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Spatio-temporal segmentation for the similarity measurement of deforming meshes

机译:时空分割用于变形网格的相似性测量

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Although there have been a large body of works on computing the similarity of static shapes, similarity judgments on deforming meshes are not studied well. In this study, we investigate a similarity measurement method for comparing two deforming meshes. Based on the degree of deformation, we first binarily label each triangle within each frame as either 'deformed' or 'rigid', then merge the 'deformed' triangles in both spatial and temporal domains for the segmentation. The segmentation results are encoded in a form of evolving graph, with an aim of obtaining a compact representation of the motion of the mesh. Finally, we formulate the similarity measurement as a sequence matching problem: after clustering similar graphs and assigning each of the graphs with the cluster labels, each deforming mesh is represented with a sequence of labels. Then, we apply a sequence alignment algorithm to compute the locally optimal alignment between the two label sequences, and to compute the similarity by normalizing the alignment score. The experimental results over several datasets show that the similarities of animation data can be captured correctly using our approach. This may be significant, as it solves a problem that cannot be handled by current approaches.
机译:尽管在计算静态形状的相似性方面有大量工作,但对变形网格的相似性判断的研究还不够深入。在这项研究中,我们研究了用于比较两个变形网格的相似度测量方法。基于变形的程度,我们首先将每个帧中的每个三角形标记为“变形”或“刚性”,然后在空间和时间域中合并“变形”的三角形进行分割。分割结果以进化图的形式编码,目的是获得网格运动的紧凑表示。最后,我们将相似性度量公式化为序列匹配问题:对相似的图进行聚类并为每个图分配聚类标签后,每个变形网格都由一个标签序列表示。然后,我们应用序列比对算法来计算两个标签序列之间的局部最佳比对,并通过对比对分数进行归一化来计算相似度。在多个数据集上的实验结果表明,使用我们的方法可以正确捕获动画数据的相似性。这可能很重要,因为它解决了当前方法无法解决的问题。

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