cs.AI updates on arXiv.org 09月15日
XAgents:多智能体协作框架提升复杂任务处理能力
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本文提出了一种名为XAgents的多智能体协作框架,用于解决多智能体系统在处理复杂任务中的不确定性问题,并通过实验证明其在知识型和逻辑型问答任务中的优越性能。

arXiv:2509.10054v1 Announce Type: new Abstract: The rapid advancement of Large Language Models (LLMs) has significantly enhanced the capabilities of Multi-Agent Systems (MAS) in supporting humans with complex, real-world tasks. However, MAS still face challenges in effective task planning when handling highly complex tasks with uncertainty, often resulting in misleading or incorrect outputs that hinder task execution. To address this, we propose XAgents, a unified multi-agent cooperative framework built on a multipolar task processing graph and IF-THEN rules. XAgents uses the multipolar task processing graph to enable dynamic task planning and handle task uncertainty. During subtask processing, it integrates domain-specific IF-THEN rules to constrain agent behaviors, while global rules enhance inter-agent collaboration. We evaluate the performance of XAgents across three distinct datasets, demonstrating that it consistently surpasses state-of-the-art single-agent and multi-agent approaches in both knowledge-typed and logic-typed question-answering tasks. The codes for XAgents are available at: https://github.com/AGI-FHBC/XAgents.

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多智能体系统 复杂任务处理 XAgents框架 问答任务 人工智能
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