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Learning Entailment Rules for Unary Templates

机译:一元模板的学习包含规则

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Most work on unsupervised entailment rule acquisition focused on rules between templates with two variables, ignoring unary rules - entailment rules between templates with a single variable. In this paper we investigate two approaches for unsupervised learning of such rules and compare the proposed methods with a binary rule learning method. The results show that the learned unary rule-sets outperform the binary rule-set. In addition, a novel directional similarity measure for learning entailment, termed Balanced-Inclusion, is the best performing measure.
机译:关于无监督蕴含规则获取的大多数工作都集中在具有两个变量的模板之间的规则上,而忽略一元规则-具有单个变量的模板之间的蕴藏规则。在本文中,我们研究了两种无监督学习此类规则的方法,并将所提出的方法与二进制规则学习方法进行了比较。结果表明,学习的一元规则集优于二元规则集。此外,一种用于学习需求的新颖方向相似性度量(称为“平衡包容”)是表现最好的度量。

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