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Modeling Student Response Times: Towards Efficient One-on-one Tutoring Dialogues

机译:建模学生响应时间:走向一对一的辅导对话

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In this paper we investigate the task of modeling how long it would take a student to respond to a tutor question during a tutoring dialogue. Solving such a task has applications in educational settings such as intelligent tutoring systems, as well as in platforms that help busy human tutors to keep students engaged. Knowing how long it would normally take a student to respond to different types of questions could help tutors optimize their own time while answering multiple dialogues concurrently, as well as deciding when to prompt a student again. We study this problem using data from a service that offers tutor support for math, chemistry and physics through an instant messaging platform. We create a dataset of 240K questions. We explore several strong baselines for this task and compare them with human performance.
机译:在本文中,我们调查了建模需要学生在辅导对话期间响应导师问题的时间。解决这样的任务在教育环境中具有智能辅导系统的应用程序,以及在帮助繁忙的人道导师的平台上,以保持学生参与。了解通常需要学生回应不同类型的问题的时间可以帮助导师在同时回答多个对话的同时优化自己的时间,以及决定何时再次提示学生。我们使用来自服务中的数据来研究此问题,该问题通过即时消息平台提供Tutor支持数学,化学和物理。我们创建了240k个问题的数据集。我们为此任务探索了几个强大的基线,并将其与人类表现进行比较。

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