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语言错误研究:LLM的挑战与机遇
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本文探讨了语言错误作为研究语言认知架构的窗口,并分析了当前大型语言模型在解释、复制或纠正西班牙语母语者语言错误方面的局限性。通过跨学科研究,本文旨在理解LLM对语言错误的处理,并为NLP系统的发展提供认知信息。

arXiv:2511.01615v1 Announce Type: cross Abstract: Linguistic errors are not merely deviations from normative grammar; they offer a unique window into the cognitive architecture of language and expose the current limitations of artificial systems that seek to replicate them. This project proposes an interdisciplinary study of linguistic errors produced by native Spanish speakers, with the aim of analyzing how current large language models (LLM) interpret, reproduce, or correct them. The research integrates three core perspectives: theoretical linguistics, to classify and understand the nature of the errors; neurolinguistics, to contextualize them within real-time language processing in the brain; and natural language processing (NLP), to evaluate their interpretation against linguistic errors. A purpose-built corpus of authentic errors of native Spanish (+500) will serve as the foundation for empirical analysis. These errors will be tested against AI models such as GPT or Gemini to assess their interpretative accuracy and their ability to generalize patterns of human linguistic behavior. The project contributes not only to the understanding of Spanish as a native language but also to the development of NLP systems that are more cognitively informed and capable of engaging with the imperfect, variable, and often ambiguous nature of real human language.

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语言错误 大型语言模型 自然语言处理 认知架构 西班牙语
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