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SemCaDo: A Serendipitous Strategy for Learning Causal Bayesian Networks Using Ontologies

机译:SemCaDo:一种使用本体学习因果贝叶斯网络的偶然策略

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摘要

Learning Causal Bayesian Networks (CBNs) is a new line of research in the machine learning field. Within the existing works in this direction [8,12,13], few of them have taken into account the gain that can be expected when integrating additional knowledge during the learning process. In this paper, we present a new serendipitous strategy for learning CBNs using prior knowledge extracted from ontologies. The integration of such domain's semantic information can be very useful to reveal new causal relations and provide the necessary knowledge to anticipate the optimal choice of experimentations. Our strategy also supports the evolving character of the semantic background by reusing the causal discoveries in order to enrich the domain ontologies.
机译:学习因果贝叶斯网络(CBN)是机器学习领域中的一条新研究领域。在这个方向[8,12,13]的现有作品中,很少有人考虑到在学习过程中整合更多知识时可以预期的收益。在本文中,我们提出了一种新的偶然策略,用于使用从本体中提取的先验知识来学习CBN。此类领域的语义信息的集成对于揭示新的因果关系并提供必要的知识以预期实验的最佳选择可能非常有用。我们的策略还通过重用因果发现来支持语义背景的演变特征,以丰富领域本体。

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  • 会议地点 Belfast(GB);Belfast(GB)
  • 作者单位

    LARODEC, Institut Superieur de Gestion Tunis 41, Avenue de la liberte, 2000 Le Bardo, Tunisie,Knowledge and Decision Team Laboratoire d'lnformatique de Nantes Atlantique (LINA) UMR 6241 Ecole Polytechnique de l'Universite de Nantes, France;

    Knowledge and Decision Team Laboratoire d'lnformatique de Nantes Atlantique (LINA) UMR 6241 Ecole Polytechnique de l'Universite de Nantes, France;

    LARODEC, Institut Superieur de Gestion Tunis 41, Avenue de la liberte, 2000 Le Bardo, Tunisie;

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  • 正文语种 eng
  • 中图分类 人工智能理论;
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