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Hybrid image representation methods for automatic image annotation: A survey

机译:用于自动图像注释的混合图像表示方法:一项调查

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In most automatic image annotation systems, images are represented with low level features using either global methods or local methods. In global methods, the entire image is used as a unit. Local methods divide images into blocks where fixed-size sub-image blocks are adopted as sub-units; or into regions by using segmented regions as sub-units in images. In contrast to typical automatic image annotation methods that use either global or local features exclusively, several recent methods have considered incorporating the two kinds of information, and believe that the combination of the two levels of features is beneficial in annotating images. In this paper, we provide a survey on automatic image annotation techniques according to one aspect: feature extraction, and, in order to complement existing surveys in literature, we focus on the emerging image annotation methods: hybrid methods that combine both global and local features for image representation.
机译:在大多数自动图像注释系统中,使用全局方法或局部方法以低级特征表示图像。在全局方法中,整个图像用作一个单元。局部方法将图像划分为块,其中采用固定大小的子图像块作为子单元;通过使用分割的区域作为图像中的子单元来划分区域。与仅使用全局或局部特征的典型自动图像注释方法相比,几种最近的方法已考虑合并两种信息,并认为将这两个级别的特征组合在一起可对图像进行注释。在本文中,我们从一个方面对自动图像注释技术进行了调查:特征提取,并且为了补充文献中的现有调查,我们集中于新兴的图像注释方法:结合了全局和局部特征的混合方法用于图像表示。

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