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Supporting exploratory video retrieval tasks with grouping and recommendation

机译:通过分组和推荐支持探索性视频检索任务

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In this paper, we present ViGOR (Video Grouping, Organisation and Recommendation), an exploratory video retrieval system. Exploratory video retrieval tasks are hampered by the lack of semantics associated to video and the overwhelming amount of video items stored in these types of collections (e.g. YouTube, MSN video, etc.). In order to help facilitate these exploratory video search tasks we present a system that utilises two complementary approaches: the first a new search paradigm that allows the semantic grouping of videos and the second the exploitation of past usage history in order to provide video recommendations. We present two types of recommendation techniques adapted to the grouping search paradigm: the first is a global recommendation, which couples the multi-faceted nature of explorative video retrieval tasks with the current user need of information in order to provide recommendations, and second is a local recommendation, which exploits the organisational features of ViGOR in order to provide more localised recommendations based on a specific aspect of the user task. Two user evaluations were carried out in order to (1) validate the new search paradigm provided by ViGOR, characterised by the grouping functionalities and (2) evaluate the usefulness of the proposed recommendation approaches when integrated into ViGOR. The results of our evaluations show (1) that the grouping, organisational and recommendation functionalities can result in an improvement in the users' search performance without adversely impacting their perceptions of the system and (2) that both recommendation approaches are relevant to the users at different stages of their search, showing the importance of using multi-faceted recommendations for video retrieval systems and also illustrating the many uses of collaborative recommendations for exploratory video search tasks.
机译:在本文中,我们介绍了探索性视频检索系统ViGOR(视频分组,组织和推荐)。由于缺乏与视频相关的语义以及存储在这些类型的馆藏中的大量视频项目(例如YouTube,MSN视频等),探索性的视频检索任务受到了阻碍。为了帮助促进这些探索性视频搜索任务,我们提出了一种利用两种互补方法的系统:第一种是允许对视频进行语义分组的新搜索范式,第二种是利用过去的使用历史来提供视频推荐。我们提供了两种适合分组搜索范式的推荐技术:第一种是全局推荐,它将探索性视频检索任务的多面性与当前用户的信息需求相结合,以提供推荐;第二种是本地推荐,它利用ViGOR的组织功能,以便根据用户任务的特定方面提供更多本地化的推荐。进行了两次用户评估,以(1)验证由ViGOR提供的,以分组功能为特征的新搜索范例,以及(2)在将所建议的推荐方法集成到ViGOR中时评估其有效性。我们的评估结果表明:(1)分组,组织和推荐功能可以提高用户的搜索性能,而不会负面影响他们对系统的看法;(2)两种推荐方法都与用户相关在搜索的不同阶段,显示了对视频检索系统使用多方面推荐的重要性,还说明了协作性推荐在探索性视频搜索任务中的许多用途。

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