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Using eye-tracking technology to identify learning styles: Behaviour patterns and identification accuracy

机译:使用眼跟踪技术来识别学习方式:行为模式和识别准确性

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摘要

Learning style theories have been widely used in adaptive learning systems to enhance learning outcomes. However, the previous studies on adaptive learning systems set a high entry barrier for researchers who lack programming skills, and few of the studies involved authentic everyday learning materials. This author proposes to test the feasibility of eye-tracking technology in identifying learning styles with everyday materials, as well as the identification accuracy. This author selected the Felder-Silverman's learning style model (FSLSM) as the framework, enlisted the behaviour patterns that can be used to identify the eight learning styles in the FSLSM model, and conducted a quasi-experiment to test whether these behaviour patterns apply to eye movement differences. Then, this author compared the results of eye-tracking identification with participants' self-report based on Index of Learning Style (ILS) questionnaire for identification accuracy. This quasi-experiment recruited 30 university students, including 19 female and 11 male. Findings showed that eye-tracking technology has the potential to quickly identify learners of different types categorised by the FSLSM theory, with accuracy ranging from 63.50% to 84.67%; however, there are disturbing factors contributing to different levels of identification accuracy, which should be investigated in future research.
机译:学习风格理论已广泛用于自适应学习系统,以增强学习结果。然而,以前关于自适应学习系统的研究为缺乏编程技能的研究人员设定了高入的障碍,并且涉及涉及正宗的日常学习材料的研究人员。本作者建议测试眼跟踪技术的可行性,以便使用日常材料识别学习款式,以及识别准确性。本作者选择了Felder-Silverman的学习风格模型(FSLSM)作为框架,可以使用可用于识别FSLSM模型中的八个学习风格的行为模式,并进行了一种准实验来测试这些行为模式是否适用于眼睛运动差异。然后,本作者将关注的识别结果与基于学习风格(ILS)问卷指数进行了识别准确性的参与者的自我报告。这项准实验招募了30名大学生,包括19名女性和11名男性。结果表明,眼新的技术有可能快速识别由FSLSM理论分类的不同类型的学习者,精度范围从63.50%到84.67%;然而,有令人不安的因素有助于不同水平的鉴定准确性,应该在将来的研究中调查。

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