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Journal Article

Deep-Learning Approach for the Atomic Configuration Interaction Problem on Large Basis Sets

MPS-Authors
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Bilous,  Pavlo
Marquardt Division, Max Planck Institute for the Science of Light, Max Planck Society;

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Marquardt,  Florian
Marquardt Division, Max Planck Institute for the Science of Light, Max Planck Society;

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PhysRevLett.131.133002.pdf
(Publisher version), 310KB

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Bildschirmfoto 2023-12-18 um 10.33.36.png
(Supplementary material), 15KB

Citation

Bilous, P., Pálffy, A., & Marquardt, F. (2023). Deep-Learning Approach for the Atomic Configuration Interaction Problem on Large Basis Sets. Physical Review Letters, 131(13). doi:10.1103/PhysRevLett.131.133002.


Cite as: https://hdl.handle.net/21.11116/0000-000E-0E62-5
Abstract
High-precision atomic structure calculations require accurate modeling of electronic correlations typically addressed via the configuration interaction (CI) problem on a multiconfiguration wave function expansion. The latter can easily become challenging or infeasibly large even for advanced supercomputers. Here, we develop a deep-learning approach which allows us to preselect the most relevant configurations out of large CI basis sets until the targeted energy precision is achieved. The large CI computation is thereby replaced by a series of smaller ones performed on an iteratively expanding basis subset managed by a neural network. While dense architectures as used in quantum chemistry fail, we show that a convolutional neural network naturally accounts for the physical structure of the basis set and allows for robust and accurate CI calculations. The method was benchmarked on basis sets of moderate size allowing for the direct CI calculation, and further demonstrated on prohibitively large sets where the direct computation is not possible.