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Session-based Suggestion of Topics for Geographic Exploratory Search

机译:基于会议的地理探索搜索主题的建议

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Exploratory information search can challenge users in the formulation of efficacious search queries. Moreover, complex information spaces, such as those managed by Geographical Information Systems, can disorient people, making it difficult to find relevant data. In order to address these issues, we developed a session-based suggestion model that proposes concepts as a "you might also be interested in" function, by taking the user's previous queries into account. Our model can be applied to incrementally generate suggestions in interactive search. It can be used for query expansion, and in general to guide users in the exploration of possibly complex spaces of data categories. Our model is based on a concept co-occurrence graph that describes how frequently concepts are searched together in search sessions. Starting from an ontological domain representation, we generated the graph by analyzing the query log of a major search engine. Moreover, we identified clusters of ontology concepts which frequently co-occur in the sessions of the log via community detection on the graph. The evaluation of our model provided satisfactory accuracy results.
机译:探索信息搜索可以挑战用户在配方中的有效搜索查询。此外,复杂的信息空间,例如由地理信息系统管理的那些,可以讨厌人们,使得难以找到相关数据。为了解决这些问题,我们开发了一个基于会话的建议模型,提出了“您可能对”功能“的概念,通过将用户的先前查询考虑到帐户。我们的模型可以应用于逐步生成交互式搜索的建议。它可用于查询扩展,一般来说,指导用户在探索可能复杂的数据类别空间中。我们的模型基于一个概念共同发生图,该图描述了搜索会话中搜索中搜索频率的频率。从本体论域表示开始,我们通过分析主要搜索引擎的查询日志来生成图表。此外,我们确定了在图形上通过社区检测在日志的会话中经常共同发生的本体概念的集群。对模型的评估提供了令人满意的精度结果。

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