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Talk Like an Electrician: Student Dialogue Mimicking Behavior in an Intelligent Tutoring System

机译:像电工一样谈谈:学生对话在智能辅导系统中模仿行为

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Students entering a new field must learn to speak the specialized language of that field. Previous research using automated measures of word overlap has found that students who modify their language to align more closely to a tutor's language show larger overall learning gains. We present an alternative approach that assesses syntactic as well as lexical alignment in a corpus of human-computer tutorial dialogue. We found distinctive patterns differentiating high and low achieving students. Our high achievers were most likely to mimic their own earlier statements and rarely made mistakes when mimicking the tutor. Low achievers were less likely to reuse their own successful sentence structures, and were more likely to make mistakes when trying to mimic the tutor. We argue that certain types of mimicking should be encouraged in tutorial dialogue systems, an important future research direction.
机译:进入新领域的学生必须学会谈谈该领域的专业语言。以前的研究使用单词重叠自动测量已经发现,学生将其语言更加密切地对待导师的语言,显示出更大的整体学习收益。我们提出了一种替代方法,可评估句法以及在人机教程对话的语料库中的词法对齐。我们发现不同的模式差异化高低实现学生。我们的高度成就者最有可能模仿自己的早期陈述,很少在模仿导师时犯错误。低成就者不太可能重复使用自己的成功句子结构,并且在试图模仿导师时更有可能犯错误。我们认为,在辅导对话系统中,应鼓励某些类型的模仿,这是一个重要的未来研究方向。

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