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Tag-based personalized image ranking in event browsing - Springer

机译:事件浏览中基于标签的个性化图像排名-Springer

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摘要

Many image sharing websites, e.g. Flickr, Google+ , allow users to upload images as an event, and users can browse the images others uploaded as events. The fact that people usually browse only the first few images of an event then decide whether the event is what they want makes us believe that it is necessary to present those images people favor on the very first position for each event. Here we propose a new tag- based personalized image-ranking algorithm in event browsing such that it gives image higher score if it: a) is important in the event, b) matches user’s preference. c) matches user’s query. To this end, we first adopt a local matching model to assign images an original score based on whether this image satisfies user’s query and preference. We then propose a global ranking model to take the local scores as initial values and make the salience scores iteratively smooth with respect to all images returned from the events of the query.
机译:许多图片共享网站,例如Flickr,Google +,允许用户将图像上传为事件,并且用户可以浏览其他作为事件上传的图像。人们通常只浏览事件的前几张图像,然后再决定事件是否是他们想要的事实,这使我们相信,有必要在每个事件的第一个位置显示人们喜欢的图像。在这里,我们提出了一种新的基于标签的个性化图像排名算法,该算法可在事件浏览中使用,以便在以下情况下给图像更高的评分:a)在事件中很重要,b)符合用户的偏好。 c)匹配用户的查询。为此,我们首先采用本地匹配模型,根据该图片是否满足用户的查询和偏好为图片分配原始分数。然后,我们提出一个全局排名模型,以将本地分数作为初始值,并使显着性分数相对于从查询事件返回的所有图像进行迭代平滑处理。

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