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DL_FFLUX Refactored: Accelerating Quantum Chemical Topology Simulations With Optimized Parallelization
Mohamadhosein Nosratjoo1, Michael K Bane2,3, Paul L A Popelier1
1Department of Chemistry, The University of Manchester, Manchester, UK.
Abstract:
Molecular dynamics simulations are only as useful as they are both accurate and efficient. Here, we introduce an upgraded version of the simulation code DL_FFLUX that dramatically extends accessible time scales by combining a more efficient core algorithm with OpenMP and MPI parallelization. DL_FFLUX is a unique, state-of-the-art polarisable machine learning potential (MLP) that combines Quantum Chemical Topology (QCT) and machine learning (ML) and relies on DL_POLY as the driver for molecular dynamics simulations. This new implementation of DL_FFLUX delivers a massive performance boost, making simulations 6.8 to 49 times faster without compromising accuracy. This performance boost of DL_FFLUX is reported for condensed-phase simulations of water and ethanol and for single-molecule simulations of 6 small to medium-sized molecules. Moreover, we compared the optimized version of DL_FFLUX with other MLPs on the MD17 dataset for four molecules. DL_FFLUX is the fastest: depending on the system, it outperforms the second-fastest MLP by a factor of 1.8-9.6.
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