面向个性化英语学习的扩展阅读文章评分体系框架

W. N. Chai, T. Ruangrajitpakorn, T. Supnithi
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引用次数: 1

摘要

本文提出了一个扩展版的阅读文章评分系统。通过增加功能和辅助组件,解决了之前工作的不足。它运用了四个语言特征:音节的平均数量、词汇的难易程度、子句用法的组合以及语态和时态的频率。词性标注系统主要用于词性多义问题、分句和语态识别等方面的歧义问题。选择神经网络生成通道统计模型,利用学生模型表征学生的个体偏好。系统的用户界面设计为辅助工具,支持以学生为中心的英语课堂学习。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Framework of an Extended Reading Passage Grading System for Personalised English Learning
An extended version of reading passage grading system is presented in this paper. Weakness of the previous work has been resolved by additional feature and assisting components. It applies four linguistic features: average amount of syllable, difficulty of vocabulary, combination of clause usage and a frequency of voice and tense. POS tagging is composed into a system to help on ambiguity issue in polysemy issue, clause and voice-tense recognising. Neural network is selected to generate a passage statistical model while students' model is exploited to represent student's individual preference. The user interface of the system is designed for the use as assisting tool for supporting a student-centred learning in English class.
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