A BP Neural Network-Based Early Warning Model for Student Performance in the Context of Big Data

Author:

Shi Chengxiang1ORCID,Tan Yun1

Affiliation:

1. Department of Mathematics and Information Engineering, Chongqing University of Education, Chongqing, China

Abstract

Nowadays, educational data mining technology has received more and more attention from scholars in China, and the application of correlation between student behavior data and student achievement to teaching management has become a hot research topic. Starting from the study of the potential association between book borrowing and student achievement in the big data environment, the paper analyzes the correlation between book borrowing and student achievement based on the Apriori algorithm and concludes that there is a strong correlation rule between book borrowing and student achievement. Based on BP neural network prediction algorithm, the paper constructs an early warning model for student performance by predicting book borrowing through course performance. The absolute value of the error between the predicted value of book borrowing and the real value of borrowing is used as a basis to make early warning for students’ performance, so as to realize the monitoring of students’ learning situation, thereby providing theoretical suggestions for teachers’ teaching and promoting the school’s management of students.

Funder

Chongqing University of Education

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Instrumentation,Control and Systems Engineering

Reference7 articles.

1. Research on course grade prediction and course early warning based on multi-source data analysis;S. Dan;Research on Higher Engineering Education,2020

2. A preliminary study on the relationship between students’ grades and borrowing behavior in higher education: the case of Chongqing University;Y. Xinya;Digital Library Forum,2013

3. Analysis of Dimensionality Reduction Techniques on Big Data

4. Student Performance Prediction and Classification Using Machine Learning Algorithms

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