Definition of a robust measurement of similarity for the localization of small shapes in scenes

X. Fernández, J. Ferré‐Borrull, S. Bosch
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引用次数: 1

Abstract

After analyzing the problems related to finding a small shape in a scene, we introduce a nonparametric similarity measure based on the Kolmogorov-Smirnov statistic, which proves to be robust for template-matching problems where a target of binary characteristics is to be located inside a gray-scale image. We show that the Kolmogorov-Smirnov statistic gives the optimum thresholding level for the image and may be computed without actual thresholding of the image. Some interesting properties of the proposed similarity measure are exposed and compared to the corresponding properties of normalized correlation.
场景中小形状定位的鲁棒相似性度量定义
在分析了场景中寻找小形状的相关问题后,我们引入了一种基于Kolmogorov-Smirnov统计量的非参数相似性度量,该度量对于灰度图像中具有二值特征的目标的模板匹配问题具有鲁棒性。我们证明了Kolmogorov-Smirnov统计量给出了图像的最佳阈值水平,并且可以在没有图像实际阈值的情况下计算。揭示了所提出的相似性度量的一些有趣的性质,并将其与归一化相关的相应性质进行了比较。
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