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Proactive Information Retrieval by Capturing Search Intent from Primary Task Context

机译:通过从主要任务上下文中捕获搜索意图来进行主动信息检索

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摘要

A significant fraction of information searches are motivated by the user's primary task. An ideal search engine would be able to use information captured from the primary task to proactively retrieve useful information. Previous work has shown that many information retrieval activities depend on the primary task in which the retrieved information is to be used, but fairly little research has been focusing on methods that automatically learn the informational intents from the primary task context. We study how the implicit primary task context can be used to model the user's search intent and to proactively retrieve relevant and useful information. Data comprising of logs from a user study, in which users are writing an essay, demonstrate that users' search intents can be captured from the task and relevant and useful information can be proactively retrieved. Data from simulations with several datasets of different complexity show that the proposed approach of using primary task context generalizes to a variety of data. Our findings have implications for the design of proactive search systems that can infer users' search intent implicitly by monitoring users' primary task activities.
机译:信息搜索的很大一部分是由用户的主要任务驱动的。理想的搜索引擎将能够使用从主要任务中捕获的信息来主动检索有用的信息。先前的工作表明,许多信息检索活动都依赖于要使用检索到的信息的主要任务,但是相当少的研究集中在从主要任务上下文自动学习信息意图的方法上。我们研究如何将隐式主要任务上下文用于建模用户的搜索意图并主动检索相关和有用的信息。包含来自用户研究的日志的数据(用户正在其中撰写论文)证明,可以从任务中捕获用户的搜索意图,并且可以主动检索相关和有用的信息。来自具有不同复杂度的几个数据集的仿真数据表明,使用主要任务上下文的建议方法可以推广到各种数据。我们的发现对主动搜索系统的设计具有意义,该系统可以通过监视用户的主要任务活动来隐式推断用户的搜索意图。

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