AI聊天助益美国人跨文化共情,却对拉美群体无效
AI as a deliberative partner fosters intercultural empathy for Americans but fails for Latin American participants
- 用跨文化对话模式激发美国人情感共鸣,提升共情力
- 拉美参与者认为AI回应缺乏文化真实性,共情未提升
- 系统性偏差暴露现有提示工程无法解决深层文化失衡
尽管AI聊天机器人在公共讨论中日益普及,但其促进跨文化共情的实证研究仍有限。通过随机实验,我们评估了三种AI协商方式——跨文化协商(呈现他文化视角)、本文化协商(代表参与者自身文化)和非协商对照组——对美国与拉丁美洲参与者跨文化共情的影响。跨文化协商通过积极情感参与提升了美国参与者的共情水平,但对拉丁美洲参与者无显著效果,他们虽被明确要求呈现自身文化视角,仍感知到AI回应缺乏文化真实性。对用户主动反馈的分析显示,即使经过精细提示工程,AI在拉丁美洲语境中的表征仍存在系统性缺失。这表明当前的AI文化对齐策略——包括语言适配和显式文化提示——无法完全弥合深层的文化表征不对称。本研究推动了协商理论与AI对齐研究的发展,揭示同一AI系统可同时促进一个文化群体的理解而对另一群体失效,为设计更公平的跨文化民主对话AI系统提供了关键启示。
原文摘要 · Abstract (English)
Despite increasing AI chatbot deployment in public discourse, empirical evidence on their capacity to foster intercultural empathy remains limited. Through a randomized experiment, we assessed how different AI deliberation approaches--cross-cultural deliberation (presenting other-culture perspectives), own-culture deliberation (representing participants' own culture), and non-deliberative control--affect intercultural empathy across American and Latin American participants. Cross-cultural deliberation increased intercultural empathy among American participants through positive emotional engagement, but produced no such effects for Latin American participants, who perceived AI responses as culturally inauthentic despite explicit prompting to represent their cultural perspectives. Our analysis of participant-driven feedback, where users directly flagged and explained culturally inappropriate AI responses, revealed systematic gaps in AI's representation of Latin American contexts that persist despite sophisticated prompt engineering. These findings demonstrate that current approaches to AI cultural alignment--including linguistic adaptation and explicit cultural prompting--cannot fully address deeper representational asymmetries in AI systems. Our work advances both deliberation theory and AI alignment research by revealing how the same AI system can simultaneously promote intercultural understanding for one cultural group while failing for another, with critical implications for designing equitable AI systems for cross-cultural democratic discourse.
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