cs.AI updates on arXiv.org 10月10日 12:20
AutoAgent:让非技术人员轻松构建LLM代理
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本文介绍了一种名为AutoAgent的框架,旨在让非技术人员通过自然语言创建和部署LLM代理,解决当前LLM框架技术门槛高的问题。AutoAgent具有四个核心组件,包括代理系统工具、LLM驱动的执行引擎、自我管理文件系统和自我玩耍代理定制模块,能高效地创建和修改工具、代理和工作流程,并在多代理任务中表现出色。

arXiv:2502.05957v3 Announce Type: replace Abstract: Large Language Model (LLM) Agents have demonstrated remarkable capabilities in task automation and intelligent decision-making, driving the widespread adoption of agent development frameworks such as LangChain and AutoGen. However, these frameworks predominantly serve developers with extensive technical expertise - a significant limitation considering that only 0.03 % of the global population possesses the necessary programming skills. This stark accessibility gap raises a fundamental question: Can we enable everyone, regardless of technical background, to build their own LLM agents using natural language alone? To address this challenge, we introduce AutoAgent-a Fully-Automated and highly Self-Developing framework that enables users to create and deploy LLM agents through Natural Language Alone. Operating as an autonomous Agent Operating System, AutoAgent comprises four key components: i) Agentic System Utilities, ii) LLM-powered Actionable Engine, iii) Self-Managing File System, and iv) Self-Play Agent Customization module. This lightweight yet powerful system enables efficient and dynamic creation and modification of tools, agents, and workflows without coding requirements or manual intervention. Beyond its code-free agent development capabilities, AutoAgent also serves as a versatile multi-agent system for General AI Assistants. Comprehensive evaluations on the GAIA benchmark demonstrate AutoAgent's effectiveness in generalist multi-agent tasks, surpassing existing state-of-the-art methods. Furthermore, AutoAgent's Retrieval-Augmented Generation (RAG)-related capabilities have shown consistently superior performance compared to many alternative LLM-based solutions.

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AutoAgent LLM代理 自然语言 非技术人员 多代理任务
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