arXiv:2412.07978cs.AIquant-ph2024-12被引 27

用AI代理自动操控量子实验,实现无人值守的科学发现。

Agents for self-driving laboratories applied to quantum computing

  • 用大模型代理封装实验知识,构建可执行的自动化流程
  • 在量子处理器上自主运行数小时,成功制备纠缠态
  • 适合需要高效实验迭代的量子计算与自动化实验室

完全自动化的自驾车实验室有望通过减少重复性劳动,实现高通量、大规模的科学发现。然而,有效的自动化需要深度整合实验室知识,而这些知识通常是非结构化、多模态且难以融入现有AI系统。本文提出k-agents框架,支持实验人员组织实验室知识并用代理实现实验自动化。该框架利用基于大语言模型的代理来封装实验室知识,包括可用操作和结果分析方法。为实现实验自动化,我们引入执行代理,将多步骤实验流程分解为基于代理的状态机,与其他代理交互以执行每一步并分析结果。分析结果用于驱动状态转换,实现闭环反馈控制。为验证其能力,我们将该框架应用于超导量子处理器的校准与操作,代理自主规划并执行实验数小时,成功制备并表征了与人类科学家相当水平的纠缠量子态。基于知识的代理系统为管理实验室知识和加速科学发现开辟了新途径。

原文摘要 · Abstract (English)

Fully automated self-driving laboratories are promising to enable high-throughput and large-scale scientific discovery by reducing repetitive labour. However, effective automation requires deep integration of laboratory knowledge, which is often unstructured, multimodal, and difficult to incorporate into current AI systems. This paper introduces the k-agents framework, designed to support experimentalists in organizing laboratory knowledge and automating experiments with agents. Our framework employs large language model-based agents to encapsulate laboratory knowledge including available laboratory operations and methods for analyzing experiment results. To automate experiments, we introduce execution agents that break multi-step experimental procedures into agent-based state machines, interact with other agents to execute each step and analyze the experiment results. The analyzed results are then utilized to drive state transitions, enabling closed-loop feedback control. To demonstrate its capabilities, we applied the agents to calibrate and operate a superconducting quantum processor, where they autonomously planned and executed experiments for hours, successfully producing and characterizing entangled quantum states at the level achieved by human scientists. Our knowledge-based agent system opens up new possibilities for managing laboratory knowledge and accelerating scientific discovery.

自动化实验量子计算AI代理闭环控制

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