2024
DOI: 10.1093/bioinformatics/btae118
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MolFeSCue: enhancing molecular property prediction in data-limited and imbalanced contexts using few-shot and contrastive learning

Ruochi Zhang,
Chao Wu,
Qian Yang
et al.

Abstract: Motivation Predicting molecular properties is a pivotal task in various scientific domains, including drug discovery, material science, and computational chemistry. This problem is often hindered by the lack of annotated data and imbalanced class distributions, which pose significant challenges in developing accurate and robust predictive models. Results This study tackles these issues by employing pre-trained molecular model… Show more

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Cited by 4 publications
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