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Reducing the Cost of Quantum Chemical Data By Backpropagating Through Density Functional Theory

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abstract

Density Functional Theory (DFT) accurately predicts the quantum chemical properties of molecules, but scales as $O(N_{\text{electrons}}^3)$. Sch\"utt et al. (2019) successfully approximate DFT 1000x faster with Neural Networks (NN). Arguably, the biggest problem one faces when scaling to larger molecules is the cost of DFT labels. For example, it took years to create the PCQ dataset (Nakata & Shimazaki, 2017) on which subsequent NNs are trained within a week. DFT labels molecules by minimizing energy $E(\cdot )$ as a "loss function." We bypass dataset creation by directly training NNs with $E(\cdot )$ as a loss function. For comparison, Sch\"utt et al. (2019) spent 626 hours creating a dataset on which they trained their NN for 160h, for a total of 786h; our method achieves comparable performance within 31h.

fields

cs.LG 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

Self-Refining Training for Amortized Density Functional Theory

cs.LG · 2025-06-02 · conditional · novelty 6.0

A self-refining training loop, where a neural network samples molecular conformations from its own predicted energy and trains on them, reduces the need for large labeled DFT datasets in amortized density functional theory.

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  • Self-Refining Training for Amortized Density Functional Theory cs.LG · 2025-06-02 · conditional · none · ref 24 · internal anchor

    A self-refining training loop, where a neural network samples molecular conformations from its own predicted energy and trains on them, reduces the need for large labeled DFT datasets in amortized density functional theory.