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A multi color space approach for texture classification: experiments with Outex, Vistex and Barktex image databases

机译:纹理分类的多色空间方法:外投,vistex和Barktex图像数据库的实验

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The color of pixels can be represented in different color spaces which respect different properties. Many authors have compared the classification performances reached by these color spaces in order to determine the one which would be the well suited to color texture analysis. However, the synthesis of these works shows that the choice of the color space depends on the considered texture images. Moreover, the prior determination of a color space which is well suited to the considered class discrimination is not easy. That is why we propose to consider a multi color space approach designed for color texture classification. It consists in selecting, among a set of color texture features extracted from images coded in different color spaces, those which are the most discriminating for the considered color textures. In this paper, we experimentally study the contribution of this multi color space with three well-known benchmark databases, namely Outex, Vistex and Barktex. Comparison and discussion are then carried out.
机译:像素的颜色可以在致各种颜色空间中表示,这致力于不同的属性。许多作者已经比较了这些颜色空间达到的分类性能,以确定将是适合于颜色纹理分析的良好纹理分析的演奏。然而,这些作品的合成表明,颜色空间的选择取决于所考虑的纹理图像。此外,先前确定非常适合于考虑的类别辨别的颜色空间并不容易。这就是为什么我们建议考虑一个设计用于颜色纹理分类的多色空间方法。它在选择中,在从不同颜色空间中编码的图像中提取的一组颜色纹理特征中,这些颜色纹理特征是最辨别的考虑颜色纹理。在本文中,我们通过三个众所周知的基准数据库来实验研究了这个多色空间的贡献,即外投,vistex和barktex。然后进行比较和讨论。

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