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  • title: SE(3)-equivariant prediction of molecular wavefunctions and electronic densities
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            SE(3)-equivariant prediction of molecular wavefunctions and electronic densities
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            SE(3)-equivariant prediction of molecular wavefunctions and electronic densities

            Dec 6, 2021

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            Oliver T. Unke

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            Mihail Bogojeski

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            Michael Gastegger

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            About

            Machine learning has enabled the prediction of quantum chemical properties with high accuracy and efficiency, allowing to bypass computationally costly ab initio calculations. Instead of training on a fixed set of properties, more recent approaches attempt to learn the electronic wavefunction (or density) as a central quantity of atomistic systems, from which all other observables can be derived. This is complicated by the fact that wavefunctions transform non-trivially under molecular rotations…

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            NeurIPS 2021

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