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Diversifying Landmark Image Search Results by Learning Interested Views from Community Photos

机译:通过从社区照片中学习有趣的观点来使地标图像搜索结果多样化

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In this paper, we demonstrate a novel landmark photo search and browsing system, Agate, which ranks landmark image search results considering their relevance, diversity and quality. Agate learns from community photos the most interested aspects and related activities of a landmark, and generates adaptively a Table of Content (TOC) as a summary of the attractions to facilitate user browsing. Image search results are thus re-ranked with the TOC so as to ensure a quick overview of the attractions of the landmarks. A novel non-parametric TOC generation and re-ranking algorithm, MoM-DPM Sets, is proposed as the key technology of Agate. Experimental results based on human evaluation show the effectiveness of our model and user preference for Agate.
机译:在本文中,我们演示了一种新颖的地标照片搜索和浏览系统Agate,该系统根据地标图像的搜索结果的相关性,多样性和质量对其进行排名。玛瑙从社区照片中学习地标最感兴趣的方面和相关活动,并自适应地生成目录(TOC)作为景点的摘要,以方便用户浏览。因此,图像搜索结果将与目录一起重新排序,以确保快速浏览地标景点。提出了一种新颖的非参数TOC生成和重排序算法MoM-DPM Sets,作为玛瑙的关键技术。基于人类评估的实验结果表明了我们模型的有效性和用户对玛瑙的偏爱。

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