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Social Semantic Query Expansion

机译:社会语义查询扩展

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摘要

Weak semantic techniques rely on the integration of Semantic Web techniques with social annotations and aim to embrace the strengths of both. In this article, we propose a novel weak semantic technique for query expansion. Traditional query expansion techniques are based on the computation of two-dimensional co-occurrence matrices. Our approach proposes the use of three-dimensional matrices, where the added dimension is represented by semantic classes (i.e., categories comprising all the terms that share a semantic property) related to the folksonomy extracted from social bookmarking services, such as delicious and StumbleUpon. The results of an indepth experimental evaluation performed on both artificial datasets and real users show that our approach outperforms traditional techniques, such as relevance feedback and personalized PageRank, so confirming the validity and usefulness of the categorization of the user needs and preferences in semantic classes. We also present the results of a questionnaire aimed to know the users opinion regarding the system. As one drawback of several query expansion techniques is their high computational costs, we also provide a complexity analysis of our system, in order to show its capability of operating in real time.
机译:弱语义技术依赖于语义Web技术与社交注释的集成,并且旨在兼顾两者的优势。在本文中,我们提出了一种用于查询扩展的新型弱语义技术。传统的查询扩展技术基于二维共现矩阵的计算。我们的方法提出了使用三维矩阵的方法,其中增加的维由与从社交书签服务(例如Delicious和StumbleUpon)中提取的民俗分类法相关的语义类(即包含所有共享语义属性的术语的类别)表示。在人工数据集和真实用户上进行的深入实验评估的结果表明,我们的方法优于传统技术(如相关性反馈和个性化PageRank),因此证实了语义类别中用户需求和偏好分类的有效性和实用性。我们还提供了旨在了解用户对系统意见的问卷调查结果。由于几种查询扩展技术的一个缺点是它们的高计算成本,因此我们还提供了系统的复杂性分析,以显示其实时运行的能力。

著录项

  • 来源
    《ACM transactions on intelligent systems》 |2013年第4期|60.1-60.43|共43页
  • 作者单位

    Department of Computer Science and Automation, Artificial Intelligence Laboratory, Roma Tre University, Via della Vasca Navale 79 - 00146 Rome, Italy;

    Department of Computer Science and Automation, Artificial Intelligence Laboratory, Roma Tre University, Via della Vasca Navale 79 - 00146 Rome, Italy;

    Department of Computer Science and Automation, Artificial Intelligence Laboratory, Roma Tre University, Via della Vasca Navale 79 - 00146 Rome, Italy;

    Department of Computer Science and Automation, Artificial Intelligence Laboratory, Roma Tre University, Via della Vasca Navale 79 - 00146 Rome, Italy;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Social Semantic Web; information retrieval; query expansion;

    机译:社会语义网;信息检索;查询扩展;
  • 入库时间 2022-08-17 23:18:24

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