Anticipating Information Needs Based on Check-in Activity

Jan R. Benetka, K. Balog, K. Nørvåg
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引用次数: 20

Abstract

In this work we address the development of a smart personal assistant that is capable of anticipating a user's information needs based on a novel type of context: the person's activity inferred from her check-in records on a location-based social network. Our main contribution is a method that translates a check-in activity into an information need, which is in turn addressed with an appropriate information card. This task is challenging because of the large number of possible activities and related information needs, which need to be addressed in a mobile dashboard that is limited in size. Our approach considers each possible activity that might follow after the last (and already finished) activity, and selects the top information cards such that they maximize the likelihood of satisfying the user's information needs for all possible future scenarios. The proposed models also incorporate knowledge about the temporal dynamics of information needs. Using a combination of historical check-in data and manual assessments collected via crowdsourcing, we show experimentally the effectiveness of our approach.
基于签到活动预测信息需求
在这项工作中,我们致力于开发一种智能个人助理,它能够基于一种新型的环境来预测用户的信息需求:从基于位置的社交网络上的签到记录中推断出该人的活动。我们的主要贡献是一种将签入活动转换为信息需求的方法,然后用适当的信息卡来处理信息需求。这项任务具有挑战性,因为有大量可能的活动和相关信息需求,需要在大小有限的移动仪表板中解决。我们的方法考虑在最后一个(和已经完成的)活动之后可能进行的每个可能的活动,并选择最重要的信息卡,以便它们最大限度地满足所有可能的未来场景的用户信息需求的可能性。所提出的模型还包含有关信息需求的时间动态的知识。结合使用历史登记数据和通过众包收集的人工评估,我们通过实验证明了我们方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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