cs.AI updates on arXiv.org 09月29日
LLM输出无意义性论证
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本文提出大型语言模型(LLMs)输出无意义性的简单论点,基于LLMs输出需要特定意图以及LLMs难以具备正确意图两个前提,并从语义外部主义和内部主义角度进行辩护。

arXiv:2509.22206v1 Announce Type: cross Abstract: In this paper, we offer a simple argument for the conclusion that the outputs of large language models (LLMs) are meaningless. Our argument is based on two key premises: (a) that certain kinds of intentions are needed in order for LLMs' outputs to have literal meanings, and (b) that LLMs cannot plausibly have the right kinds of intentions. We defend this argument from various types of responses, for example, the semantic externalist argument that deference can be assumed to take the place of intentions and the semantic internalist argument that meanings can be defined purely in terms of intrinsic relations between concepts, such as conceptual roles. We conclude the paper by discussing why, even if our argument is sound, the outputs of LLMs nevertheless seem meaningful and can be used to acquire true beliefs and even knowledge.

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大型语言模型 LLM输出 无意义性 意图 语义
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