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20242026
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cs.CL2026

Beyond Isolated Behaviors: Hierarchical User Modeling for LLM Personalization

Liang Wang, Xinyi Mou, Xiaoyou Liu +3

Large Language Models (LLMs) have demonstrated remarkable capabilities across diverse domains, yet personalizing their outputs to individual users remains an open challenge. Existi…

cs.CL2026

CURP: Codebook-based Continuous User Representation for Personalized Generation with LLMs

Liang Wang, Xinyi Mou, Xiaoyou Liu +2

User modeling characterizes individuals through their preferences and behavioral patterns to enable personalized simulation and generation with Large Language Models (LLMs) in cont…

cs.CL2026

HyLaT: Efficient Multi-Agent Communication via Hybrid Latent-Text Protocol

Xinyi Mou, Siyuan Wang, Zejun Li +2

Communication protocol design is a central challenge in large language model-based multi-agent systems. Existing single-channel approaches face an inherent communication trilemma:…

cs.CL2025

SocioVerse: A World Model for Social Simulation Powered by LLM Agents and A Pool of 10 Million Real-World Users

Xinnong Zhang, Jiayu Lin, Xinyi Mou +18

Social simulation is transforming traditional social science research by modeling human behavior through interactions between virtual individuals and their environments. With recen…

cs.CL2025

EcoLANG: Efficient and Effective Agent Communication Language Induction for Social Simulation

Xinyi Mou, Chen Qian, Wei Liu +2

Large language models (LLMs) have demonstrated an impressive ability to role-play humans and replicate complex social dynamics. While large-scale social simulations are gaining inc…

cs.CL2024

From Individual to Society: A Survey on Social Simulation Driven by Large Language Model-based Agents

Xinyi Mou, Xuanwen Ding, Qi He +8

Traditional sociological research often relies on human participation, which, though effective, is expensive, challenging to scale, and with ethical concerns. Recent advancements i…