构建AI文化智能统一评估框架,实现跨文化能力系统化衡量
A Unified Framework to Quantify Cultural Intelligence of AI
- 基于测量理论构建多维度文化能力指标体系
- 提出可扩展的AI文化智能评估框架,支持规模化测评
- 适合研究跨文化AI、人机交互与伦理评估的学者使用
随着生成式AI在全球范围不断部署,评估其在不同文化情境下的适应能力已成为迫切需求。尽管近年来出现了诸多文化基准测试,但多数聚焦于文化特定方面,缺乏系统性。本文基于测量理论,提出一种将多维文化能力指标整合为统一文化智能评估的原理性框架。首先定义文化的核心范畴,再构建通用、系统且可扩展的AI文化智能评估体系。通过心理测量学中的效度理论,区分文化智能这一概念与其测量操作,将其视为涵盖多个领域的核心能力集合,并设计可靠测量指标。最后探讨数据采集、探测策略与评估指标的关键挑战与研究路径。
原文摘要 · Abstract (English)
As generative AI technologies are increasingly being launched across the globe, assessing their competence to operate in different cultural contexts is exigently becoming a priority. While recent years have seen numerous and much-needed efforts on cultural benchmarking, these efforts have largely focused on specific aspects of culture and evaluation. While these efforts contribute to our understanding of cultural competence, a unified and systematic evaluation approach is needed for us as a field to comprehensively assess diverse cultural dimensions at scale. Drawing on measurement theory, we present a principled framework to aggregate multifaceted indicators of cultural capabilities into a unified assessment of cultural intelligence. We start by developing a working definition of culture that includes identifying core domains of culture. We then introduce a broad-purpose, systematic, and extensible framework for assessing cultural intelligence of AI systems. Drawing on theoretical framing from psychometric measurement validity theory, we decouple the background concept (i.e., cultural intelligence) from its operationalization via measurement. We conceptualize cultural intelligence as a suite of core capabilities spanning diverse domains, which we then operationalize through a set of indicators designed for reliable measurement. Finally, we identify the considerations, challenges, and research pathways to meaningfully measure these indicators, specifically focusing on data collection, probing strategies, and evaluation metrics.
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