arXiv:2510.23045cs.AI2025-10综述被引 9

梳理AI科学家全流程框架,揭示从实验到论文的自动化演进路径

A Survey of AI Scientists

  • 构建六阶段统一框架:文献综述到论文生成
  • 划分2022-2023、2024、2025三阶段发展脉络
  • 适合关注自主科研系统与人机协同的研究者

人工智能正从计算工具转向自主生成科学知识的主体,形成'AI科学家'新范式。该范式模拟从假说提出到成果发表的完整科研流程,有望彻底改变发现速度与规模。然而系统快速涌现导致研究碎片化,缺乏方法论共识。本文提出一个统一的六阶段方法框架,将端到端科研过程分解为:文献综述、创意生成、实验准备、实验执行、科学写作与论文生成。通过此视角,系统梳理领域演进:早期基础模块(2022–2023)、集成闭环系统(2024)及当前规模化、影响力与人机协作前沿(2025至今)。通过整合这些进展,本文不仅厘清了自主科学现状,还提出克服鲁棒性与治理挑战的关键路线图,引导下一代系统成为可信赖且不可或缺的人类科研伙伴。

原文摘要 · Abstract (English)

Artificial intelligence is undergoing a profound transition from a computational instrument to an autonomous originator of scientific knowledge. This emerging paradigm, the AI scientist, is architected to emulate the complete scientific workflow-from initial hypothesis generation to the final synthesis of publishable findings-thereby promising to fundamentally reshape the pace and scale of discovery. However, the rapid and unstructured proliferation of these systems has created a fragmented research landscape, obscuring overarching methodological principles and developmental trends. This survey provides a systematic and comprehensive synthesis of this domain by introducing a unified, six-stage methodological framework that deconstructs the end-to-end scientific process into: Literature Review, Idea Generation, Experimental Preparation, Experimental Execution, Scientific Writing, and Paper Generation. Through this analytical lens, we chart the field's evolution from early Foundational Modules (2022-2023) to integrated Closed-Loop Systems (2024), and finally to the current frontier of Scalability, Impact, and Human-AI Collaboration (2025-present). By rigorously synthesizing these developments, this survey not only clarifies the current state of autonomous science but also provides a critical roadmap for overcoming remaining challenges in robustness and governance, ultimately guiding the next generation of systems toward becoming trustworthy and indispensable partners in human scientific inquiry.

AI科学家自主科研人机协作

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