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首页> 外文期刊>Pattern Analysis and Machine Intelligence, IEEE Transactions on >Directed Connected Operators: Asymmetric Hierarchies for Image Filtering and Segmentation
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Directed Connected Operators: Asymmetric Hierarchies for Image Filtering and Segmentation

机译:定向连通算子:图像过滤和分割的不对称层次

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摘要

Connected operators provide well-established solutions for digital image processing, typically in conjunction with hierarchical schemes. In graph-based frameworks, such operators basically rely on symmetric adjacency relations between pixels. In this article, we introduce a notion of for hierarchical image processing, by also considering non-symmetric adjacency relations. The induced image representation models are no longer partition hierarchies (i.e., trees), but directed acyclic graphs that generalize standard morphological tree structures such as component trees, binary partition trees or hierarchical watersheds. We describe how to efficiently build and handle these richer data structures, and we illustrate the versatility of the proposed framework in image filtering and image segmentation.
机译:相连的运营商通常结合分层方案为数字图像处理提供完善的解决方案。在基于图的框架中,此类运算符基本上依赖于像素之间的对称邻接关系。在本文中,我们还考虑了非对称邻接关系,介绍了分层图像处理的概念。诱导的图像表示模型不再是分区层次结构(即树),而是有向无环图,可对标准形态树结构(例如组件树,二元分区树或层次分水岭)进行概括。我们描述了如何有效地构建和处理这些更丰富的数据结构,并说明了所提出框架在图像过滤和图像分割中的多功能性。

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