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Do Language Models Know Their Slang? Queer Slang Understanding in User-Generated Content

Arianna Denitto, Beatrice Savoldi

Abstract

Despite its cultural relevance and diffusion, queer slang remains underrepresented in Natural Language Processing research. Towards addressing this gap, we introduce Slang-Q, a manually curated dataset of naturally user-generated English sentences paired with queer slang terms and reference definitions, built upon a newly constructed taxonomy of 118 queer terms. We use this resource to conduct a first exploratory evaluation of language models on their ability to understand and define queer slang under varying prompting conditions. Slang-Q is intended as a basis for studying how current models handle sensitive, community-specific language and whether they can provide accurate and reliable information about such forms of identity and linguistic expression.

Research area

ai biasevaluationmodel evaluations
Published
5 Aug 2026
Source
arxiv
Org
University of Torino
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