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Infrared small target detection algorithm based on feature salience

机译:基于特征显着度的红外小目标检测算法

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摘要

It is an important and challenging problem to detect small targets in cluttered scenes with low signal noise ratio (SNR) in infrared (IR) images. In order to solve this problem, a method based on feature salience is proposed for automatic target detection against a complex background. First, in this article, the system utilises the average absolute difference maximum (AADM) as the dissimilarity measurement between targets and the background region to enhance targets. Second, the minimum probability of error has been used to build the model of feature salience. Finally, by calculating the probability of features, this method solves the problem of multi-feather fusion. Experimental results show that the algorithm proposed has better performance with respect to probability of detection. It is an effective IR small target detection algorithm against complex backgrounds.
机译:在红外(IR)图像中以低信噪比(SNR)检测杂乱场景中的小目标是一个重要且具有挑战性的问题。为了解决这个问题,提出了一种基于特征显着性的复杂背景自动目标检测方法。首先,在本文中,系统利用平均绝对最大绝对值(AADM)作为目标与背景区域之间的差异测量来增强目标。其次,最小错误概率已用于构建特征显着性模型。最后,通过计算特征概率,该方法解决了多羽融合的问题。实验结果表明,该算法在检测概率上具有更好的性能。它是针对复杂背景的有效红外小目标检测算法。

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