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Learning Valued Relations from Data

机译:从数据中学习有价值的关系

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摘要

Driven by a large number of potential applications in areas like bioin-formatics, information retrieval and social network analysis, the problem setting of inferring relations between pairs of data objects has recently been investigated quite intensively in the machine learning community. To this end, current approaches typically consider datasets containing crisp relations, so that standard classification methods can be adopted. However, relations between objects like similarities and preferences are in many real-world applications often expressed in a graded manner. A general kernel-based framework for learning relations from data is introduced here. It extends existing approaches because both crisp and valued relations are considered, and it unifies existing approaches because different types of valued relations can be modeled, including symmetric and reciprocal relations. This framework establishes in this way important links between recent developments in fuzzy set theory and machine learning. Its usefulness is demonstrated on a case study in document retrieval.
机译:在诸如生物信息学,信息检索和社交网络分析等领域中大量潜在的应用驱动下,最近在机器学习社区中,对数据对象对之间的推断关系的问题设置进行了深入研究。为此,当前方法通常考虑包含明晰关系的数据集,因此可以采用标准分类方法。但是,对象之间的相似性和偏好之类的关系在许多实际应用中经常以分级方式表示。这里介绍了一种用于从数据中学习关系的基于内核的通用框架。它扩展了现有方法,因为同时考虑了明晰的关系和有价值的关系,并统一了现有方法,因为可以建模不同类型的价值关系,包括对称关系和对等关系。这种框架以这种方式在模糊集理论和机器学习的最新发展之间建立了重要的联系。案例研究在文档检索中证明了其有用性。

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  • 来源
    《Eurofuse 2011》|2011年|p.257-268|共12页
  • 会议地点 Regua(PT);Regua(PT)
  • 作者单位

    Ghent University, KERMIT, Department of Applied Mathematics, Biometrics and Process Control, Coupure links 653, B-9000 Ghent;

    University of Turku, Department of Information Technology and the Turku Centre for Computer Science, Joukahaisenkatu 3-5 B 20520 Turku;

    University of Turku, Department of Information Technology and the Turku Centre for Computer Science, Joukahaisenkatu 3-5 B 20520 Turku;

    University of Turku, Department of Information Technology and the Turku Centre for Computer Science, Joukahaisenkatu 3-5 B 20520 Turku;

    Ghent University, KERMIT, Department of Applied Mathematics, Biometrics and Process Control, Coupure links 653, B-9000 Ghent;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 信息处理(信息加工);
  • 关键词

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