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Visual attention based evaluation for multiple-choice tests in e-learning applications

机译:基于视觉注意的评估,用于电子学习应用中的多项选择测试

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Multiple-choice (MC) question is an important form of test to assess the students' academic achievement, especially in the e-learning applications. However, the classical evaluation metrics on MC questions (such as the correctness ratio) only consider the correctness of the final selection but ignore the solving progress of the testee. In the existing literature, the eye-tracking based visual attention was studied to infer the testee's cognitive progress towards a specific MC question. However, there is little work on the visual attention based evaluation of one complete MC test. In this paper, we measure the eye movement data of a group of students in an online test, which consists of forty more MC questions. We divide the screen area into five AOIs (area of interests), including one for the question and four for the candidate options. The fixation duration as well as the gaze sequence on these AOIs are recorded and studied. In the case study on the most difficult question, we observe the great differences among the eye movement of the testees in different academic levels. A new metric, namely Visual-Attention-assisted Score (VAS), is proposed to assess the student's performance with the bias of his fixations on the correct options. Experiment results show that, this metric can reflect the difference of gaze movement of testees, and thus it is helpful for the teachers to infer the real level of the students' academic achievement.
机译:多项选择题(MC)是考核学生学习成绩的一种重要形式,尤其是在电子学习应用程序中。但是,关于MC问题的经典评估指标(例如正确率)仅考虑最终选择的正确性,而忽略了测试对象的求解进度。在现有文献中,研究了基于眼动追踪的视觉注意,以推断出受测者对特定MC问题的认知进展。但是,对于基于视觉注意力的一项完整MC测试的评估工作很少。在本文中,我们通过在线测试测量一组学生的眼球运动数据,其中包括40多个MC问题。我们将屏幕区域分为五个AOI(兴趣区域),其中一个用于问题,四个用于候选选项。记录并研究了这些AOI的固定持续时间以及凝视顺序。在最困难的问题的案例研究中,我们观察到了不同学术水平的受测者眼球运动之间的巨大差异。提出了一种新的指标,即视觉注意辅助分数(VAS),以评估学生在正确选择上的偏见的表现。实验结果表明,该指标能够反映出被试者注视动作的差异,从而有助于教师推断学生学习成绩的真实水平。

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