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Development of a decision support system tool to predict the pulmonary function using artificial neural network approach

机译:开发决策支持系统工具,以预测使用人工神经网络方法预测肺功能

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摘要

The spirometry is considered a preclinical tool for the evaluation of the respiratory system. The formal lung volumes measurement and health status lung system are made using spirometry. Artificial neural network (ANN) has been introduced in solving complex problems in a large number of different settings, including medical diagnosis support system as predictive power. An objective of this research was intended to investigate the development of a new decision support system (DSS) using ANN modeling approaches and algorithms to predict pulmonary function in people. The spirometry data and general characteristics, anthropometric data, and body composition parameters (N = 130) were obtained from subjects. The classification of pulmonary function was performed by the multi-layer perceptron (MLP) model. Findings show that the MLP model is capable of classifying respiratory abnormalities in different people. The ANN model was totally 93.6%, 92.3%, 84.6%, and 91.5% successful in correctly classified in training, validation, test, and all data, respectively. Also, a DSS tool was created that allows the evaluation and classification of the results of spirometry data. It appears that ANNs are useful in classification pulmonary function.
机译:肺活量测定法被认为是评估呼吸系统的临床前工具。正式的肺部测量和健康状态肺系统采用肺活量测定。已经引入了人工神经网络(ANN)在求解大量不同环境中的复杂问题,包括医学诊断支持系统作为预测功率。本研究的目的旨在调查使用ANN建模方法和算法的新决策支持系统(DSS)的开发,以预测人们的肺功能。从受试者中获得肺活量的数据和一般特征,人体测量数据和身体成分参数(n = 130)。肺功能的分类由多层Perceptron(MLP)模型进行。调查结果表明,MLP模型能够对不同人的呼吸异常进行分类。 ANN模型共计93.6%,92.3%,84.6%,91.5%,分别在培训,验证,测试和所有数据中正确分类。此外,创建了DSS工具,其允许评估和分类肺活量数据的结果。它似乎在分类肺功能中有用。

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