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Texture Characterization via Automatic Threshold Selection on Image-Generated Complex Network

机译:通过图像生成的复杂网络上的自动阈值选择进行纹理表征

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摘要

This work presents an automated approach to texture characterization through complex networks. By applying an automatic threshold selection for network degree map generation, we managed to achieve significant reduction in the number of descriptors used. The method is adaptive to any image database, because it is based on the analysis of the energy value of the degree histogram of the complex networks generated particularly from each database. Experiments using the proposed method for texture classification using databases from literature show that the proposed method can not only reduce feature vector size, but in some cases also improve correct classification rates when compared to other state of the art methods.
机译:这项工作提出了一种通过复杂网络进行纹理表征的自动化方法。通过为网络度图生成应用自动阈值选择,我们设法显着减少了所用描述符的数量。该方法适用于任何图像数据库,因为它基于对特别是从每个数据库生成的复杂网络的度直方图的能量值的分析。使用文献中的数据库对提出的方法进行纹理分类的实验表明,与其他现有方法相比,提出的方法不仅可以减小特征向量的大小,而且在某些情况下还可以提高正确的分类率。

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