Chaotic Time Series Prediction Based on Evolving Recurrent Neural Networks

@article{Ma2007ChaoticTS,
  title={Chaotic Time Series Prediction Based on Evolving Recurrent Neural Networks},
  author={Qian-Li Ma and Qi-lun Zheng and Hong Peng and Tan-Wei Zhong and Li-qiang Xu},
  journal={2007 International Conference on Machine Learning and Cybernetics},
  year={2007},
  volume={6},
  pages={3496-3500}
}
The prediction of future values of a time series generated by a chaotic dynamical system is a challenging task. Recently, the use of recurrent neural networks (RNN) models appears. An evolving neural network (ERNN) is proposed for the prediction of chaotic time series, which estimates the proper parameters of phase space reconstruction and optimizes the structure of recurrent neural networks by evolutionary algorithms. The effectiveness of ERNN is evaluated by using four benchmark chaotic time… CONTINUE READING
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