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AIM:面向自动化研究的智能体化想法管理框架
AI 导读
研究者提出全自主框架 Agentic Idea Manager(AIM),用于管理并探索"想法驱动"的自动化研究,通过 Agentic Surrogate 与 Agentic Acquisition 机制组织并筛选研究想法,并以 Solution Auditor 维护想法与实现的一致性。
正文
Abstract:Frontier LLMs are increasingly used to automate scientific research through iterative search. We distinguish idea-driven search from solution-driven search and identify three core challenges: organizing evolving research ideas, selecting promising directions, and maintaining alignment between ideas and their implementations. To address these challenges, we introduce the Agentic Idea Manager (AIM), a fully autonomous framework for managing and exploring research directions in idea-driven automated research. Inspired by Bayesian optimization, AIM uses an Agentic Surrogate and an Agentic Acquisition mechanism to organize discovered ideas and guide their selection. A Solution Auditor maintains idea-solution integrity, while a Resource Planner adaptively allocates the remaining experimental budget across parallel search branches. Experiments on 10 AutoLab benchmark tasks show that AIM surpasses the strongest baseline by 1.6 percentage points on System Optimization tasks and 4.9 percentage points on long-horizon Model Development & CUDA tasks. Notably, AIM reaches the best baseline performance up to 3.1x faster in wall-clock time. We further provide a theoretical analysis of when searching over ideas becomes beneficial. Our analysis shows that explicit idea-level allocation makes semantic coverage directly controllable, and that broader coverage becomes increasingly valuable when competitive research directions are sparse among many plausible alternatives. Project Page: this https URL
| Subjects: | Artificial Intelligence (cs.AI); Computational Engineering, Finance, and Science (cs.CE) |
| Cite as: | arXiv:2609.38445 [cs.AI] |
| (or arXiv:2609.38445v1 [cs.AI] for this version) | |
| https://doi.org/10.48550/arXiv.2609.38445 arXiv-issued DOI via DataCite (pending registration) |
Submission history
From: Hyeong Kyu Choi [view email]
[v1]
Tue, 29 Sep 2026 19:37:43 UTC (1,221 KB)
来源:HuggingFace Daily Papers(社区热门论文) · arxiv.org