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AutoTutor Improves Deep Learning of Computer Literacy: Is It the Dialog or the Talking Head?

机译:自动助董提高了计算机识字的深度学习:是对话还是谈话的头脑?

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AutoTutor is a tutoring system that helps students construct answers to deep-reasoning questions by holding a conversation in natural language. AutoTutor delivers its dialog moves with an animated conversational agent whereas students type in their answers. We conducted an experiment on 81 college students who learned topics on computer literacy (hardware, operating systems, Internet) with AutoTutor or control conditions, and were assessed on learning gains. We designed the experiment to assess the impact of learning condition (AutoTutor, read-text control, versus nothing) and the medium of presenting AutoTutor's dialog moves (print only, speech only, talking head, versus talking head + print). All versions of AutoTutor improved performance in assessments of deep learning, but not shallow learning. Effects of the medium were subtler, which suggests that the message (the dialog moves of AutoTutor) is more important than the medium.
机译:自动助客是一个辅导系统,可帮助学生通过自然语言进行对话来构建深度推理问题的答案。 AutoTutor通过动画的会话代理提供其对话框,而学生键入其答案。我们对81名大学生进行了一个实验,他们在拥有自动派或控制条件的计算机识字(硬件,操作系统,互联网)上学所的主题,并在学习收益上进行了评估。我们设计实验来评估学习条件(自动派,读取文本控制,VERSE和NOLE的影响)和呈现自动派的对话框的媒体(仅限打印,仅限语言,谈话,与谈话头+打印)。所有版本的自动助董版改善了深度学习评估的性能,但不浅的学习。介质的效果是子集,这表明消息(自选对话者的对话框)比媒体更重要。

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