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Tuberculosis Disease Diagnosis Using Artificial Neural Networks

机译:基于人工神经网络的结核病诊断

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Tuberculosis is an infectious disease, caused in most cases by microorganisms called Mycobacterium tuberculosis. Tuberculosis is a great problem in most low income countries; it is the single most frequent clause of death in individuals aged fifteen to forty-nine years. Tuberculosis is important health problem in Turkey also. In this study, a study on tuberculosis diagnosis was realized by using multilayer neural networks (MLNN). For this purpose, two different MLNN structures were used. One of the structures was the MLNN with one hidden layer and the other was the MLNN with two hidden layers. A general regression neural network (GRNN) was also performed to realize tuberculosis diagnosis for the comparison. Levenberg-Marquardt algorithms were used for the training of the multilayer neural networks. The results of the study were compared with the results of the pervious similar studies reported focusing on tuberculosis diseases diagnosis. The tuberculosis dataset were taken from a state hospital's database using patient's epicrisis reports.
机译:结核病是一种传染性疾病,在大多数情况下是由称为结核分枝杆菌的微生物引起的。在大多数低收入国家,结核病是一个大问题。它是15至49岁个人中最常见的死亡条款。结核病在土耳其也是重要的健康问题。在这项研究中,通过使用多层神经网络(MLNN)进行了结核病诊断的研究。为此,使用了两种不同的MLNN结构。其中一种结构是具有一个隐藏层的MLNN,另一种结构是具有两个隐藏层的MLNN。还进行了通用回归神经网络(GRNN)来实现结核病诊断以进行比较。 Levenberg-Marquardt算法用于训练多层神经网络。将研究结果与先前报道的侧重于结核病诊断的类似研究结果进行比较。结核病数据集使用患者的病情报告从州立医院的数据库中获取。

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