Personality Vector: Modulating Personality of Large Language Models by Model Merging

Seungjong Sun, Seo Yeon Baek, Jang Hyun Kim


Abstract
Driven by the demand for personalized AI systems, there is growing interest in aligning the behavior of large language models (LLMs) with human traits such as personality. Previous attempts to induce personality in LLMs have shown promising results, but they struggle to capture the continuous and multidimensional nature of human traits. In this work, we propose a novel method for personality modulation in LLMs via model merging. Specifically, we construct personality vectors by subtracting the weights of a pre-trained model from those of the fine-tuned model on a given personality trait. By merging personality vectors, we enable LLMs to exhibit desired personality traits without additional training. Extensive experiments show that personality vectors enable continuous control over trait intensity and support the composition of multiple traits. Furthermore, personality vectors transfer across diverse downstream models, suggesting that they encode generalizable representations of personality.
Anthology ID:
2025.emnlp-main.1253
Volume:
Proceedings of the 2025 Conference on Empirical Methods in Natural Language Processing
Month:
November
Year:
2025
Address:
Suzhou, China
Editors:
Christos Christodoulopoulos, Tanmoy Chakraborty, Carolyn Rose, Violet Peng
Venue:
EMNLP
SIG:
Publisher:
Association for Computational Linguistics
Note:
Pages:
24667–24688
Language:
URL:
https://preview.aclanthology.org/ingest-emnlp/2025.emnlp-main.1253/
DOI:
Bibkey:
Cite (ACL):
Seungjong Sun, Seo Yeon Baek, and Jang Hyun Kim. 2025. Personality Vector: Modulating Personality of Large Language Models by Model Merging. In Proceedings of the 2025 Conference on Empirical Methods in Natural Language Processing, pages 24667–24688, Suzhou, China. Association for Computational Linguistics.
Cite (Informal):
Personality Vector: Modulating Personality of Large Language Models by Model Merging (Sun et al., EMNLP 2025)
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