视觉注意力元数据从图片浏览

Benoit Baccot, V. Charvillat, R. Grigoras, Cezar Plesca
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引用次数: 6

摘要

图片浏览已经成为当今移动设备不可或缺的功能。为了克服显示尺寸的限制,信息系统可能会受益于移动用户提供的大量点击流。当搜索图像时,这种隐式反馈提供了关于视觉图像内容和查询结果相关性的提示。基于先前关于用户注意力模型的工作,我们提出了一个实用的、通用的网络使用跟踪平台。来自点击流的隐式反馈使得生成视觉注意力元数据成为可能。这些元数据是用户兴趣图(uim),其中突出显示感兴趣的区域(roi)。这些uim用于建立和加强关键字与图像的关系。本文还提出了语义标注的一个尝试性应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visual Attention Metadata from Pictures Browsing
Image browsing has become an indispensable feature for today's mobile devices. To overcome their limited display size, information systems may benefit from the abundant clickstream provided by mobile users. This implicit feedback turns out to be very informative providing hints on both the visual image content and the relevance of the query results when searching for images. Building on previous works on user attention models, we propose a practical, yet generic platform for web usage tracking. Implicit feedback from the clickstream makes it possible to generate visual attention metadata. These metadata are user interest maps (UIMs) in which regions of interest (ROIs) become highlighted. These UIMs are used to establish and reinforce keyword-to-image relations. A tentative application for semantic annotation is also presented.
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