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Ontology-based personalised retrieval in support of reminiscence

机译:基于本体的个性化检索支持回忆

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摘要

This research proposes a knowledge-based framework for integrating ontology-based personalised retrieval and reminiscence support. The aim is to assist people in recalling, browsing and re-discovering events from their lives by considering their profiles and background knowledge and providing them with customised information retrieval. To model a user's background knowledge, this paper defines a user profile space (UPS) model and describes its construction method. The model has a dynamic structure based on relevance feedback and interactions with users. Furthermore, this work introduces a multi-ontology query expansion model which uses user-oriented ontologies, UPSs and semantic feature-selection algorithms to expand queries. In this model, knowledge-spanning trees are generated from ontology/UPS graphs based on the queries. These knowledge-spanning trees contain semantic features which enhance the representations of the original queries and further facilitate personalised retrieval on a semantic basis. The experimental results indicate that the proposed approach consistently outperforms term-based retrieval on precision, recall and f-score, which proves the positive effect of using ontology/user profile spaces in query expansion and personalised retrieval.
机译:这项研究提出了一个基于知识的框架,用于集成基于本体的个性化检索和回忆支持。目的是通过考虑个人资料和背景知识并为他们提供自定义的信息检索,来帮助人们回忆,浏览和重新发现生活中的事件。为了对用户的背景知识进行建模,本文定义了用户配置文件空间(UPS)模型并描述了其构建方法。该模型具有基于相关性反馈以及与用户交互的动态结构。此外,这项工作引入了多本体查询扩展模型,该模型使用面向用户的本体,UPS和语义特征选择算法来扩展查询。在该模型中,基于查询的本体/ UPS图生成了知识树。这些知识跨越的树包含语义特征,这些语义特征增强了原始查询的表示,并进一步促进了基于语义的个性化检索。实验结果表明,该方法在精度,查全率和f得分方面始终优于基于词条的检索,这证明了在查询扩展和个性化检索中使用本体/用户配置文件空间的积极作用。

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