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From maximum common submaps to edit distances of generalized maps

机译:从最大的公共子图到编辑广义图的距离

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Generalized maps are widely used to model the topology of nD objects (such as images) by means of incidence and adjacency relationships between cells (vertices, edges, faces, volumes, etc.). In this paper, we introduce distance measures for comparing generalized maps, which is an important issue for image processing and analysis. We introduce a first distance measure which is defined by means of the size of a largest common submap. This distance is generic: it is parameterized by a submap relation (which may either be induced or partial), and by weights to balance the importance of darts with respect to seams. We show that this distance measure is a metric. We also introduce a map edit distance, which is defined by means of a minimum cost sequence of edit operations that should be performed to transform a map into another map. We relate maximum common submaps with the map edit distance by introducing special edit cost functions for which they are equivalent. We experimentally evaluate these distance measures and show that they may be used to classify meshes.
机译:广义图通过单元(顶点,边缘,面,体积等)之间的入射和邻接关系,被广泛用于对nD对象(例如图像)的拓扑进行建模。在本文中,我们介绍了用于比较广义地图的距离度量,这是图像处理和分析的重要问题。我们介绍了通过最大公共子图的大小定义的第一距离度量。该距离是通用的:它是通过子图关系(可以是诱导的或部分的)和权重来参数化的,以平衡飞镖相对于接缝的重要性。我们表明该距离度量是一个度量。我们还介绍了地图编辑距离,该距离是通过将地图转换为另一张地图时应执行的编辑操作的最低成本顺序来定义的。通过引入等效的特殊编辑成本函数,我们将最大公共子图与地图编辑距离相关联。我们通过实验评估了这些距离度量,并表明它们可用于对网格进行分类。

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