Image understanding using fuzzy isomorphism of fuzzy structures

C. Demko, E. Zahzah
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引用次数: 15

Abstract

We propose a system architecture able to classify objects into models. Each object is represented by 2D color image. The fuzzy sets theory has been a fundamental base to build algorithms presented here. Each image is segmented into semantically annotated regions. In a second step, we extract structural information which are coded into graphs. At the end, we obtain a semantic graph representing the image. The classification will be done after finding the isomorphism between the 2D image graph and the available model graphs.<>
利用模糊结构的模糊同构进行图像理解
我们提出了一种能够将对象分类为模型的系统架构。每个物体用二维彩色图像表示。模糊集理论是构建本文所提出的算法的基础。每个图像被分割成语义标注的区域。在第二步中,我们提取结构信息,并将其编码成图形。最后,我们得到了一个表示图像的语义图。在找到二维图像图与可用模型图之间的同构关系后进行分类
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