Real-Time Learner Classification Using Cognitive Score

Avick Kumar Dey, B. Poddar, Pijush Kanti Dutta Pramanik, N. Debnath, S. Aljahdali, Prasenjit Choudhury
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引用次数: 6

Abstract

Recommending and providing suitable learning materials to the learners according to their cognitive ability is important for effective learning. Assessing the cognitive load of a learner while studying a learning material can be helpful in assessing his/her intelligence and knowledge adapting abilities. This paper presents a real-time assessment method of the intelligence of students according to their instant learning skills. The proposed system can read the brain waves of students of different age groups at the time of learning and classify their instant learning skills using the cognitive score. Based on this, the learners are suggested suitable learning materials which maintain the learner in an overall state of optimal learning. The main issues concerning this approach are constructing cognitive state estimators from a multimodal array of physiological sensors and assessing initial baseline values, as well as changes in the baseline. These issues are discussed in a data processing block-wise structure. Synchronization of different data streams and feature extraction and formation of a cognitive state metric by classification/clustering of the feature sets are done. The results demonstrate the efficiency of using cognitive score in RTLCS in the identification of instant learning abilities of learners.
基于认知评分的实时学习者分类
根据学习者的认知能力为其推荐和提供合适的学习材料是有效学习的重要因素。在学习材料时评估学习者的认知负荷有助于评估学习者的智力和知识适应能力。本文提出了一种根据学生的即时学习能力对学生智力进行实时评估的方法。该系统可以读取不同年龄段学生在学习时的脑电波,并使用认知评分对他们的即时学习技能进行分类。在此基础上,为学习者推荐合适的学习材料,使学习者处于最佳的整体学习状态。该方法的主要问题是从多模态生理传感器阵列构建认知状态估计器,评估初始基线值,以及基线的变化。这些问题在数据处理分块结构中讨论。通过对特征集进行分类/聚类,实现不同数据流的同步、特征提取和认知状态度量的形成。结果表明,RTLCS中的认知评分在识别学习者的即时学习能力方面是有效的。
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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