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Application of a radial basis function neural network for diagnosis of diabetes mellitus

机译:径向基函数神经网络在糖尿病诊断中的应用

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摘要

In this article an attempt is made to study the applicability of a general purpose, supervised feed forward neural network with one hidden layer, namely. Radial Basis Function (RBF) neural network. It uses relatively smaller number of locally tuned units and is adaptive in nature. RBFs are suitable for pattern recognition and classification. Performance of the RBF neural network was also compared with the most commonly used multilayer perceptron network model and the classical logistic regression. Diabetes database was used for empirical comparisons and the results show that RBF network performs better than other models.
机译:在本文中,我们试图研究一种通用的,具有一个隐藏层的监督前馈神经网络的适用性。径向基函数(RBF)神经网络。它使用相对较少数量的本地调谐单位,并且本质上是自适应的。 RBF适用于模式识别和分类。 RBF神经网络的性能也与最常用的多层感知器网络模型和经典逻辑回归进行了比较。糖尿病数据库用于实证比较,结果表明RBF网络的性能优于其他模型。

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