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Journal of Engineering, Project, and Production Management, 2027, 17(1), 2026-0017

 

Cluster Analysis of College Students' Physical Education Behavior Based on a Hybrid Algorithm of K-means and DBSCAN

 

Hailong Zhang

Associate Professor, Sport College, Xinxiang University, Xinxiang 453003 China,
E-mail: HailongZhangg@outlook.com

 

Project Management

 

Received April 22, 2026; revised June 10, 2026; accepted September 5, 2026

 

Available online September 10, 2026

 

Abstract:  Insight into students' athletic behavior patterns is critical to efficient resource deployment and enhanced engagement within higher education. This study develops a clustering method for university student sports behavior based on a hybrid algorithm of K-means and Density-Based Spatial Clustering of Applications with Noise (DBSCAN). The hybrid algorithm first uses K-means for data pre-segmentation to identify dense core regions, then uses DBSCAN to fine-tune cluster boundaries. Experimental data come from a university's smart sports platform, covering the exercise behavior records of 5,000 to 10,000 students over an academic year, including features such as exercise frequency, single-session duration, and activity preferences. The hybrid algorithm achieved a silhouette coefficient of 0.71 and successfully identified four typical groups with 89.3% accuracy. Compared with the single K-means and DBSCAN algorithms, this hybrid method improves both clustering accuracy and noise handling capabilities. The research results provide data support for the design of personalized sports curricula and dynamic venue scheduling.

 

Keywords:  K-means; density-based spatial clustering of applications with noise DBSCAN; college athletics; cluster analysis.

Copyright © Journal of Engineering, Project, and Production Management (EPPM-Journal).

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License.

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Citation: Zhang, H. (2027). Cluster Analysis of College Students' Physical Education Behavior Based on a Hybrid Algorithm of K-means and DBSCAN. Journal of Engineering, Project, and Production Management, 17(1), 2026-0017.

DOI: 10.32738/JEPPM-2026-0017

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