cs.AI updates on arXiv.org 09月15日
SLMs在推理任务中运用形式方法的研究
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本文探讨了将形式方法融入小型语言模型(SLMs)在推理任务中的影响,旨在通过SLMs辅助本体构建,并通过实验验证不同语法对SLMs推理性能的影响,以优化SLMs在本体工程中的应用。

arXiv:2509.10249v1 Announce Type: new Abstract: Recent advances in Language Models (LMs) have failed to mask their shortcomings particularly in the domain of reasoning. This limitation impacts several tasks, most notably those involving ontology engineering. As part of a PhD research, we investigate the consequences of incorporating formal methods on the performance of Small Language Models (SLMs) on reasoning tasks. Specifically, we aim to orient our work toward using SLMs to bootstrap ontology construction and set up a series of preliminary experiments to determine the impact of expressing logical problems with different grammars on the performance of SLMs on a predefined reasoning task. Our findings show that it is possible to substitute Natural Language (NL) with a more compact logical language while maintaining a strong performance on reasoning tasks and hope to use these results to further refine the role of SLMs in ontology engineering.

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形式方法 小型语言模型 推理任务 本体构建 语法
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