首页> 外文期刊>International journal of software science and computational intelligence >Unobtrusive Academic Emotion Recognition Based on Facial Expression Using RGB-D Camera Using Adaptive-Network-Based Fuzzy Inference System (ANFIS)
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Unobtrusive Academic Emotion Recognition Based on Facial Expression Using RGB-D Camera Using Adaptive-Network-Based Fuzzy Inference System (ANFIS)

机译:基于面部表情的RGB-D相机基于自适应网络的模糊推理系统(ANFIS)的学术性情感识别

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摘要

Quality of learning in the classroom is influenced by many factors. One of them is the academic emotions of the students. The emotion detection in the classroom cannot be done by using sensors attached to the body of the students, because it would disturb the concentration of the students. The proposed solution is by using unobtrusive emotion detection, e.g. by placing video capture equipment, which is not visible at the front of the student's desk. In this study, an RGB - Depth Microsoft Kinect camera is used to record facial expressions by considering the convenience factor of the students, speed of response time, and cost efficiency. A combination of Cohn-Kanade dataset and EURECOM dataset is used as the training set in machine learning with Adaptive-Network-Based Fuzzy Inference System (ANFIS) algorithm, with 8 sample of Asian race students (4 male and 4 female students).
机译:课堂学习质量受许多因素影响。其中之一是学生的学术情感。教室中的情绪检测无法通过使用连接到学生身上的传感器来完成,因为这会干扰学生的注意力。所提出的解决方案是通过使用不引人注意的情绪检测,例如放置视频捕捉设备,该设备在学生课桌的正面不可见。在这项研究中,考虑到学生的方便因素,响应速度和成本效率,使用了RGB-深度Microsoft Kinect相机记录面部表情。通过基于自适应网络的模糊推理系统(ANFIS)算法,将Cohn-Kanade数据集和EURECOM数据集的组合用作机器学习中的训练集,其中包括8个亚洲种族学生样本(4个男性和4个女性学生)。

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