Investigating collaborative learning success with physiological coupling indices based on electrodermal activity

Héctor J. Pijeira Díaz, H. Drachsler, Sanna Järvelä, P. Kirschner
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引用次数: 65

Abstract

Collaborative learning is considered a critical 21st century skill. Much is known about its contribution to learning, but still investigating a process of collaboration remains a challenge. This paper approaches the investigation on collaborative learning from a psychophysiological perspective. An experiment was set up to explore whether biosensors can play a role in analysing collaborative learning. On the one hand, we identified five physiological coupling indices (PCIs) found in the literature: 1) Signal Matching (SM), 2) Instantaneous Derivative Matching (IDM), 3) Directional Agreement (DA), 4) Pearson's correlation coefficient (PCC) and the 5) Fisher's z-transform (FZT) of the PCC. On the other hand, three collaborative learning measurements were used: 1) collaborative will (CW), 2) collaborative learning product (CLP) and 3) dual learning gain (DLG). Regression analyses showed that out of the five PCIs, IDM related the most to CW and was the best predictor of the CLP. Meanwhile, DA predicted DLG the best. These results play a role in determining informative collaboration measures for designing a learning analytics, biofeedback dashboard.
基于皮肤电活动的生理耦合指标研究协作学习的成功
协作学习被认为是21世纪的一项重要技能。关于它对学习的贡献,我们已经知道了很多,但对协作过程的研究仍然是一个挑战。本文从心理生理学的角度对协作学习进行了研究。我们建立了一个实验来探索生物传感器是否可以在分析协作学习中发挥作用。一方面,我们确定了文献中发现的5个生理耦合指标:1)信号匹配(SM), 2)瞬时导数匹配(IDM), 3)方向一致(DA), 4) Pearson相关系数(PCC)和5)PCC的Fisher z变换(FZT)。另一方面,我们使用了三个协作学习测量指标:1)协作意愿(CW), 2)协作学习产品(CLP)和3)双重学习收益(DLG)。回归分析显示,在5种pci中,IDM与CW相关性最大,是CLP的最佳预测因子。同时,DA对DLG的预测效果最好。这些结果在确定设计学习分析、生物反馈仪表板的信息协作措施方面发挥作用。
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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