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Predicting Item Survival for Multiple Choice Questions in a High-stakes Medical Exam

机译:在高赌注体检中预测多项选择题的物品存活

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One of the most resource-intensive problems in the educational testing industry relates to ensuring that newly-developed exam questions can adequately distinguish between students of high and low ability. The current practice for obtaining this information is the costly procedure of pretesting: new items are administered to test-takers and then the items that are too easy or too difficult are discarded. This paper presents the first study towards automatic prediction of an item's probability to "survive" pretesting (item survival), focusing on human-produced MCQs for a medical exam. Survival is modeled through a number of linguistic features and embedding types, as well as features inspired by information retrieval. The approach shows promising first results for this challenging new application and for modeling the difficulty of expert-knowledge questions.
机译:教育检测行业中最资产密集型问题之一涉及确保新开发的考试问题可以充分区分高能力的学生。 获取此信息的当前做法是预测的预测程序:向测试员进行新项目,然后丢弃太容易或太难的物品。 本文提出了自动预测物品“生存”预测(物品存活率)的概率的第一次研究,重点是人类产生的MCQs进行体检。 生存通过许多语言特征和嵌入类型,以及由信息检索的灵感的功能。 该方法显示了这一挑战性新应用的首次结果,并用于建模专家知识问题的难度。

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