DOE OSTI · 1764200
Detecting depinning and nonequilibrium transitions with unsupervised machine learning
Abstract
Using numerical simulations of a model disk system, we demonstrate that a machine learning generated order-parameter-like measure can detect depinning transitions and different dynamic flow phases in systems driven far from equilibrium. Furthermore, we specifically consider monodisperse passive disks with short range interactions undergoing a depinning phase transition when driven over quenched disorder. The machine learning derived order-parameter-like measure identifies the depinning transition as well as different dynamical regimes, such as the transition from a flowing liquid to a phase separated liquid-solid state that is not readily distinguished with traditional measures such as velocity-force curves or Voronoi tessellation. The order-parameter-like measure also shows markedly distinct behavior in the limit of high density where jamming effects occur. Our results should be general to the broad class of particle-based systems that exhibit depinning transitions and nonequilibrium phase transitions.
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McDermott, Danielle, Reichhardt, Cynthia Jane, Reichhardt, Charles. 2020-04-03. Detecting depinning and nonequilibrium transitions with unsupervised machine learning. https://doi.org/10.1103/physreve.101.042101
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