AgentCF: Collaborative Learning with Autonomous Language Agents for Recommender Systems
Junjie Zhang, Yupeng Hou, Ruobing Xie, Wenqi Sun, Julian McAuley,, Wayne Xin Zhao, Leyu Lin, Ji-Rong Wen

TL;DR
AgentCF introduces autonomous language agents representing users and items to simulate interactions in recommender systems, enhancing behavior modeling and capturing complex user-item relations through collaborative learning.
Contribution
This paper presents a novel agent-based collaborative filtering framework that models both users and items as autonomous agents, enabling more realistic simulation of user behaviors.
Findings
Agents demonstrate personalized, diverse interaction behaviors.
The approach improves the realism of user behavior simulation.
Agents effectively capture complex user-item and peer relations.
Abstract
Recently, there has been an emergence of employing LLM-powered agents as believable human proxies, based on their remarkable decision-making capability. However, existing studies mainly focus on simulating human dialogue. Human non-verbal behaviors, such as item clicking in recommender systems, although implicitly exhibiting user preferences and could enhance the modeling of users, have not been deeply explored. The main reasons lie in the gap between language modeling and behavior modeling, as well as the incomprehension of LLMs about user-item relations. To address this issue, we propose AgentCF for simulating user-item interactions in recommender systems through agent-based collaborative filtering. We creatively consider not only users but also items as agents, and develop a collaborative learning approach that optimizes both kinds of agents together. Specifically, at each time…
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Taxonomy
TopicsTopic Modeling · Recommender Systems and Techniques · Speech and dialogue systems
MethodsFocus
