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MAS4POI: a Multi-Agents Collaboration System for Next POI Recommendation

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arxiv 2409.13700 v1 pith:NM7QTNLL submitted 2024-09-05 cs.IR cs.AIcs.SI

classification cs.IRcs.AIcs.SI
keywords mas4poinextrecommendationsystemdistinctllmsmulti-agentreal-world
verification ladder T0 review T1 audit T2 compute T3 formal
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LLM-based Multi-Agent Systems have potential benefits of complex decision-making tasks management across various domains but their applications in the next Point-of-Interest (POI) recommendation remain underexplored. This paper proposes a novel MAS4POI system designed to enhance next POI recommendations through multi-agent interactions. MAS4POI supports Large Language Models (LLMs) specializing in distinct agents such as DataAgent, Manager, Analyst, and Navigator with each contributes to a collaborative process of generating the next POI recommendations.The system is examined by integrating six distinct LLMs and evaluated by two real-world datasets for recommendation accuracy improvement in real-world scenarios. Our code is available at https://github.com/yuqian2003/MAS4POI.

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Cited by 1 Pith paper

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    In agent-based collaborative filtering, attack spread and privacy leakage grow with interaction connectivity, but the effect is asymmetric between user and item agents and differs between early and steady-state phases.

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