Hybrid learning in post-pandemic higher education systems: an analysis using SEM and DNN

被引:0
|
作者
Yaqin, Alvin Muhammad 'Ainul [1 ]
Muqoffi, Ahmad Kamil [1 ]
Rizalmi, Sigit Rahmat [2 ]
Pratikno, Faishal Arham [3 ]
Efranto, Remba Yanuar [4 ]
机构
[1] Inst Teknol Kalimantan, Dept Ind Engn, Syst Modeling & Optimizat Res Grp, Balikpapan, Indonesia
[2] Inst Teknol Kalimantan, Dept Ind Engn, Balikpapan, Indonesia
[3] Inst Teknol Kalimantan, Dept Logist Engn, Balikpapan, Indonesia
[4] Univ Brawijaya, Dept Ind Engn, Jl MT Haryono 167, Malang 65145, Jawa Timur, Indonesia
来源
COGENT EDUCATION | 2025年 / 12卷 / 01期
关键词
Higher education systems; hybrid learning; post-pandemic; structural equation modeling; deep neural network; BEHAVIORAL INTENTION; USER ACCEPTANCE; TECHNOLOGY; ADOPTION;
D O I
10.1080/2331186X.2025.2458930
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
The COVID-19 pandemic significantly impacted higher education systems, leading many institutions to adopt hybrid learning models. This research investigates the relevance of hybrid learning methods in the post-pandemic education context using structural equation modeling (SEM) and deep neural network (DNN) approaches. We tested the model at a public university in Indonesia that had implemented a hybrid learning system post-pandemic but reverted to a full offline system due to doubts about the benefits and student interest. Data were collected through questionnaires evaluating key factors, including social influence, perceived interactivity, perceived usefulness, ease of use, facility conditions, attitude, satisfaction, and user intention. SEM validated the conceptual model, confirming all eight hypotheses as statistically significant (p-value of <= 0.05) and achieving good model fit with a comparative fit index (CFI) of 0.901 and a root mean square error of approximation (RMSEA) of 0.069. Meanwhile, DNN achieved a high prediction accuracy of 82.40%, significantly outperforming logistic regression (baseline) models. The DNN demonstrated its ability to capture complex, nonlinear relationships and provide actionable insights into factors driving student interests. This research provides valuable empirical evidence to inform education policymakers, institutions, and stakeholders navigating the evolving landscape of post-pandemic learning environments.
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页数:20
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