Planting, Growing, and Pruning Trees: Connected Filters Applied to Document Image Analysis

G. Lazzara, T. Géraud, Roland Levillain
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引用次数: 12

Abstract

Mathematical morphology, when used in the field of document image analysis and processing, is often limited to some classical yet basic tools. The domain however features a lesser-known class of powerful operators, called connected filters. These operators present an important property: they do not shift nor create contours. Most connected filters are linked to a tree-based representation of an image's contents, where nodes represent connected components while edges express an inclusion relation. By computing attributes for each node of the tree from the corresponding connected component, then selecting nodes according to an attribute-based criterion, one can either filter or recognize objects in an image. This strategy is very intuitive, efficient, easy to implement, and actually well-suited to processing images of magazines. Examples of applications include image simplification, smart binarization, and object identification.
种植,生长和修剪树木:连接过滤器应用于文档图像分析
数学形态学在文档图像分析和处理领域的应用,往往局限于一些经典但基本的工具。然而,该领域有一类不太为人所知的强大算子,称为连通滤波器。这些算子有一个重要的特性:它们不会移动,也不会产生轮廓。大多数连接的过滤器都链接到图像内容的基于树的表示,其中节点表示连接的组件,而边缘表示包含关系。通过从相应的连接组件中计算树的每个节点的属性,然后根据基于属性的标准选择节点,可以过滤或识别图像中的对象。这个策略非常直观,高效,易于实现,实际上非常适合处理杂志图像。应用实例包括图像简化、智能二值化和对象识别。
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