利用深度学习预测2型糖尿病的早期阶段

Prabir Pathak, A. Elchouemi
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引用次数: 0

摘要

具有预测功能的深度神经网络是目前主要的深度学习技术之一,已被许多研究用于2型糖尿病(T2D)的早期预测。针对T2D的预测,提出了基于数据、预测处理和显示(DPD)的组件分类法。对这些组件进行了评估,以获得更好的系统性能,并使用不同的参数进行了T2D早期诊断的验证。与已有文献和现有研究结果相比,该系统对不同年龄组糖尿病患者的T2D预测和早期检测具有更高的准确性。对糖尿病患者的诊断也有一定的帮助。对最新发表的关于T2D和深度学习的研究论文的文献综述进行批判性分析,对T2D的预测具有更好的准确性。在此基础上,开发了一种有效的基于深度神经网络(Deep Neural Network, DNN)的t2dm早期预测系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predicting Early Phase of Type 2 Diabetic by Deep Learning
Deep Neural Network with prediction is the one of the main deep learning technologies which has been used by many researches for early prediction of Type 2 Diabetics (T2D). For the prediction of the T2D, the taxonomy with the components are proposed with Data, Prediction processing and Display (DPD). Those components are evaluated for the better performance of the system and are validated with the different parameters for the early diagnosis of the T2D. The system being proposed has the higher accuracy for the prediction of the T2D and early detection of the diabetics in different age group in comparison to research paper reviewed and with current findings. It also helps to diagnose the diabetics in the patients. The critical analysis of the literature review of the latest published research paper available on the T2D and on deep learning has better accuracy for the prediction of T2D. On basis of the analysis, an effective system for T2D based on Deep Neural Network (DNN) has been developed in the system that can predict the diabetics in the early stage.
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