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Shape Recognition by Clustering and Matching of Skeletons

机译:通过聚类和骨骼匹配形状识别

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—We perform the task of shape recognition using a skeleton based method. Skeleton of the shape is considered as a free tree and is represented by a connectivity graph. Geometric features of the shape are captured using Radius function along the skeletal curve segments. Matching of the connectivity graphs based on their topologies and geometric features gives a distance measure for determining similarity or dissimilarity of the shapes. Then the distance measure is used for clustering and classification of the shapes by employing hierarchical clustering methods. Moreover, for each class, a median skeleton is computed and is located as the indicator of its related class. The resulted hierarchy of the shapes classes and their indicators are used for the task of shape recognition. This is performed for any given shape by a top-down traversing of the resulted hierarchy and matching with the indicators. We evaluate the proposed method by different shapes of silhouette datasets and we show how the method efficiently recognizes and classifies shapes.
机译:- 使用基于骨架的方法执行形状识别的任务。形状的骨架被认为是自由树,由连接图表示。使用沿骨架曲线段的半径函数捕获形状的几何特征。基于它们的拓扑和几何特征的连接图匹配给出了用于确定形状的相似性或不相似的距离测量。然后,距离测量用于通过采用分层聚类方法来聚类和分类形状。此外,对于每个类,计算中值骨架,并且位于与其相关类的指示器。 ShapeS类的结果层次结构及其指示符用于形状识别的任务。这对于任何给定的形状来执行由产生的层次结构的自上而下行程并与指示器匹配。我们通过不同形状的轮廓数据集评估所提出的方法,我们展示了该方法如何有效地识别和分类形状。

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