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Physics-based machine learning for modeling stochastic IP3-dependent calcium dynamics

2021-09-10 · Oliver K. Ernst, Tom Bartol, Terrence Sejnowski, Eric Mjolsness

We present a machine learning method for model reduction which incorporates domain-specific physics through candidate functions. Our method estimates an effective probability distribution and differential equation model from stochastic simulations of a reaction network. The close connection between reduced and fine scale descriptions allows approximations derived from the master equation to be introduced into the learning problem. This representation is shown to improve generalization and allows a large reduction in network size for a classic model of inositol trisphosphate (IP3) dependent calcium oscillations in non-excitable cells.

📄 PDF Abstract BibTeX arXiv:2109.05053

Code (1)

smrfeld/phys_dbd tf

Tasks

BIG-bench Machine Learning

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