Machine Learning Based Diabetes Classification and Prediction for Healthcare Applications.
Umair Muneer Butt1, Sukumar Letchmunan1, Mubashir Ali2
1School of Computer Sciences, Universiti Sains Malaysia, Penang, Malaysia.
Journal of Healthcare Engineering
|October 11, 2021
Summary
This study introduces machine learning models for early diabetes detection and prediction. Multilayer perceptron (MLP) achieved 86.08% accuracy, while LSTM improved prediction accuracy to 87.26%.
Area of Science:
- Biomedical Informatics
- Machine Learning in Healthcare
- Public Health Data Analysis
Background:
- Advancements in biotechnology and healthcare generate vast amounts of sensitive patient data.
- Intelligent data analysis aids in early disease detection and prevention, crucial for managing life-threatening conditions like diabetes mellitus.
- Diabetes significantly increases the risk of secondary complications such as heart, kidney, and nerve damage.
Purpose of the Study:
- To propose a machine learning-based approach for the classification, early identification, and prediction of diabetes.
- To present a hypothetical Internet of Things (IoT)-based system for continuous blood glucose (BG) monitoring.
- To evaluate the efficacy of different machine learning models for diabetes-related tasks.
Main Methods:
- Employed Random Forest (RF), Multilayer Perceptron (MLP), and Logistic Regression (LR) for diabetes classification.
- Utilized Long Short-Term Memory (LSTM), Moving Averages (MA), and Linear Regression (LR) for predictive analysis.
- Validated the models using the benchmark PIMA Indian Diabetes dataset.
Main Results:
- The Multilayer Perceptron (MLP) classifier achieved an accuracy of 86.08% for diabetes classification.
- Long Short-Term Memory (LSTM) demonstrated improved predictive accuracy for diabetes, reaching 87.26%.
- Comparative analysis showed the proposed approach's adaptability for public healthcare applications.
Conclusions:
- Machine learning models, particularly MLP and LSTM, show significant promise for accurate diabetes classification and prediction.
- The proposed methods offer a viable approach for early diabetes identification and management.
- The integration of IoT for blood glucose monitoring can enhance patient care and disease management strategies.
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