首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >FOCUSR: Feature Oriented Correspondence Using Spectral Regularization--A Method for Precise Surface Matching
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FOCUSR: Feature Oriented Correspondence Using Spectral Regularization--A Method for Precise Surface Matching

机译:FOCUSR:使用光谱正则化的面向特征的对应关系-精确的表面匹配方法

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Existing methods for surface matching are limited by the tradeoff between precision and computational efficiency. Here, we present an improved algorithm for dense vertex-to-vertex correspondence that uses direct matching of features defined on a surface and improves it by using spectral correspondence as a regularization. This algorithm has the speed of both feature matching and spectral matching while exhibiting greatly improved precision (distance errors of 1.4 percent). The method, FOCUSR, incorporates implicitly such additional features to calculate the correspondence and relies on the smoothness of the lowest-frequency harmonics of a graph Laplacian to spatially regularize the features. In its simplest form, FOCUSR is an improved spectral correspondence method that nonrigidly deforms spectral embeddings. We provide here a full realization of spectral correspondence where virtually any feature can be used as an additional information using weights on graph edges, but also on graph nodes and as extra embedded coordinates. As an example, the full power of FOCUSR is demonstrated in a real-case scenario with the challenging task of brain surface matching across several individuals. Our results show that combining features and regularizing them in a spectral embedding greatly improves the matching precision (to a submillimeter level) while performing at much greater speed than existing methods.
机译:现有的表面匹配方法受到精度和计算效率之间折衷的限制。在这里,我们提出了一种用于密集顶点到顶点对应的改进算法,该算法使用表面上定义的特征的直接匹配,并通过使用频谱对应作为正则化对其进行改进。该算法具有特征匹配和频谱匹配的速度,同时展现出大大提高的精度(距离误差为1.4%)。该方法FOCUSR隐式地合并了这些附加特征以计算对应关系,并依靠图拉普拉斯图的最低频率谐波的平滑度在空间上对特征进行正则化。在最简单的形式中,FOCUSR是一种改进的频谱对应方法,可以使频谱嵌入非刚性变形。我们在这里提供了频谱对应关系的完整实现,其中几乎任何特征都可以使用图边缘上的权重用作附加信息,还可以在图节点上用作权重并用作额外的嵌入坐标。例如,在实际情况下演示了FOCUSR的全部功能,其中具有挑战性的任务是跨多个人进行大脑表面匹配。我们的结果表明,在频谱嵌入中组合特征并对其进行正则化可以大大提高匹配精度(至亚毫米级),同时执行速度要比现有方法快得多。

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