arXiv:2512.20789eess.SYcs.AI2025-12被引 15

用自然语言让AI自动完成电网分析,省去专家手动操作。

X-GridAgent: An LLM-Powered Agentic AI System for Assisting Power Grid Analysis

  • 基于三层架构的智能体系统,可灵活应对未见过的电网任务。
  • 结合人类反馈优化提示,提升从结构化数据中检索信息的准确性。
  • 适合电力系统工程师和自动化研究者快速上手复杂分析。

电力系统运行日益复杂,亟需智能化、自动化的工具来保障电网管理的可靠与高效。传统分析工具依赖大量领域专业知识和人工操作,限制了其可及性和适应性。为此,本文提出 X-GridAgent——一个由大语言模型驱动的智能体AI系统,通过自然语言查询实现复杂电力系统分析的自动化。该系统采用包含规划、协调与执行三层的分层架构,整合领域专用工具与专业数据库,具备高度灵活性和可扩展性,支持未来新增工具、数据源或分析能力。为提升性能,引入两项新算法:(1) 基于人类反馈的LLM驱动提示优化;(2) 面向大规模结构化电网数据集的自适应混合检索增强生成(schema-adaptive hybrid RAG)。在多种用户查询与电网案例上的实验表明,X-GridAgent能有效实现可解释且严谨的电力系统分析。

原文摘要 · Abstract (English)

The growing complexity of power system operations has created an urgent need for intelligent, automated tools to support reliable and efficient grid management. Conventional analysis tools often require significant domain expertise and manual effort, which limits their accessibility and adaptability. To address these challenges, this paper presents X-GridAgent, a novel large language model (LLM)-powered agentic AI system designed to automate complex power system analysis through natural language queries. The system integrates domain-specific tools and specialized databases under a three-layer hierarchical architecture comprising planning, coordination, and action layers. This architecture offers high flexibility and adaptability to previously unseen tasks, while providing a modular and extensible framework that can be readily expanded to incorporate new tools, data sources, or analytical capabilities. To further enhance performance, we introduce two novel algorithms: (1) LLM-driven prompt refinement with human feedback, and (2) schema-adaptive hybrid retrieval-augmented generation (RAG) for accurate information retrieval from large-scale structured grid datasets. Experimental evaluations across a variety of user queries and power grid cases demonstrate the effectiveness and reliability of X-GridAgent in automating interpretable and rigorous power system analysis.

电网分析智能体系统大模型应用

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