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Textual Entailment Recognition using Word Overlap, Mutual Information and Subpath Set

机译:使用Word重叠,相互信息和子路径集的文本意外识别

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When two texts have an inclusion relation, the relationship between them is called entailment. The task of mechanically distinguishing such a relation is called recognising textual entailment (RTE), which is basically a kind of semantic analysis. A variety of methods have been proposed for RTE. However, when the previous methods were combined, the performances were not clear. So, we utilized each method as a feature of machine learning, in order to combine methods. We have dealt with the binary classification problem of two texts exhibiting inclusion, and proposed a method that uses machine learning to judge whether the two texts present the same content. We have built a program capable to perform entailment judgment on the basis of word overlap, i.e. the matching rate of the words in the two texts, mutual information, and similarity of the respective syntax trees (Subpath Set). Word overlap was calclated by utilizing BiLingual Evaluation Understudy (BLEU). Mutual information is based on co-occurrence frequency, and the Subpath Set was determined by using the Japanise WordNet. A Confidence- Weighted Score of 68.6% was obtained in the mutual information experiment on RTE. Mutual information and the use of three methods of SVM were shown to be effective.
机译:当两个文本有一个包含关系时,它们之间的关系称为Entailment。机械区区的任务称为识别文本征征(RTE),基本上是一种语义分析。已经提出了用于RTE的各种方法。但是,当先前的方法组合时,表演尚不清楚。因此,我们利用了每个方法作为机器学习的特征,以便组合方法。我们已经处理了展示包含的两个文本的二进制分类问题,并提出了一种使用机器学习来判断这两个文本是否呈现相同内容的方法。我们已经建立了一个能够基于单词重叠执行鉴别判断的程序,即两个文本中的单词,相互信息和相似性的单词的匹配率(子路径集)。利用双语评估削减(BLEU),通过单词重叠进行划分。相互信息基于共生频率,并且通过使用日本WordNet来确定子路径集。在RTE的相互信息实验中获得了68.6%的信心评分。相互信息和使用三种SVM方法的使用被证明是有效的。

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