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AI政策设计:基于政策图的解决方案
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本文提出基于物理地图制作实践的AI政策设计方法,通过政策图和交互式工具Policy Projector,帮助AI从业者设计LLM政策,有效管理模型行为。

AI policy sets boundaries on acceptable behavior for AI models, but this is challenging in the context of large language models (LLMs): how do you ensure coverage over a vast behavior space? We introduce policy maps, an approach to AI policy design inspired by the practice of physical mapmaking. Instead of aiming for full coverage, policy maps aid effective navigation through intentional design choices about which aspects to capture and which to abstract away. With Policy Projector, an interactive tool for designing LLM policy maps, an AI practitioner can survey the landscape of model input-output pairs, define custom regions (e.g., “violence”), and navigate these regions with if-then policy rules that can act on LLM outputs (e.g., if output contains “violence” and “graphic details,” then rewrite without “graphic details”). Policy Projector supports interactive policy authoring using LLM classification and steering and a map visualization reflecting the AI practitioner’s work. In an evaluation with 12 AI safety experts, our system helps policy designers craft policies around problematic model behaviors such as incorrect gender assumptions and handling of immediate physical safety threats.

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相关标签

AI政策 LLM 政策图 交互式工具 AI安全
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