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首页> 外文期刊>International journal of decision support system technology >A Predictive E-Health Information System: Diagnosing Diabetes Mellitus Using Neural Network Based Decision Support System
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A Predictive E-Health Information System: Diagnosing Diabetes Mellitus Using Neural Network Based Decision Support System

机译:预测性电子健康信息系统:使用基于神经网络的决策支持系统诊断糖尿病

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摘要

Diabetes Mellitus is a chronic disease and a major cause of several severe complications and death in both developing and developed countries. The number of diabetes cases world-wide has been climbed up drastically over last decades. Hence, it was of utmost important to manage this illness and to develop tools that help clinicians do their job professionally. Artificial neural networks play a major role herein. In this research, a clinical decision support system that helps in diagnosing diabetes has been developed. The system was implemented using a multilayer perceptron artificial neural network Due to the fact that there is no systematic way to follow in order to determine the number of hidden layers and neurons in MLP, an algorithm was proposed and followed based on the rules-of-thumb previously defined around this issue. As a result, two different topologies were trained and verified using cross validation technique. The topology that exhibited the best averaged accuracy was that of one hidden layer. The data set was obtained from King Abdullah University Hospital in Jordan.
机译:糖尿病是一种慢性疾病,在发展中国家和发达国家都是数种严重并发症和死亡的主要原因。在过去的几十年中,全世界的糖尿病病例数量急剧上升。因此,控制这种疾病并开发可帮助临床医生专业地完成工作的工具至关重要。人工神经网络在这里起主要作用。在这项研究中,已经开发了有助于诊断糖尿病的临床决策支持系统。该系统是使用多层感知器人工神经网络实现的。由于没有系统的方法来确定MLP中的隐藏层和神经元的数量,因此提出了一种算法,并遵循以下规则:先前围绕此问题定义的经验。结果,使用交叉验证技术对两种不同的拓扑进行了训练和验证。表现出最佳平均精度的拓扑是一个隐藏层的拓扑。该数据集来自约旦阿卜杜拉国王大学医院。

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