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OPTIMUM NUMBERS OF SINGLE NETWORK FOR COMBINATION IN MULTIPLE NEURAL NETWORKS MODELING APPROACH FOR MODELING NONLINEAR SYSTEM

机译:多种神经网络组合组合的最佳数量非线性系统建模方法

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摘要

This paper is focused on finding the optimum number of single networks in multiple neural networks combination to improve neural network model robustness for nonlinear process modeling and control. In order to improve the generalization capability of single neural network based models, combining multiple neural networks is proposed in this paper. By studying the optimum number of network that can be combined in multiple network combination, the researcher can estimate the complexity of the proposed model then obtained the exact number of networks for combination. Simple averaging combination approach is implemented in this paper which is applied to nonlinear process models. It is shown that the optimum number of networks for combination can be obtained hence enhancing the performance of the proposed model.
机译:本文集中于在多个神经网络组合中找到最佳网络,以改善非线性过程建模和控制的神经网络模型鲁棒性。为了提高单一神经网络基础型模型的泛化能力,本文提出了组合多个神经网络。通过研究可以在多个网络组合组合的最佳网络,研究人员可以估计所提出的模型的复杂性,然后获得组合的确切网络。简单的平均组合方法是在本文中实现的,该方法应用于非线性过程模型。结果表明,可以获得用于组合的最佳数量,因此可以增强所提出的模型的性能。

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