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SAFE setup for generative molecular design

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arxiv 2410.20232 v1 pith:BIZ7W2JH submitted 2024-10-26 cs.LG q-bio.BM

classification cs.LGq-bio.BM
keywords generativemodelsdesignsafearchitectureembeddingmolecularsafe-based
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SMILES-based molecular generative models have been pivotal in drug design but face challenges in fragment-constrained tasks. To address this, the Sequential Attachment-based Fragment Embedding (SAFE) representation was recently introduced as an alternative that streamlines those tasks. In this study, we investigate the optimal setups for training SAFE generative models, focusing on dataset size, data augmentation through randomization, model architecture, and bond disconnection algorithms. We found that larger, more diverse datasets improve performance, with the LLaMA architecture using Rotary Positional Embedding proving most robust. SAFE-based models also consistently outperform SMILES-based approaches in scaffold decoration and linker design, particularly with BRICS decomposition yielding the best results. These insights highlight key factors that significantly impact the efficacy of SAFE-based generative models.

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  1. Conditional Chemical Language Models are Versatile Tools in Drug Discovery

    cs.LG 2025-07 conditional novelty 5.0 of 10

    SAFE-T is a single conditional chemical language model that unifies scoring and generation of drug-like molecules from target family, protein, and mechanism-of-action prompts.

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