cs.AI updates on arXiv.org 10月06日
自主管理智能体:复杂多代理工作流协同研究
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本文提出自主管理智能体概念,旨在解决复杂多代理工作流协同问题。通过将工作流管理形式化为部分可观测随机博弈,识别出四个基础挑战,并发布MA-Gym框架以促进研究。

arXiv:2510.02557v1 Announce Type: new Abstract: While agentic AI has advanced in automating individual tasks, managing complex multi-agent workflows remains a challenging problem. This paper presents a research vision for autonomous agentic systems that orchestrate collaboration within dynamic human-AI teams. We propose the Autonomous Manager Agent as a core challenge: an agent that decomposes complex goals into task graphs, allocates tasks to human and AI workers, monitors progress, adapts to changing conditions, and maintains transparent stakeholder communication. We formalize workflow management as a Partially Observable Stochastic Game and identify four foundational challenges: (1) compositional reasoning for hierarchical decomposition, (2) multi-objective optimization under shifting preferences, (3) coordination and planning in ad hoc teams, and (4) governance and compliance by design. To advance this agenda, we release MA-Gym, an open-source simulation and evaluation framework for multi-agent workflow orchestration. Evaluating GPT-5-based Manager Agents across 20 workflows, we find they struggle to jointly optimize for goal completion, constraint adherence, and workflow runtime - underscoring workflow management as a difficult open problem. We conclude with organizational and ethical implications of autonomous management systems.

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自主管理智能体 多代理工作流 工作流管理 MA-Gym框架 复杂系统协同
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