cs.AI updates on arXiv.org 07月15日 12:24
ALIGN: Prompt-based Attribute Alignment for Reliable, Responsible, and Personalized LLM-based Decision-Making
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本文介绍了ALIGN系统,一种基于LLM的决策个性化与对齐方法,通过提示式对齐实现LLM决策者的动态个性化,具有鲁棒配置管理、结构化输出与推理、可替换LLM后端等特点,并通过用户界面实现LLMs的定性与定量比较。

arXiv:2507.09037v1 Announce Type: cross Abstract: Large language models (LLMs) are increasingly being used as decision aids. However, users have diverse values and preferences that can affect their decision-making, which requires novel methods for LLM alignment and personalization. Existing LLM comparison tools largely focus on benchmarking tasks, such as knowledge-based question answering. In contrast, our proposed ALIGN system focuses on dynamic personalization of LLM-based decision-makers through prompt-based alignment to a set of fine-grained attributes. Key features of our system include robust configuration management, structured output generation with reasoning, and several algorithm implementations with swappable LLM backbones, enabling different types of analyses. Our user interface enables a qualitative, side-by-side comparison of LLMs and their alignment to various attributes, with a modular backend for easy algorithm integration. Additionally, we perform a quantitative analysis comparing alignment approaches in two different domains: demographic alignment for public opinion surveys and value alignment for medical triage decision-making. The entire ALIGN framework is open source and will enable new research on reliable, responsible, and personalized LLM-based decision-makers.

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LLM 决策对齐 个性化 ALIGN系统
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