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Evaluating Three Image Segmentation Algorithms from Two Perspectives: Segmentation Error Measures and Image Annotation

机译:从两个角度评估三种图像分割算法:分割误差测度和图像注释

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Image segmentation has an essential role in the image annotation process which assigns meaningful words to an image taking into account its content. For this reason it is important to identify which segmentation algorithm is producing better results. This evaluation can be made using segmentation error measures for consistency quantification and by analyzing the results of the annotation process for each segmentation algorithm that is investigated. This paper presents a system used for the evaluation of three image segmentation algorithms: the color set back-projection algorithm, the local variation algorithm, the segmentation algorithm based on a hexagonal structure from two perspectives: segmentation error measures and image annotation.
机译:图像分割在图像注释过程中起着至关重要的作用,该过程会考虑到图像的内容为图像分配有意义的词。因此,重要的是确定哪种分割算法产生更好的结果。可以使用分段误差度量进行一致性量化,并通过分析所研究的每种分段算法的注释过程结果来进行此评估。本文从两个方面提出了一种用于评估三种图像分割算法的系统:彩色集反投影算法,局部变化算法,基于六边形结构的分割算法:分割误差测度和图像标注。

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