Cannabis Ruderalis

Authors
Jaideep Pathak, Brian Hunt, Michelle Girvan, Zhixin Lu, Edward Ott
Publication date
2018/1/12
Journal
Physical review letters
Volume
120
Issue
2
Pages
024102
Publisher
American Physical Society
Description
We demonstrate the effectiveness of using machine learning for model-free prediction of spatiotemporally chaotic systems of arbitrarily large spatial extent and attractor dimension purely from observations of the system’s past evolution. We present a parallel scheme with an example implementation based on the reservoir computing paradigm and demonstrate the scalability of our scheme using the Kuramoto-Sivashinsky equation as an example of a spatiotemporally chaotic system.
Total citations
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