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Morten Ledum
Morten Ledum
Senior software engineer at the Hylleraas Centre for Quantum Molecular Sciences, University of Oslo
Verifisert e-postadresse på kjemi.uio.no
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Automated determination of hybrid particle-field parameters by machine learning
M Ledum, S Løland Bore, M Cascella
Molecular Physics 118 (19-20), e1785571, 2020
102020
HylleraasMD: A Domain Decomposition-Based Hybrid Particle-Field Software for Multiscale Simulations of Soft Matter
M Ledum, S Sen, X Li, M Carrer, Y Feng, M Cascella, SL Bore
Journal of Chemical Theory and Computation 19 (10), 2939-2952, 2023
72023
HylleraasMD: Massively parallel hybrid particle-field molecular dynamics in Python
M Ledum, M Carrer, S Sen, X Li, M Cascella, SL Bore
Journal of Open Source Software 8 (84), 4149, 2023
42023
Soft matter under pressure: Pushing particle–field molecular dynamics to the isobaric ensemble
S Sen, M Ledum, SL Bore, M Cascella
Journal of Chemical Information and Modeling 63 (7), 2207-2217, 2023
42023
On the equivalence of the hybrid particle–field and Gaussian core models
M Ledum, S Sen, SL Bore, M Cascella
The Journal of Chemical Physics 158 (19), 2023
22023
A Computational Environment for Multiscale Modelling
M Ledum
12017
Learning Force Field Parameters from Differentiable Particle-Field Molecular Dynamics
M Carrer, HM Cezar, SL Bore, M Ledum, M Cascella
2024
Hamiltonian hybrid particle–field method for biological soft matter-Efficient simulation and machine learning approaches
M Ledum
2022
HylleraasMD: Massively parallel hybrid particle-field
M Ledum, M Carrer, S Sen, X Li, M Cascella, SL Bore
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Artikler 1–9