Intelligent Analysis System for Teaching and Learning Cognitive Engagement Based on Computer Vision in an Immersive Virtual Reality Environment

Author:

Li Ce1ORCID,Wang Li12,Li Quanzhi3,Wang Dongxuan2

Affiliation:

1. Computer Science and Technology, China University of Mining & Technology, Beijing 100083, China

2. College of Science and Technology, Hebei Agricultural University, Cangzhou 071001, China

3. School of Geosciences & Surveying Engineering, China University of Mining & Technology, Beijing 100083, China

Abstract

The 20th National Congress of the Communist Party of China and the 14th Five Year Plan for Education Informatization focus on digital technology and intelligent learning and implement innovation-driven education environment reform. An immersive virtual reality (IVR) environment has both immersive and interactive characteristics, which are an important way of virtual learning and are also one of the important ways in which to promote the development of smart education. Based on the above background, this article proposes an intelligent analysis system for Teaching and Learning Cognitive engagement in an IVR environment based on computer vision. By automatically analyzing the cognitive investment of students in the IVR environment, it is possible to better understand their learning status, provide personalized guidance to improve learning quality, and thereby promote the development of smart education. This system uses Vue (developed by Evan You, located in Wuxi, China) and ECharts (Developed by Baidu, located in Beijing, China) for visual display, and the algorithm uses the Pytorch framework (Developed by Facebook, located in Silicon Valley, CA, USA), YOLOv5 (Developed by Ultralytics, located in Washington, DC, USA), and the CRNN model (Convolutional Recurrent Neural Network) to monitor and analyze the visual attention and behavioral actions of students. Through this system, a more accurate analysis of learners’ cognitive states and personalized teaching support can be provided for the education field, providing certain technical support for the development of smart education.

Funder

National Natural Science Foundation of China

Beijing Municipal Natural Science Foundation

Beijing Nova Program of Science and Technology

National Key Research and Development Program of China

Publisher

MDPI AG

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