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Classification of Repetitive Patterns Using Symmetry Group Prototypes

机译:使用对称组原型对重复模式进行分类

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We present a novel computational framework for automatic classification method by symmetries, for periodic images applied to content based image retrieval. The existing methods have several drawbacks because of the use of heuristics. These methods have shown low classification values when images exhibit imperfections due to the fabrication or the hand made process. Also, there is no way to give some computation of the classification goodness-of-fit. We propose to obtain an automatic parameter estimation for symmetry analysis. Thus, the image classification is redefined as distances computation to the prototypes of a set of defined classes. Our experimental results improves the state of the art in wallpaper classification methods.
机译:我们提出了一种新的基于对称性的自动分类方法的计算框架,适用于应用于基于内容的图像检索的周期性图像。现有方法由于使用启发式方法而具有多个缺点。当图像由于制造或手工处理而出现瑕疵时,这些方法显示出较低的分类值。同样,也没有办法对分类的拟合优度进行一些计算。我们建议为对称分析获得一个自动参数估计。因此,将图像分类重新定义为到一组已定义类的原型的距离计算。我们的实验结果改善了墙纸分类方法的最新水平。

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