人工智能体协议综述
A Survey of AI Agent Protocols

原始链接: https://arxiv.org/abs/2504.16736

杨颖宣等人在论文中对AI智能体协议进行了综述,指出缺乏标准化的通信方法阻碍了大型语言模型(LLM)智能体的有效部署和协作,这种缺乏标准化限制了智能体处理复杂任务的能力。作者对现有协议进行了全面的分析,将其分类为两种维度:面向上下文与面向智能体间交互,以及通用型与特定领域型。论文还进行了比较性能分析,评估了安全性、可扩展性和延迟。该综述探讨了未来的研究方向,强调下一代协议需要适应性、隐私保护、基于群体的交互、分层架构和群体智能基础设施。这项工作旨在为设计和集成智能体通信基础设施的研究人员和工程师提供实践参考。更新版本(v2)文件大小更大(1034 KB),暗示自初始提交版本(v1,749 KB)以来增加了内容。

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原文

View a PDF of the paper titled A Survey of AI Agent Protocols, by Yingxuan Yang and 13 other authors

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Abstract:The rapid development of large language models (LLMs) has led to the widespread deployment of LLM agents across diverse industries, including customer service, content generation, data analysis, and even healthcare. However, as more LLM agents are deployed, a major issue has emerged: there is no standard way for these agents to communicate with external tools or data sources. This lack of standardized protocols makes it difficult for agents to work together or scale effectively, and it limits their ability to tackle complex, real-world tasks. A unified communication protocol for LLM agents could change this. It would allow agents and tools to interact more smoothly, encourage collaboration, and triggering the formation of collective intelligence. In this paper, we provide the first comprehensive analysis of existing agent protocols, proposing a systematic two-dimensional classification that differentiates context-oriented versus inter-agent protocols and general-purpose versus domain-specific protocols. Additionally, we conduct a comparative performance analysis of these protocols across key dimensions such as security, scalability, and latency. Finally, we explore the future landscape of agent protocols by identifying critical research directions and characteristics necessary for next-generation protocols. These characteristics include adaptability, privacy preservation, and group-based interaction, as well as trends toward layered architectures and collective intelligence infrastructures. We expect this work to serve as a practical reference for both researchers and engineers seeking to design, evaluate, or integrate robust communication infrastructures for intelligent agents.
From: Yingxuan Yang [view email]
[v1] Wed, 23 Apr 2025 14:07:26 UTC (749 KB)
[v2] Sat, 26 Apr 2025 15:16:11 UTC (1,034 KB)
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