,一个是目标点,另一个是背景点。在实验结果中,通过实验计算了目标杂波比(TCR)和接收机工作特性(ROC)曲线,以比较所提出的方法和其他五种复杂方法的性能。从结果来看,与现有的运动目标检测方法相比,该方法具有更好的目标和杂波识别能力,误报率更低。

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