An Automatic Method to Extract Online Foreign Language Learner Writing Error Characteristics

Brendan Flanagan, S. Hirokawa
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引用次数: 8

Abstract

This article contends that the profile of a foreign language learner can contain valuable information about possible problems they will face during the learning process, and could be used to help personalize feedback. A particularly important attribute of a foreign language learner is their native language background as it defines their known language knowledge. Native language identification serves two purposes: to classify a learners' unknown native language; and to identify characteristic features of native language groups that can be analyzed to generate tailored feedback. Fundamentally, this problem can be thought of as the process of identifying characteristic features that represent the application of a learner's native language knowledge in the use of the language that they are learning. In this article, the authors approach the problem of identifying characteristic differences and the classification of native languages from the perspective of 15 automatically predicted writing errors by online language learners.
一种在线外语学习者写作错误特征自动提取方法
本文认为,外语学习者的档案可以包含他们在学习过程中可能遇到的问题的有价值的信息,并可以用来帮助个性化的反馈。外语学习者的一个特别重要的属性是他们的母语背景,因为它定义了他们已知的语言知识。母语识别有两个目的:对学习者不熟悉的母语进行分类;并确定母语群体的特征,这些特征可以通过分析来产生量身定制的反馈。从根本上说,这个问题可以被认为是识别特征的过程,这些特征代表了学习者在使用他们正在学习的语言时对母语知识的应用。本文从在线语言学习者自动预测的15种写作错误的角度,探讨了识别特征差异和母语分类的问题。
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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