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ABSTRACT:
SUBMITTER: Korshunova M
PROVIDER: S-EPMC9814657 | biostudies-literature | 2022 Oct
REPOSITORIES: biostudies-literature
Korshunova Maria M Huang Niles N Capuzzi Stephen S Radchenko Dmytro S DS Savych Olena O Moroz Yuriy S YS Wells Carrow I CI Willson Timothy M TM Tropsha Alexander A Isayev Olexandr O
Communications chemistry 20221018 1
Deep generative neural networks have been used increasingly in computational chemistry for de novo design of molecules with desired properties. Many deep learning approaches employ reinforcement learning for optimizing the target properties of the generated molecules. However, the success of this approach is often hampered by the problem of sparse rewards as the majority of the generated molecules are expectedly predicted as inactives. We propose several technical innovations to address this pro ...[more]