Distractor Analysis and Selection for Multiple-Choice Cloze Questions for Second-Language Learners

Lingyu Gao, Kevin Gimpel, A. Jensson
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引用次数: 8

Abstract

We consider the problem of automatically suggesting distractors for multiple-choice cloze questions designed for second-language learners. We describe the creation of a dataset including collecting manual annotations for distractor selection. We assess the relationship between the choices of the annotators and features based on distractors and the correct answers, both with and without the surrounding passage context in the cloze questions. Simple features of the distractor and correct answer correlate with the annotations, though we find substantial benefit to additionally using large-scale pretrained models to measure the fit of the distractor in the context. Based on these analyses, we propose and train models to automatically select distractors, and measure the importance of model components quantitatively.
第二语言学习者多项选择填空题的干扰因素分析与选择
本文研究了为第二语言学习者设计的多项选择填空题中自动提示干扰因素的问题。我们描述了一个数据集的创建,包括收集用于分心选择的手动注释。在填空题中,我们评估了注释者的选择和基于干扰因素的特征与正确答案之间的关系,无论是否有周围的文章上下文。干扰物和正确答案的简单特征与注释相关,尽管我们发现额外使用大规模预训练模型来测量干扰物在上下文中的拟合有很大的好处。基于这些分析,我们提出并训练了自动选择干扰物的模型,并定量测量了模型成分的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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