Machine-learning-based dynamic-importance sampling for adaptive multiscale simulationsDownload PDFOpen Website

2021 (modified: 17 Nov 2022)Nat. Mach. Intell. 2021Readers: Everyone
Abstract: Tackling scientific problems often requires computational models that bridge several spatial and temporal scales. A new simulation framework employing machine learning, which is scalable and can be used on standard laptops as well as supercomputers, promises exhaustive multiscale explorations.
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