cs.AI updates on arXiv.org 10月14日 12:08
AI记忆与情感推理:个性化AI的挑战
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本文探讨了个性化AI系统中用户记忆对情感推理的影响,通过评估15个大型语言模型,发现不同用户背景下的情感解读存在系统性偏差,指出个性化AI可能无意中加剧社会不平等。

arXiv:2510.09905v1 Announce Type: new Abstract: When an AI assistant remembers that Sarah is a single mother working two jobs, does it interpret her stress differently than if she were a wealthy executive? As personalized AI systems increasingly incorporate long-term user memory, understanding how this memory shapes emotional reasoning is critical. We investigate how user memory affects emotional intelligence in large language models (LLMs) by evaluating 15 models on human validated emotional intelligence tests. We find that identical scenarios paired with different user profiles produce systematically divergent emotional interpretations. Across validated user independent emotional scenarios and diverse user profiles, systematic biases emerged in several high-performing LLMs where advantaged profiles received more accurate emotional interpretations. Moreover, LLMs demonstrate significant disparities across demographic factors in emotion understanding and supportive recommendations tasks, indicating that personalization mechanisms can embed social hierarchies into models emotional reasoning. These results highlight a key challenge for memory enhanced AI: systems designed for personalization may inadvertently reinforce social inequalities.

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AI记忆 情感推理 个性化AI 社会不平等 大型语言模型
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