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A Novel Chinese Syntactic Parsing Model Based on Semantic Class

机译:基于语义类的新型中文句法解析模型

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摘要

This paper proposes a Chinese syntactic parsing model based on semantic class, which is a variant of normal lexicalized statistical model. It attempts to make use of the syntactic and semantic similarity between Chinese words and then produces a more knowledgeable estimate of the probability of grammar rules. A simple but effective unsupervised method is designed to determine the proper semantic class of given words. Semantic class is used to improve the performance of parsing model. We evaluate our methods on the widely used Penn Chinese Treebank. Experimental results show that it outperforms a famous lexicalized model significantly on appropriate semantic class levels.
机译:本文提出了一种基于语义类的中文句法分析模型,它是普通词汇化统计模型的一种变体。它试图利用汉字之间在句法和语义上的相似性,然后对语法规则的可能性进行更深入的估计。设计了一种简单但有效的无监督方法来确定给定单词的正确语义类别。语义类用于提高解析模型的性能。我们在广泛使用的Penn Chinese Treebank上评估我们的方法。实验结果表明,在适当的语义类级别上,它的性能明显优于著名的词汇化模型。

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