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The Future is Agentic: Definitions, Perspectives, and Open Challenges of Multi-Agent Recommender Systems

Reza Yousefi Maragheh
Yashar Deldjoo
Main:1 Pages
7 Figures
3 Tables
Appendix:34 Pages
Abstract

Large language models (LLMs) are rapidly evolving from passive engines of text generation into agentic entities that can plan, remember, invoke external tools, and co-operate with one another. This perspective paper investigates how such LLM agents (and societies thereof) can transform the design space of recommender systems.

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