The Examiner: Automatic Generation of "Good" Exams

F. Torres-Rojas
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Abstract

As educators, we must design, prepare, proctor and grade hundreds of exams during their careers. From this overwhelming task, we collect little or none objective evidence about the quality of the exams themselves. Thus, at most there is an intuitive learning about what characterizes a good or a bad exam. It is very likely that we blindly repeat in our exams rights and wrongs of the past. There exist metrics about the quality of an exam, and even metrics about the quality of each of the individual items in the exam. Using actual college courses, our research found experimental evidence that proves that it is possible to predict with great accuracy, parting from historical statistical data, the quality metrics that an exam will show even before applying it to a standard group of college students. With this result, we built an automatic system that generates "good" exams from an item bank enriched with statistical information from previous exams. Besides, powerful tools for analysis and controlled adjustment of each exam and each item were developed.
考官:“好”考试的自动生成
作为教育工作者,我们必须在他们的职业生涯中设计、准备、监考和评分数以百计的考试。从这项繁重的任务中,我们几乎没有收集到关于考试本身质量的客观证据。因此,最多只能凭直觉来判断考试好坏。我们很有可能在考试中盲目地重复过去的对与错。存在关于考试质量的度量,甚至是关于考试中每个单独项目的质量的度量。通过使用实际的大学课程,我们的研究发现了实验证据,证明在将考试应用于标准大学生群体之前,抛开历史统计数据,可以非常准确地预测考试将显示的质量指标。有了这个结果,我们构建了一个自动系统,它从一个包含以前考试统计信息的题库中生成“好的”考试。此外,我们还开发了强大的工具来分析和控制调整每个考试和每个项目。
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