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Connected Filtering on Tree-Based Shape-Spaces

机译:基于树的形状空间上的关联过滤

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摘要

Connected filters are well-known for their good contour preservation property. A popular implementation strategy relies on tree-based image representations: for example, one can compute an attribute characterizing the connected component represented by each node of the tree and keep only the nodes for which the attribute is sufficiently high. This operation can be seen as a thresholding of the tree, seen as a graph whose nodes are weighted by the attribute. Rather than being satisfied with a mere thresholding, we propose to expand on this idea, and to apply connected filters on this latest graph. Consequently, the filtering is performed not in the space of the image, but in the space of shapes built from the image. Such a processing of shape-space filtering is a generalization of the existing tree-based connected operators. Indeed, the framework includes the classical existing connected operators by attributes. It also allows us to propose a class of novel connected operators from the leveling family, based on non-increasing attributes. Finally, we also propose a new class of connected operators that we call morphological . Some illustrations and quantitative evaluations demonstrate the usefulness and robustness of the proposed shape-space filters.
机译:连接的滤波器以其良好的轮廓保持特性而闻名。一种流行的实现策略依赖于基于树的图像表示:例如,可以计算出表征由树的每个节点表示的连接组件的属性,并仅保留该属性具有足够高的节点。此操作可以看作是树的阈值,可以看作是其节点由属性加权的图形。我们建议对这个想法进行扩展,而不是仅仅对阈值感到满意,并在最新的图表上应用连接的滤波器。因此,不在图像的空间中执行滤波,而是在从图像构建的形状的空间中执行滤波。形状空间过滤的这种处理是对现有的基于树的连接运算符的概括。实际上,该框架按属性包括经典的现有连接的运算符。它也使我们能够基于非递增属性,提出一种来自调平家族的新型连通算子。最后,我们还提出了一类新的连通算子,我们称之为morphological。一些插图和定量评估证明了所提出的形状空间滤波器的有用性和鲁棒性。

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