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Christian Feldmann

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Aug 2026

Deep Learning Foundation Models for Low-Data Regimes from Classical Molecular Descriptors

This work proposes pretraining on low-noise, calculable molecular descriptors via supervised learning to obtain rich, highly transferable molecular representations and demonstrates this strategy with CheMeleon, a O(10M) parameter foundation model that enables directed message-passing neural networks to finally exceed the performance of classical methods in the low-data regime.

Jackson W. Burns, Akshat Shirish Zalte, C. Abreu et al. · 0 citations