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New Indices for Refining Multiple Choice Questions

机译:完善多项选择题的新指标

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摘要

Multiple choice questions (MCQs) are one of the most popular tools to evaluate learning and knowledge in higher education. Nowadays, there are a few indices to measure reliability and validity of these questions, for instance, to check the difficulty of a particular question (item) or the ability to discriminate from less to more knowledge. In this work two new indices have been constructed: (i) the no answer index measures the relationship between the number of errors and the number of no answers; (ii) the homogeneity index measures homogeneity of the wrong responses (distractors). The indices are based on the lack-of-fit statistic, whose distribution is approximated by a chi-square distribution for a large number of errors. An algorithm combining several traditional and new indices has been developed to refine continuously a database of MCQs. The final objective of this work is the classification of MCQs from a large database of items in order to produce an automated-supervised system of generating tests with specific characteristics, such as more or less difficulty or capacity of discriminating knowledge of the topic.
机译:多选题(MCQ)是评估高等教育中学习和知识的最受欢迎工具之一。如今,有一些指标可以衡量这些问题的信度和效度,例如,检查特定问题(项目)的难度或从更少知识到更多知识的区分能力。在这项工作中,建立了两个新的索引:(i)无答案索引用于衡量错误数量和无答案数量之间的关系; (ii)同质性指标衡量错误响应(干扰因素)的同质性。索引基于缺乏拟合统计量,对于大量错误,其分布近似于卡方分布。已经开发了一种将几种传统索引和新索引结合在一起的算法,以不断完善MCQ的数据库。这项工作的最终目标是从大型项目数据库中对MCQ进行分类,以生成一个自动监督的系统,该系统生成具有特定特征(例如,或多或少的难度或区分主题知识的能力)的测试。

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