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Exploring parameter dependence of atomic minima with implicit differentiation

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arxiv 2407.02414 v2 pith:6POF3VG4 submitted 2024-07-02 cond-mat.mtrl-sci physics.comp-ph

classification cond-mat.mtrl-sciphysics.comp-ph
keywords implicitpotentialsatomicbackpropagationderivativedifferentiationforwardinverse
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Interatomic potentials are essential to go beyond ab initio size limitations, but simulation results depend sensitively on potential parameters. Forward propagation of parameter variation is key for uncertainty quantification, whilst backpropagation has found application for emerging inverse problems such as fine-tuning or targeted design. Here, the implicit derivative of functions defined as a fixed point is used to Taylor expand the energy and structure of atomic minima in potential parameters, evaluating terms via automatic differentiation, dense linear algebra or a novel sparse operator approach. The latter allows efficient forward and backpropagation through relaxed structures of arbitrarily large systems. The implicit expansion accurately predicts lattice distortion and defect formation energies and volumes with classical and machine-learning potentials, enabling high-dimensional uncertainty propagation without prohibitive overhead. We then show how the implicit derivative can be used to solve challenging inverse problems, minimizing an implicit loss to fine-tune potentials and stabilize solute-induced structural rearrangements at dislocations in tungsten.

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  1. Uncertainty Quantification for Misspecified Machine Learned Interatomic Potentials

    cond-mat.mtrl-sci 2025-02 conditional novelty 6.0 of 10

    POPS uncertainty bounds from misspecification-aware parameter sampling envelop DFT reference values for a broad range of tungsten properties and for MACE-MPA-0 energies.

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