Deep Learning in Multi-step Prediction of Chaotic Dynamics

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The book represents the first attempt to systematically deal with the use of deep neural networks to forecast chaotic time series. Differently from most of the current literature, it implements a multi-step approach, i.e., the forecast of an entire interval of future values. This is relevant for many applications, such as model predictive control, that requires predicting the values for the whole ...

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The book represents the first attempt to systematically deal with the use of deep neural networks to forecast chaotic time series. Differently from most of the current literature, it implements a multi-step approach, i.e., the forecast of an entire interval of future values. This is relevant for many applications, such as model predictive control, that requires predicting the values for the whole ...

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  • Formats: pdf
  • ISBN: 9783030944827
  • Publication Date: 14 Feb 2022
  • Publisher: Springer International Publishing
  • Product language: English
  • Drm Setting: DRM