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首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >Infrared Small Target Detection Based on Multiscale Local Contrast Measure Using Local Energy Factor
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Infrared Small Target Detection Based on Multiscale Local Contrast Measure Using Local Energy Factor

机译:基于多尺度局部对比度测量的红外小目标检测使用局部能量因子

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摘要

Infrared small target detection is one of the most important parts of infrared search and tracking (IRST) system. Generally, the small and dim target is of low signal-to-noise ratio and buried in the complicated background and heavy noise, which makes it extremely difficult to be detected with low false alarm rates. To solve this problem, we propose a small target detection method based on multiscale local contrast measure. Different from conventional methods, we novelly measure the local contrast from two aspects: local dissimilarity and local brightness difference. First, we present a new dissimilarity measure called the local energy factor (LEF) to describe the dissimilarity between the small targets and their surrounding backgrounds. Second, the feature of the brightness difference between the small targets and the backgrounds is utilized. Afterward, the local contrast is measured by taking both features of the above into account. Finally, an adaptive segmentation method is applied to extract the small targets from the backgrounds. Extensive experiments on real test data set demonstrate that our approach outperforms the state-of-the-art approaches.
机译:红外小目标检测是红外搜索和跟踪(IRST)系统中最重要的部分之一。通常,小且暗淡的目标具有低信噪比,并且在复杂的背景和重质噪声中掩埋,这使得具有低误报率的难以检测到极其困难。为了解决这个问题,我们提出了一种基于多尺度局部对比度测量的小目标检测方法。与传统方法不同,我们新建了两个方面的局部对比:局部不相似性和局部亮度差异。首先,我们提出了一种称为局部能量因子(LEF)的新的不相似度量来描述小目标与周围背景之间的异常态度。其次,利用小目标与背景之间的亮度差的特征。之后,通过将上述两种特征考虑到所述局部对比度来测量。最后,应用自适应分割方法以从背景中提取小目标。关于实际测试数据集的广泛实验表明我们的方法优于最先进的方法。

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