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Mining user activity as a context source for search and retrieval

机译:将用户活动挖掘作为搜索和检索的上下文来源

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Nowadays in information retrieval it is generally accepted that if we can better understand the context of searchers then this could help the search process, either at indexing time by including more metadata or at retrieval time by better modelling the user needs. In this work we explore how activity recognition from tri-axial accelerometers can be employed to model a user's activity as a means of enabling context-aware information retrieval. In this paper we discuss how we can gather user activity automatically as a context source from a wearable mobile device and we evaluate the accuracy of our proposed user activity recognition algorithm. Our technique can recognise four kinds of activities which can be used to model part of an individual's current context. We discuss promising experimental results, possible approaches to improve our algorithms, and the impact of this work in modelling user context toward enhanced search and retrieval.
机译:如今,在信息检索中,普遍认为,如果我们能够更好地了解搜索者的上下文,那么这可以通过在更好地建模用户需求的情况下包括更多元数据或在检索时间来帮助搜索过程。在这项工作中,我们探讨了如何使用三轴加速度计的活动识别来模拟用户的活动作为启用上下文感知信息检索的手段。在本文中,我们讨论如何将用户活动自动收集为来自可穿戴移动设备的上下文源,我们评估所提出的用户活动识别算法的准确性。我们的技术可以识别四种活动,可用于模拟个人当前背景的一部分。我们讨论了有希望的实验结果,改善我们算法的可能方法,以及这项工作对用户上下文朝着增强的搜索和检索的影响的影响。

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