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arXiv (Cornell University)
MFBind: a Multi-Fidelity Approach for Evaluating Drug Compounds in Practical Generative Modeling
February 2024 • Peter Eckmann, Dongxia Wu, Germano Heinzelmann, Michael K. Gilson, Rose Yu
Current generative models for drug discovery primarily use molecular docking to evaluate the quality of generated compounds. However, such models are often not useful in practice because even compounds with high docking scores do not consistently show experimental activity. More accurate methods for activity prediction exist, such as molecular dynamics based binding free energy calculations, but they are too computationally expensive to use in a generative model. We propose a multi-fidelity approach, Multi-Fidelit…
Generative Grammar
Fidelity
Drug
Computer Science
Artificial Intelligence
Pharmacology
Medicine