molecular-optimization

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#molecular-optimization

A Precedent-Guided Co-Scientist for Side-Effect-Aware Drug Redesign

arXiv cs.LG · 2026-07-07 Cached

PRECEDE is a precedent-guided co-scientist for side-effect-aware drug redesign that frames drug modification as evidence-grounded reasoning over drug–side-effect associations and biomedical knowledge graphs, coordinated by an LLM orchestrator with human oversight.

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#molecular-optimization

On the Design Space of Discrete Diffusion Online Adaptation for Molecular Optimization

arXiv cs.LG · 2026-07-07 Cached

This paper studies online adaptation strategies for discrete diffusion models in molecular optimization, identifying complementary components like acquisition, reward shaping, debiasing, replay, and validity control that improve feedback efficiency on small-molecule and protein tasks.

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#molecular-optimization

Active-GRPO: Adaptive Imitation and Self-Improving Reasoning for Molecular Optimization

arXiv cs.LG · 2026-07-02 Cached

Active-GRPO introduces an adaptive imitation and self-improving reasoning framework that dynamically decides when to imitate references and when to reinforce the model's own discoveries for molecular optimization, achieving statistically significant improvements over previous methods on the TOMG-Bench-MolOpt benchmark.

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Beyond Drug Discovery: The Nanotechnology Molecular Optimization (NMO) Benchmark

Hugging Face Daily Papers · 2026-06-29 Cached

The Nanotechnology Molecular Optimization (NMO) Benchmark introduces physics-based molecular design tasks replacing drug-discovery-focused metrics, aiming to drive scientific discovery in nanotechnology. The paper shows that advanced methods underperform simpler approaches on NMO, and proposes new baseline methods including a novel representation and domain-agnostic pretraining.

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#molecular-optimization

Probe Before You Edit: Probing-Guided Molecular Optimization for LLM Agents in Structure-Based Drug Design

arXiv cs.AI · 2026-06-02 Cached

This paper introduces PROBE, a framework that uses LLM agents to iteratively optimize ligands in structure-based drug design by probing pocket-ligand complex responses before editing, achieving state-of-the-art results on CrossDocked2020.

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Agents on a Tree: Pathwise Coordination for Multi-Objective Molecular Optimization

arXiv cs.AI · 2026-06-02 Cached

ATOM is a multi-agent framework that formulates molecular optimization as a tree-structured search with specialized agents along paths, enabling exploration of alternative molecular trajectories and improving Pareto coverage in multi-objective benchmarks.

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Molecular Lead Optimization via Agentic Tool Planning

arXiv cs.LG · 2026-05-29 Cached

TRACE is a trajectory-aware LLM agent for molecular lead optimization that uses sequential decision-making over molecular optimization tools, achieving improved ADMET properties while preserving molecular similarity.

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