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A framework for automatic landmark identification using a new method of nonrigid correspondence

机译:一种使用非刚性对应新方法的自动地标识别框架

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A framework for automatic landmark identification is presented based on an algorithm for corresponding the boundaries of two shapes. The auto-landmarking framework employs a binary tree of corresponded pairs of shapes to generate landmarks automatically on each of a set of example shapes. The landmarks are used to train statistical shape models, known as point distribution models. The correspondence algorithm locates a matching pair of sparse polygonal approximations, one for each of a pair of boundaries by minimizing a cost function, using a greedy algorithm. The cost function expresses the dissimilarity in both the shape and representation error (with respect to the defining boundary) of the sparse polygons. Results are presented for three classes of shape which exhibit various types of nonrigid deformation.
机译:基于用于对应两个形状边界的算法,提出了一种自动地标识别框架。自动地标框架使用对应的形状对的二进制树在一组示例形状中的每一个上自动生成地标。地标用于训练统计形状模型,称为点分布模型。对应算法使用贪婪算法,通过最小化代价函数,找到一对匹配的稀疏多边形近似值,以一对边界中的每一个为边界。代价函数表示稀疏多边形的形状和表示误差(相对于定义边界)的不相似性。呈现了三类形状的结果,这些形状表现出各种类型的非刚性变形。

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