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Research PaperResearchia:202610.06040

Optimizing the Optimizer: Language Models Discover Faster Molecular Relaxation

Artem Tsypin

Abstract

Geometry optimization is a major cost in many quantum-chemical workflows: each optimization step requires one force evaluation, and at the density-functional level that evaluation dominates the wall time. Research in this area has produced a broad range of optimization methods, and we ask whether a language model can improve on the best of them through autoresearch. An agent rewrites the optimizer itself to minimize force-call counts, restrained by two admission gates that reject premature stopp...

Submitted: October 6, 2026Subjects: Chemistry; Chemistry

Description / Details

Geometry optimization is a major cost in many quantum-chemical workflows: each optimization step requires one force evaluation, and at the density-functional level that evaluation dominates the wall time. Research in this area has produced a broad range of optimization methods, and we ask whether a language model can improve on the best of them through autoresearch. An agent rewrites the optimizer itself to minimize force-call counts, restrained by two admission gates that reject premature stopping and improvements that do not generalize to unseen molecules. Starting from Sella, the fastest open-source optimizer available, the search produces AutoSella, a family of two optimizers. Both of them deliver consistent force-call reductions relative to Sella across held-out molecular benchmarks and potentials not used during the search. Most notably, at the \texttt{r2SCAN-3c} DFT level, the best variant requires only 40.240.2--77.2%77.2\% of Sella's force calls while achieving the same energy reduction, even though agent used no DFT gradients.


Source: arXiv:2610.06577v1 - http://arxiv.org/abs/2610.06577v1 PDF: https://arxiv.org/pdf/2610.06577v1 Original Link: http://arxiv.org/abs/2610.06577v1

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Date:
Oct 6, 2026
Topic:
Chemistry
Area:
Chemistry
Comments:
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