Assessment of University Students' Earthquake Coping Strategies Using Artificial Intelligence Methods
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Date
2025
Authors
Koklu, Nigmet
Journal Title
Journal ISSN
Volume Title
Publisher
Nature Portfolio
Open Access Color
HYBRID
Green Open Access
Yes
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OpenAIRE Views
Publicly Funded
No
Abstract
Earthquakes are one of the most destructive natural disasters that pose a serious threat to human life and infrastructure worldwide. The aim of this study is to evaluate the coping strategies of adult individuals in Turkey regarding earthquake stress using artificial intelligence-based methods. The data was collected from 858 university students living in Turkey during January, February, and March 2024. A dataset was created using the 'Coping Scale for Earthquake Stress.' Prediction models were established using artificial intelligence algorithms such as Logistic Regression (LR), Bagging, and Random Forest (RF) based on information from 24 variables. The cross-validation method was applied during model training. The Logistic Regression algorithm achieved the highest accuracy rate of 98.60%, while the Bagging algorithm demonstrated the lowest performance with an accuracy rate of 79.95%. The Random Forest algorithm showed moderate performance with an accuracy rate of 85.89%. The findings provide important insights into the coping strategies of the community regarding earthquake stress. This study is expected to contribute significantly to areas such as disaster management, psychology, public health, and community resilience.
Description
Sulak, Suleyman Alpaslan/0000-0001-9716-9336;
ORCID
Keywords
Coping with Earthquake Stress Scale (CESS), Machine Learning Algorithms, Logistic Regression, Bagging, Random Forest, Article
Turkish CoHE Thesis Center URL
Fields of Science
Citation
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
N/A
Source
Scientific Reports
Volume
15
Issue
1
Start Page
End Page
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Citations
Scopus : 3
PubMed : 2
Captures
Mendeley Readers : 11
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9.20270099
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