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Path-based clustering for grouping of smooth curves and texture segmentation

机译:基于路径的聚类,用于平滑曲线的分组和纹理分割

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Perceptual grouping organizes image parts in clusters based on psychophysically plausible similarity measures. We propose a novel grouping method in this paper, which stresses connectedness of image elements via mediating elements rather than favoring high mutual similarity. This grouping principle yields superior clustering results when objects are distributed on low-dimensional extended manifolds in a feature space, and not as local point clouds. In addition to extracting connected structures, objects are singled out as outliers when they are too far away from any cluster structure. The objective function for this perceptual organization principle is optimized by a fast agglomerative algorithm. We report on perceptual organization experiments where small edge elements are grouped to smooth curves. The generality of the method is emphasized by results from grouping textured images with texture gradients in an unsupervised fashion.
机译:感知分组基于心理上合理的相似性度量将图像部分组织成簇。在本文中,我们提出了一种新颖的分组方法,该方法通过中介元素强调图像元素的连通性,而不是主张高度的相似性。当对象分布在特征空间中的低维扩展流形上而不是局部点云中时,这种分组原理会产生出色的聚类结果。除了提取连接的结构之外,如果对象离任何群集结构太远,它们也会被作为离群值选出来。通过快速凝聚算法优化了这种感知组织原理的目标函数。我们报告了将小边缘元素分组为平滑曲线的感知组织实验。通过以无监督方式将纹理图像与纹理渐变分组的结果强调了该方法的通用性。

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