On the Cognitive Load of Online Learners With Multi-Level Data Mining

Author:

Liu Lingyan1,Zhao Bo2,Rao Yiqiang2

Affiliation:

1. School of Information Science and Technology, China

2. Key Laboratory of Educational Informatization for Nationalities, Ministry of Education, China

Abstract

A lot of studies have shown that there is an “inverse U-curve” relationship between learners' grades and cognitive load. Learners' grades are closely related to their learning behavior characteristics on online learning. Is there any relationship between online learners' behavior characteristics and cognitive load? Based on this, the data of research are obtained from the professions and applied sciences on the Canvas Network platform. The multi-level data mining technology is used to analyze and mine the relationship between grades and online learners' behavior characteristics layer by layer. The results show that there is an “inverse U-curve” relationship between grades and “nevents.” Therefore, the research attempts to map “nevents” to the online learners' cognitive load, which makes the online learners' cognitive load can be quantitative analysis. Research results also prove that multi-level data mining technology can be used to mine the special learning rules hidden behind the data effectively.

Publisher

IGI Global

Subject

Computer Science Applications,Education

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