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LLMs助力认知科学:机遇与挑战
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本文探讨了大型语言模型(LLMs)在认知科学中的应用,分析了其在跨学科联系、理论形式化、测量分类、模型泛化以及捕捉个体差异等方面的潜力与局限性。

arXiv:2511.00206v1 Announce Type: new Abstract: Cognitive science faces ongoing challenges in knowledge synthesis and conceptual clarity, in part due to its multifaceted and interdisciplinary nature. Recent advances in artificial intelligence, particularly the development of large language models (LLMs), offer tools that may help to address these issues. This review examines how LLMs can support areas where the field has historically struggled, including establishing cross-disciplinary connections, formalizing theories, developing clear measurement taxonomies, achieving generalizability through integrated modeling frameworks, and capturing contextual and individual variation. We outline the current capabilities and limitations of LLMs in these domains, including potential pitfalls. Taken together, we conclude that LLMs can serve as tools for a more integrative and cumulative cognitive science when used judiciously to complement, rather than replace, human expertise.

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认知科学 大型语言模型 LLMs 知识整合 模型泛化
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