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Clustering of singular value decomposition of image data with applications to texture classification

机译:应用程序对图像数据的奇异值分解与纹理分类的聚类

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In this paper, some applications of a local version of Singular Value Decomposition (SVD) to texture classification and texture segmentation are studied. We introduce two measures, obtained from SVD transform, which capture some of the perceptual and conceptual features in an image. One of the measures classifies the textures by their roughness and structures. Experimental results show that these measures are suitable for texture clustering and image segmentation and they are robust relative to changes in lighting.
机译:本文研究了本地版本的奇异值分解(SVD)的一些应用,以纹理分类和纹理分割。我们介绍了从SVD变换获得的两项措施,该措施捕获了图像中的一些感知和概念特征。其中一个措施通过他们的粗糙和结构对纹理进行分类。实验结果表明,这些措施适用于纹理聚类和图像分割,它们相对于照明的变化是坚固的。

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