Condition Random Fields-based Grammatical Error Detection for Chinese as Second Language

Jui-Feng Yeh, Chan-Kun Yeh, Kai-Hsiang Yu, Ya-Ting Li, Wanyu Tsai
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引用次数: 8

Abstract

The foreign learners are not easy to learn Chinese as a second language. Because there are many special rules different from other languages in Chinese. When the people learn Chinese as a foreign language usually make some grammatical errors, such as missing, redundant, selection and disorder. In this paper, we proposed the conditional random fields (CRFs) to detect the grammatical errors. The features based on statistical word and part-ofspeech (POS) pattern were adopted here. The relationships between words by part-of-speech are helpful for Chinese grammatical error detection. Finally, we according to CRF determined which error types in sentences. According to the observation of experimental results, the performance of the proposed model is acceptable in precision and recall rates.
基于条件随机场的汉语第二语言语法错误检测
外国学习者不容易把汉语作为第二语言来学习。因为汉语有许多不同于其他语言的特殊规则。人们在学习汉语作为外语时,通常会犯一些语法错误,如遗漏、冗余、选择和混乱。在本文中,我们提出了条件随机场(CRFs)来检测语法错误。本文采用基于统计词和词性(POS)模式的特征。词类之间的关系有助于汉语语法错误的检测。最后,我们根据CRF判断句子中的错误类型。实验结果表明,该模型在查全率和查全率上都是可以接受的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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