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Learning on-top: regressing the on-top pair density for real-space visualization of electron correlation

arXiv
Authors: Alberto Fabrizio, Ksenia R. Briling, David D. Girardier, Clemence Corminboeuf

Year

2020

Paper ID

19956

Status

Preprint

Abstract Read

~2 min

Abstract Words

219

Citations

N/A

Abstract

The on-top pair density \[Π\(mathrm{mathbf{r}}\)\] is a local quantum-chemical property that reflects the probability of two electrons of any spin to occupy the same position in space. Being the simplest quantity related to the two-particle density matrix, the on-top pair density is a powerful indicator of electron correlation effects, and as such, it has been extensively used to combine density functional theory and multireference wavefunction theory. The widespread application of Π\(mathrm{mathbf{r}}\) is currently hindered by the need for post-Hartree--Fock or multireference computations for its accurate evaluation. In this work, we propose the construction of a machine learning model capable of predicting the CASSCF-quality on-top pair density of a molecule only from its structure and composition. Our model, trained on the GDB11-AD-3165 database, is able to predict with minimal error the on-top pair density of organic molecules, bypassing completely the need for textit{ab initio} computations. The accuracy of the regression is demonstrated using the on-top ratio as a visual metric of electron correlation effects and bond-breaking in real-space. In addition, we report the construction of a specialized basis set, built to fit the on-top pair density in a single atom-centered expansion. This basis, cornerstone of the regression, could be potentially used also in the same spirit of the resolution-of-the-identity approximation for the electron density.

Why This Paper Matters

  • This paper contributes to the Quantum Machine Learning research area in the Quantum Articles archive.
  • It adds a 2020 reference point for readers tracking recent quantum research.
  • The on-top pair density [Π(mathrmmathbfr)] is a local quantum-chemical property that reflects the probability of two electrons of any spin to occupy the same position in space.

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