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A New Architecture Selection Strategy in Solving Seasonal Autoregressive Time Series By Artificial Neural Networks

Date

2008

Author

Aladag, Cagdas Hakan
Egrioglu, Erol
Gunay, Suleyman

Metadata

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Abstract

The only suggestions given in the literature for determining the architecture of neural networks are based on observations, and a simulation study to determine the architecture has not yet been reported. Based on the results of the simulation study described in this paper, a new architecture selection strategy is proposed and shown to work well. It is noted that although in some studies the period of a seasonal time series has been taken as the number of inputs of the neural network model, it is found in this study that the period of a seasonal time series is not a parameter in determining the number of inputs.

Source

Hacettepe Journal of Mathematics and Statistics

Volume

37

Issue

2

URI

https://hdl.handle.net/20.500.12712/19546

Collections

  • Scopus İndeksli Yayınlar Koleksiyonu [14046]
  • WoS İndeksli Yayınlar Koleksiyonu [12971]



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