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Combining colour spaces: a multiple classifier approach to colour texture classification

机译:组合颜色空间:颜色纹理分类的多分类器方法

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We propose a novel approach to colour texture classification based on combinations of the information included in different colour spaces. Our approach is based on recent advances in features extracted using Gaussian Markov random fields. A number of comparative works on colour spaces have been presented, but not much has been done on combining the colour spaces to produce more robust discrimination systems. The work is an empirical study of decision combination approaches using classifiers obtained through training in various colour spaces and sub-spaces. We include results of experiments carried out using individual and combinations of six different colour spaces and their chromatic sub-spaces. Our results lead to the conclusion that colour texture classification can benefit significantly from techniques based on combining decisions obtained from classifiers trained on different colour spaces and sub-spaces.
机译:我们提出了一种基于不同颜色空间中包含的信息组合的颜色纹理分类的新颖方法。我们的方法基于使用高斯马尔可夫随机场提取的特征的最新进展。已经提出了许多关于色彩空间的比较工作,但是在组合色彩空间以产生更鲁棒的判别系统方面所做的工作并不多。这项工作是对通过使用在各种颜色空间和子空间中训练而获得的分类器的决策组合方法进行的实证研究。我们包括使用六个不同颜色空间及其色子空间的单个和组合进行的实验结果。我们的结果得出这样的结论,即基于结合从在不同颜色空间和子空间上训练的分类器获得的决策的技术,颜色纹理分类可以显着受益。

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