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From the 1 of 7 linked papers with an AI index.

most citedMolecular Representations for Large Language Models

1 citations · 1 across the 5 of their papers we have counts for

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7 papers

cs.SE2026

NISPO: Open-source IUPAC name generation tool

Nicholas T. Runcie, Fergus Imrie, Charlotte M. Deane

The paper presents NISPO, an open-source Python package built on RDKit that automatically generates IUPAC names for chemical structures, trained via a self-improving loop with a la…

cs.LG2026

Design-CP: Context Parallelism for Design of Protein Nanoparticles

Lorenzo Tarricone, Helen E. Eisenach, Aiko Muraishi +1

Many all-atom generative protein models can in principle design large multimeric complexes by jointly modelling all chains, but their quadratic token- and atom-pair representations…

cs.LG2026

On Improving Graph Neural Networks for QSAR by Pre-training on Extended-Connectivity Fingerprints

Sam Money-Kyrle, Markus Dablander, Thierry Hanser +3

Molecular Graph Neural Networks (GNNs) are increasingly common in drug discovery, particularly for Quantitative Structure-Activity Relationship (QSAR) studies; yet, their superiori…

cs.LG20261 cited

Molecular Representations for Large Language Models

Nicholas T. Runcie, Fergus Imrie, Charlotte M. Deane

Large Language Models (LLMs) are increasingly being used to support scientific discovery. In chemistry, tasks such as reaction prediction and structure elucidation require reasonin…

cs.LG2026

SigmaDock: Untwisting Molecular Docking With Fragment-Based SE(3) Diffusion

Alvaro Prat, Leo Zhang, Charlotte M. Deane +2

Determining the binding pose of a ligand to a protein, known as molecular docking, is a fundamental task in drug discovery. Generative approaches promise faster, improved, and more…

cs.LG2025

Assessing the Chemical Intelligence of Large Language Models

Nicholas T. Runcie, Charlotte M. Deane, Fergus Imrie

Large Language Models are versatile, general-purpose tools with a wide range of applications. Recently, the advent of "reasoning models" has led to substantial improvements in thei…