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Multimodal Retrieval with Diversification and Relevance Feedback for Tourist Attraction Images

机译:具吸引力和相关性反馈的旅游景点图像多峰检索

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In this article, we present a novel framework that can produce a visual description of a tourist attraction by choosing the most diverse pictures from community-contributed datasets, which describe different details of the queried location. The main strength of the proposed approach is its flexibility that permits us to filter out non-relevant images and to obtain a reliable set of diverse and relevant images by first clustering similar images according to their textual descriptions and their visual content and then extracting images from different clusters according to a measure of the user's credibility. Clustering is based on a two-step process, where textual descriptions are used first and the clusters are then refined according to the visual features. The degree of diversification can be further increased by exploiting users' judgments on the results produced by the proposed algorithm through a novel approach, where users not only provide a relevance feedback but also a diversity feedback. Experimental results performed on the MediaEval 2015 "Retrieving Diverse Social Images" dataset show that the proposed framework can achieve very good performance both in the case of automatic retrieval of diverse images and in the case of the exploitation of the users' feedback. The effectiveness of the proposed approach has been also confirmed by a small case study involving a number of real users.
机译:在本文中,我们提出了一个新颖的框架,该框架可以通过从社区贡献的数据集中选择最多样化的图片来生成对旅游景点的直观描述,这些图片描述了所查询位置的不同细节。提议的方法的主要优点是它的灵活性,它允许我们过滤掉不相关的图像并通过首先根据它们的文本描述和视觉内容将相似的图像聚类,然后从中提取图像来获得可靠的一组多样化且相关的图像。根据用户信誉的衡量标准来划分不同的集群。聚类基于两步过程,其中首先使用文字描述,然后根据视觉特征对聚类进行细化。可以通过一种新颖的方法,通过利用用户对所提出算法产生的结果的判断,来进一步提高多样化程度,用户不仅可以提供相关性反馈,还可以提供多样性反馈。在MediaEval 2015“检索多样的社会图像”数据集上进行的实验结果表明,在自动检索各种图像和利用用户反馈的情况下,提出的框架都可以实现非常好的性能。一项涉及大量实际用户的小案例研究也证实了该方法的有效性。

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