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Emergence of Hierarchical Emotion Organization in Large Language Models
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本文分析大型语言模型(LLM)中情感状态的建模,发现其自然形成与人类心理模型相符的层级情感树,并揭示情感识别中的系统性偏差。

arXiv:2507.10599v1 Announce Type: cross Abstract: As large language models (LLMs) increasingly power conversational agents, understanding how they model users' emotional states is critical for ethical deployment. Inspired by emotion wheels -- a psychological framework that argues emotions organize hierarchically -- we analyze probabilistic dependencies between emotional states in model outputs. We find that LLMs naturally form hierarchical emotion trees that align with human psychological models, and larger models develop more complex hierarchies. We also uncover systematic biases in emotion recognition across socioeconomic personas, with compounding misclassifications for intersectional, underrepresented groups. Human studies reveal striking parallels, suggesting that LLMs internalize aspects of social perception. Beyond highlighting emergent emotional reasoning in LLMs, our results hint at the potential of using cognitively-grounded theories for developing better model evaluations.

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大型语言模型 情感建模 伦理部署
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