cs.AI updates on arXiv.org 09月29日
跨语言LLMs道德推理能力研究
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本文探讨了大型语言模型(LLMs)在跨文化和多语言环境中的道德推理能力,通过多语言评估揭示了LLMs在不同语言间的道德判断存在不一致性,并分析了其背后的原因,提出应开发更具文化意识的AI。

arXiv:2509.21443v1 Announce Type: cross Abstract: Large Language Models (LLMs) are increasingly deployed in multilingual and multicultural environments where moral reasoning is essential for generating ethically appropriate responses. Yet, the dominant pretraining of LLMs on English-language data raises critical concerns about their ability to generalize judgments across diverse linguistic and cultural contexts. In this work, we systematically investigate how language mediates moral decision-making in LLMs. We translate two established moral reasoning benchmarks into five culturally and typologically diverse languages, enabling multilingual zero-shot evaluation. Our analysis reveals significant inconsistencies in LLMs' moral judgments across languages, often reflecting cultural misalignment. Through a combination of carefully constructed research questions, we uncover the underlying drivers of these disparities, ranging from disagreements to reasoning strategies employed by LLMs. Finally, through a case study, we link the role of pretraining data in shaping an LLM's moral compass. Through this work, we distill our insights into a structured typology of moral reasoning errors that calls for more culturally-aware AI.

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大型语言模型 跨语言 道德推理 文化差异 AI伦理
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