Automated Error Detection of Vocabulary Usage in College English Writing

Shili Ge, Rou Song
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引用次数: 2

Abstract

The frequencies of binary adjacent word pairs (BAWPs) in large corpus of native English speakers were counted to retrieve the data of BAWPs as the foundation of the research. BAWPs in Chinese college students’ English compositions were tagged with the frequencies appearing in native corpus. Researchers’ examination finds that about 46% of the BAWPs in students’ compositions with the tagged frequency lower than 10 are language errors and close to 37% with the tagged frequency lower than 30 are errors. Misreport patterns were summarized and more than 100 filter rules of misreport were constructed. Combining with these rules, the ratios of actual errors are raised to over 60% and 48% for these two threshold values respectively, which can greatly facilitate college English writing.
大学英语写作中词汇使用的自动错误检测
对大型英语母语语料库中二进制相邻词对(BAWPs)的频率进行统计,检索BAWPs数据作为研究的基础。用本土语料库中出现的频率标记中国大学生英语作文中的bawp。研究者的研究发现,在学生作文中,标记频率低于10的bawp中,约46%为语言错误,而标记频率低于30的bawp中,接近37%为错误。总结了误报模式,构建了100多条误报过滤规则。结合这些规则,将这两个阈值的实际错误率分别提高到60%以上和48%以上,可以极大地促进大学英语写作。
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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