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Imperfect Answers in Multiple Choice Questionnaires

机译:多项选择问卷中的答案不完善

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Multiple choice questions (MCQs) are the most common and computably tractable ways of assessing the knowledge of a student, but they restrain the students to express a precise answer that doesn't really represent what they know, leaving no room for ambiguities or doubts. We propose Ev-MCQs (Evidential MCQs), an application of belief function theory for the management of the uncertainty and imprecision of MCQ answers. Intelligent Tutoring Systems (ITS) and e-Learning applications could exploit the richness of the information gathered through the acquisition of imperfect answers through Ev-MCQs in order to obtain a richer student model, closer to the real state of the student, considering their degree of knowledge acquisition and misconception.
机译:多项选择题(MCQ)是评估学生知识的最常见且可计算的方式,但是它们限制了学生表达的准确答案并不能真正代表他们所知道的内容,因此不存在歧义或疑问的余地。我们提出了Ev-MCQ(证据MCQ),这是一种信念函数理论在管理MCQ答案的不确定性和不精确性方面的应用。智能辅导系统(ITS)和电子学习应用程序可以利用通过Ev-MCQ获取不完美答案而收集的信息的丰富性,从而考虑到学生的学位程度,从而获得更丰富的学生模型,使其更接近学生的真实状态知识获取和误解。

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