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Learning stochastic process-based models of dynamical systems from knowledge and data.

Jovan TanevskiLjupčo TodorovskiSašo Džeroski
Published in: BMC systems biology (2016)
The method represents a unified approach to modeling dynamical systems that allows for flexible formalization of the space of candidate model structures, deterministic and stochastic interpretation of model dynamics, and automated induction of model structure and parameters from data. The method is able to reconstruct models of dynamical systems from synthetic and real data.
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