JOURNAL ARTICLE

Cardiovascular disease risk factors prediction using deep learning convolutional neural networks

M. AlmatariBelal AbuhaijaAladeen AlloubaniFiras HaddadGhaith M. JaradatYousef QawqzehMutasem K. AlsmadiFahad AlGhamdiJehad Saad AlqurniLena AlodatLinyinxue Dong

Year: 2024 Journal:   International Journal of Power Electronics and Drive Systems/International Journal of Electrical and Computer Engineering Vol: 14 (4)Pages: 4471-4471   Publisher: Institute of Advanced Engineering and Science (IAES)

Abstract

Heart disease remains a leading cause of mortality worldwide, prompting healthcare researchers to leverage analytical tools for comprehensive data analysis. This study focuses on exploring crucial parameters and employing deep learning (DL) techniques to enhance understanding and prediction of cardiovascular disease (CVD) risk factors. Utilizing SPSS and Weka tools, a cross-sectional and correlational design was employed to analyze extensive medical datasets. Binomial regression analysis revealed significant associations between age (𝑝 = 0.004) and body mass index (𝑝 = 0.002) with CVD development, highlighting their importance as risk factors. Leveraging Weka's DL algorithms, a predictive model was constructed to classify CVD causes. Particularly, convolutional neural networks (CNN) showcased remarkable accuracy, reaching 98.64%. The findings underscore the elevated risk of CVD among university students and employees in Saudi Arabia, emphasizing the need for heightened awareness and preventive measures, including dietary improvements and increased physical activity. This study underscores the importance of further research to enhance CVD risk perception among students and individuals in similar settings.

Keywords:
Leverage (statistics) Convolutional neural network Disease Artificial intelligence Machine learning Deep learning Computer science Artificial neural network Body mass index Medicine Internal medicine

Metrics

3
Cited By
4.32
FWCI (Field Weighted Citation Impact)
30
Refs
0.91
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Artificial Intelligence in Healthcare
Health Sciences →  Health Professions →  Health Information Management
Healthcare Systems and Public Health
Health Sciences →  Medicine →  Epidemiology
Machine Learning in Healthcare
Physical Sciences →  Computer Science →  Artificial Intelligence

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