arXiv:2507.02760cs.AI2025-07被引 1

将专家知识转化为可执行协议,让大模型变专业助手

Knowledge Protocol Engineering: A New Paradigm for AI in Domain-Specific Knowledge Work

  • 把专家文档转为机器可执行的领域逻辑协议
  • 使通用大模型能完成复杂多步专业任务
  • 适合法律、生物信息等需要深度推理的领域

大语言模型能力拓展了与特定领域知识交互的新可能。然而,现有方法如检索增强生成(RAG)和通用代理型AI虽强大,却在需要深层程序化与方法论推理的任务中表现不佳。RAG仅提供事实上下文,无法传递逻辑框架;自主代理缺乏领域启发式时效率低且不可预测。为此,我们提出知识协议工程(KPE),一种新范式,旨在系统性地将人类专家知识(常以自然语言文档表达)转化为可执行的知识协议(KP)。KPE不再仅补充碎片化信息,而是赋予大模型领域内在逻辑、操作策略与方法原则。我们认为,良好的知识协议可使通用大模型具备专家能力,实现抽象问题分解与复杂多步任务执行。本文定义了KPE核心原则,区分其与相关概念,并展示其在法律、生物信息学等领域的应用潜力,主张其将成为未来人机协作的基础方法。

原文摘要 · Abstract (English)

The capabilities of Large Language Models (LLMs) have opened new frontiers for interacting with complex, domain-specific knowledge. However, prevailing methods like Retrieval-Augmented Generation (RAG) and general-purpose Agentic AI, while powerful, often struggle with tasks that demand deep, procedural, and methodological reasoning inherent to expert domains. RAG provides factual context but fails to convey logical frameworks; autonomous agents can be inefficient and unpredictable without domain-specific heuristics. To bridge this gap, we introduce Knowledge Protocol Engineering (KPE), a new paradigm focused on systematically translating human expert knowledge, often expressed in natural language documents, into a machine-executable Knowledge Protocol (KP). KPE shifts the focus from merely augmenting LLMs with fragmented information to endowing them with a domain's intrinsic logic, operational strategies, and methodological principles. We argue that a well-engineered Knowledge Protocol allows a generalist LLM to function as a specialist, capable of decomposing abstract queries and executing complex, multi-step tasks. This position paper defines the core principles of KPE, differentiates it from related concepts, and illustrates its potential applicability across diverse fields such as law and bioinformatics, positing it as a foundational methodology for the future of human-AI collaboration.

知识工程大模型应用领域推理

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