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Motion segmentation using feature selection and subspace method based on shape space

机译:基于形状空间的特征选择和子空间方法进行运动分割

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Motion segmentation using feature correspondences can be regarded as a combinatorial problem. A motion segmentation algorithm using feature selection and subspace method is proposed to solve the combinatorial problem. Feature selection is carried out as computation of a basis of the linear space that represents the shape of objects. Features can be selected from "each" object "without segmentation information" by keeping the correspondence of basis vectors to features. Only four or less features of each object are used; the combination in segmentation is reduced by feature selection. Thus the combinatorial problem can be solved without optimization. The remaining features in selection are classified using the subspace method based on the segmentation result of selected features. Experiments are done to consider the usefulness of the proposed method.
机译:使用特征对应的运动分割可以被认为是一个组合问题。提出了一种基于特征选择和子空间的运动分割算法。特征选择是作为表示对象形状的线性空间的基础的计算而进行的。通过保持基向量与特征的对应关系,可以从“没有分割信息”的“每个”对象中选择特征。每个对象仅使用四个或更少的特征。特征选择减少了分割的组合。因此,无需优化即可解决组合问题。基于所选特征的分割结果,使用子空间方法对选择中的其余特征进行分类。进行了实验,以考虑该方法的实用性。

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