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Training-Free Token-Level Steering for LLM Personalized Co-Writing

Authors

Do you know Wenhao Mao?You can claim authorship or link another user.Do you know Chengbin Hou?You can claim authorship or link another user.Do you know Weixiao Wang?You can claim authorship or link another user.Do you know Jialiang Zhu?You can claim authorship or link another user.Do you know Min Liu?You can claim authorship or link another user.Do you know Yibin Hao?You can claim authorship or link another user.Do you know Hairong Lv?You can claim authorship or link another user.

Abstract

While Large Language Models (LLMs) show great promise for personalization, they often lack specialized domain knowledge. Conventional solutions like fine-tuning struggle with high computational costs and rapid data updates, while Retrieval-Augmented Generation fails to provide fine-grained, token-level steering. Furthermore, chat-based interfaces remain dominant, whereas productive co-writing paradigms have not yet been well exploited beyond the coding domain. To this end, we introduce SteerWrite, a training-free framework designed for personalized co-writing. Our method effectively adapts the base model to specialized domains without gradient updates, with specific designs tailored to small datasets. Experiments demonstrate that SteerWrite achieves state-of-the-art performance across diverse datasets, metrics, and models, significantly reducing human editing effort.

Community

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