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Image Classification for Mobile Web Browsing

机译:移动Web浏览的图像分类

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摘要

It is difficult for users of mobile devices such as cellular phones equipped with a small screen and a poor input interface to browse Web pages designed for desktop PCs with large displays. Many studies and commercial products have tried to solve this problem. Web pages include images that have various roles such as site menus, line headers for item-ization, and page titles. However, most studies of mobile Web browsing haven't paid much attention to the roles of Web images. In this paper, we define eleven Web image categories according to their roles and use these categories for proper Web image handling. We manually categorized 3,901 Web images collected from forty Web sites and extracted image features of each category according to the classification. By making use of the extracted features, we devised an automatic Web image classification method. Furthermore, we evaluated the automatic classification of real Web pages and achieved up to 83.1% classification accuracy. We also implemented an automatic Web page scrolling system as an application of our automatic image classification method.
机译:对于具有小屏幕和较差输入界面的移动设备(如蜂窝电话)的用户来说,很难浏览为具有大显示屏的台式PC设计的网页。许多研究和商业产品已经尝试解决这个问题。网页包含具有各种角色的图像,例如站点菜单,用于项目化的行标题和页面标题。但是,大多数有关移动Web浏览的研究并没有过多关注Web图像的作用。在本文中,我们根据其角色定义了11种Web图像类别,并将这些类别用于适当的Web图像处理。我们对从40个网站收集的3,901张Web图像进行了手动分类,并根据分类提取了每个类别的图像特征。通过利用提取的特征,我们设计了一种自动Web图像分类方法。此外,我们评估了真实网页的自动分类,并实现了高达83.1%的分类精度。我们还实现了自动网页滚动系统,作为我们自动图像分类方法的应用。

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