Automated Alertness and Emotion Detection for Empathic Feedback during e-Learning

S. Happy, A. Dasgupta, P. Patnaik, A. Routray
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引用次数: 37

Abstract

In the context of education technology, empathic interaction with the user and feedback by the learning system using multiple inputs such as video, voice and text inputs is an important area of research. In this paper, a non-intrusive, standalone model for intelligent assessment of alertness and emotional state as well as generation of appropriate feedback has been proposed. Using the non-intrusive visual cues, the system classifies emotion and alertness state of the user, and provides appropriate feedback according to the detected cognitive state using facial expressions, ocular parameters, postures, and gestures. Assessment of alertness level using ocular parameters such as PERCLOS and saccadic parameters, emotional state from facial expression analysis, and detection of both relevant cognitive and emotional states from upper body gestures and postures has been proposed. Integration of such a system in e-learning environment is expected to enhance students' performance through interaction, feedback, and positive mood induction.
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电子学习过程中共情反馈的自动警觉性和情绪检测
在教育技术的背景下,学习系统通过视频、语音和文本等多种输入与用户进行共情交互和反馈是一个重要的研究领域。本文提出了一种非侵入式的独立模型,用于智能评估警觉性和情绪状态,并生成适当的反馈。系统利用非侵入性的视觉线索,对用户的情绪和警觉性状态进行分类,并根据检测到的认知状态,使用面部表情、眼参数、姿势和手势提供适当的反馈。提出了使用PERCLOS和扫视参数等眼部参数,面部表情分析的情绪状态,以及上身手势和姿势的相关认知和情绪状态检测来评估警觉性水平。将该系统整合到电子学习环境中,期望通过互动、反馈和积极情绪诱导来提高学生的学习成绩。
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