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基于深度神经网络的糖尿病诊断决策支持系统。

A Decision Support System for Diagnosing Diabetes Using Deep Neural Network.

机构信息

Information Systems Department, Faculty of Computing and Information Technology, King Abdulaziz University, Jeddah, Saudi Arabia.

Faculty of Pharmacy, Gomal University, Dera Ismail Khan, Pakistan.

出版信息

Front Public Health. 2022 Mar 17;10:861062. doi: 10.3389/fpubh.2022.861062. eCollection 2022.

Abstract

BACKGROUND AND OBJECTIVE

According 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.

METHODS

This 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.

RESULTS

Unlike 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.

CONCLUSIONS

Using a BILSTM model for classification outperforms current approaches in the diabetes detection domain.

摘要

背景与目的

根据世界卫生组织的定义,糖尿病是一种以高血糖为特征的长期病症。其后果可能是深远的。根据目前死亡率的上升情况,糖尿病已上升至全球第 10 大主要死因。在使用来自测试的不平衡数据集来预测糖尿病时,机器学习 (ML) 分类器和用于编码分类数据的既定方法表现出了各种各样令人惊讶的结果。早期研究还使用人工神经网络来提取特征,而没有掌握序列信息。

方法

本研究提供了一种基于深度学习的决策支持系统 (DSS),利用双向长短期记忆 (BiLSTM) 从患者数据中准确预测糖尿病。为了预测糖尿病,在平衡数据集后使用 BiLSTM 混合模型。

结果

与早期研究不同,该模型的试验结果令人鼓舞,准确率为 93.07%,精度为 93%,召回率为 92%,F1 得分为 92%。

结论

使用 BiLSTM 模型进行分类的效果优于糖尿病检测领域的现有方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b06c/8970706/2784e96699de/fpubh-10-861062-g0001.jpg

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