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AgentFold: Closed-Loop Agentic Search for Protein Folding Model Design

arXiv · AI, language, vision and robotics · article · Aug 27, 2026 · UTC

Scientific LLM agents have shown promise in literature reasoning, tool use, and experiment planning, but it remains unclear whether they can autonomously improve large, tightly coupled scientific machine-learning systems through executable code changes and computationally expensive validation. We study this question in protein folding, where progress requires coordinated architectural modifications, multi-objective evaluation, and domain-aware interpretation. We present AgentFold, a multi-agent framework that formulates folding-model development as a closed-loop search over executable code var

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Evidence & attribution

First collected: 2026-09-21T08:51:59.673Z. This is not the publication date.