A Decision Support System for Diagnosing Diabetes Using Deep Neural Network

被引:6
|
作者
Rabie, Osama [1 ]
Alghazzawi, Daniyal [1 ]
Asghar, Junaid [2 ]
Saddozai, Furqan Khan [3 ]
Asghar, Muhammad Zubair [3 ]
机构
[1] King Abdulaziz Univ, Fac Comp & Informat Technol, Informat Syst Dept, Jeddah, Saudi Arabia
[2] Gomal Univ, Fac Pharm, Dera Ismail Khan, Pakistan
[3] Gomal Univ, Inst Comp & Informat Technol, Dera Ismail Khan, Pakistan
关键词
disease diagnoses; deep learning; diabetes prediction; decision support system; disease diagnosis; CLASSIFICATION;
D O I
10.3389/fpubh.2022.861062
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Background and ObjectiveAccording to the WHO, diabetes mellitus is a long-term condition marked by high blood sugar levels. The consequences might be far-reaching. According to current increases in mortality, diabetes has risen to number 10 among the leading causes of mortality worldwide. When used to predict diabetes using unbalanced datasets from testing, machine learning (ML) classifiers and established approaches for encoding categorical data have exhibited a broad variety of surprising outcomes. Early studies also made use of an artificial neural network to extract features without obtaining a grasp of the sequence information. MethodsThis study offers a deep learning-based decision support system (DSS), utilizing bidirectional long/short-term memory (BiLSTM), to accurately predict diabetic illness from patient data. In order to predict diabetes, the BiLSTM hybrid model was used after balancing the data set. ResultsUnlike earlier studies, this proposed model's trial findings were promising, with an accuracy of 93.07%, 93% precision, 92% recall, and a 92% F1-score. ConclusionsUsing a BILSTM model for classification outperforms current approaches in the diabetes detection domain.
引用
收藏
页数:13
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