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Position: Towards a Responsible LLM-empowered Multi-Agent Systems

2025-02-03 · Jinwei Hu, Yi Dong, Shuang Ao, Zhuoyun Li, Boxuan Wang, Lokesh Singh, Guangliang Cheng, Sarvapali D. Ramchurn, Xiaowei Huang

The rise of Agent AI and Large Language Model-powered Multi-Agent Systems (LLM-MAS) has underscored the need for responsible and dependable system operation. Tools like LangChain and Retrieval-Augmented Generation have expanded LLM capabilities, enabling deeper integration into MAS through enhanced knowledge retrieval and reasoning. However, these advancements introduce critical challenges: LLM agents exhibit inherent unpredictability, and uncertainties in their outputs can compound across interactions, threatening system stability. To address these risks, a human-centered design approach with active dynamic moderation is essential. Such an approach enhances traditional passive oversight by facilitating coherent inter-agent communication and effective system governance, allowing MAS to achieve desired outcomes more efficiently.

📄 PDF Abstract BibTeX arXiv:2502.01714

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Language ModelingLanguage ModellingLarge Language ModelPositionRetrievalRetrieval-augmented Generation

Methods 이 논문이 사용한 방법론

MAS This optimizer mix ADAM and SGD creating the MAS optimizer.

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