cs.AI updates on arXiv.org 09月23日
LifeAlign:终身对齐框架助力LLMs持续适应
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本文介绍了一种名为LifeAlign的新框架,旨在解决大型语言模型在适应新任务或领域时的知识遗忘问题,通过聚焦偏好优化策略和短长期记忆巩固机制,实现LLMs在不同任务中持续保持人类偏好对齐。

arXiv:2509.17183v1 Announce Type: cross Abstract: Alignment plays a crucial role in Large Language Models (LLMs) in aligning with human preferences on a specific task/domain. Traditional alignment methods suffer from catastrophic forgetting, where models lose previously acquired knowledge when adapting to new preferences or domains. We introduce LifeAlign, a novel framework for lifelong alignment that enables LLMs to maintain consistent human preference alignment across sequential learning tasks without forgetting previously learned knowledge. Our approach consists of two key innovations. First, we propose a focalized preference optimization strategy that aligns LLMs with new preferences while preventing the erosion of knowledge acquired from previous tasks. Second, we develop a short-to-long memory consolidation mechanism that merges denoised short-term preference representations into stable long-term memory using intrinsic dimensionality reduction, enabling efficient storage and retrieval of alignment patterns across diverse domains. We evaluate LifeAlign across multiple sequential alignment tasks spanning different domains and preference types. Experimental results demonstrate that our method achieves superior performance in maintaining both preference alignment quality and knowledge retention compared to existing lifelong learning approaches. The codes and datasets will be released on GitHub.

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LLMs 终身对齐 知识遗忘 偏好优化
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