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Induction and physical theory formation as well as universal computation by machine learning

Published 10 Sep 2016 in physics.gen-ph | (1609.03862v3)

Abstract: Machine learning presents a general, systematic framework for the generation of formal theoretical models for physical description and prediction. Tentatively standard linear modeling techniques are reviewed; followed by a brief discussion of generalizations to deep forward networks for approximating nonlinear phenomena and universal computers.

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