cs.AI updates on arXiv.org 10月07日
想象力与内部世界模型:人脑与AI的对比研究
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本文提出想象力有助于获取内部世界模型(IWM),并通过心理网络分析比较人脑与大型语言模型(LLM)的IWM。研究发现,人脑和LLM的IWM存在显著差异,为AI发展类似人类想象力提供新视角。

arXiv:2510.04391v1 Announce Type: new Abstract: What is the computational objective of imagination? While classical interpretations suggest imagination is useful for maximizing rewards, recent findings challenge this view. In this study, we propose that imagination serves to access an internal world model (IWM) and use psychological network analysis to explore IWMs in humans and large language models (LLMs). Specifically, we assessed imagination vividness ratings using two questionnaires and constructed imagination networks from these reports. Imagination networks from human groups showed correlations between different centrality measures, including expected influence, strength, and closeness. However, imagination networks from LLMs showed a lack of clustering and lower correlations between centrality measures under different prompts and conversational memory conditions. Together, these results indicate a lack of similarity between IWMs in human and LLM agents. Overall, our study offers a novel method for comparing internally-generated representations in humans and AI, providing insights for developing human-like imagination in artificial intelligence.

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想象力 内部世界模型 人脑 AI 心理网络分析
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