DaKultur: Evaluating the Cultural Awareness of Language Models for Danish with Native Speakers

April 03, 2025 ยท Declared Dead ยท ๐Ÿ› Proceedings of the 3rd Workshop on Cross-Cultural Considerations in NLP (C3NLP 2025)

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Authors Max Mรผller-Eberstein, Mike Zhang, Elisa Bassignana, Peter Brunsgaard Trolle, Rob van der Goot arXiv ID 2504.02403 Category cs.CL: Computation & Language Cross-listed cs.CY, cs.HC Citations 2 Venue Proceedings of the 3rd Workshop on Cross-Cultural Considerations in NLP (C3NLP 2025) Last Checked 5 months ago
Abstract
Large Language Models (LLMs) have seen widespread societal adoption. However, while they are able to interact with users in languages beyond English, they have been shown to lack cultural awareness, providing anglocentric or inappropriate responses for underrepresented language communities. To investigate this gap and disentangle linguistic versus cultural proficiency, we conduct the first cultural evaluation study for the mid-resource language of Danish, in which native speakers prompt different models to solve tasks requiring cultural awareness. Our analysis of the resulting 1,038 interactions from 63 demographically diverse participants highlights open challenges to cultural adaptation: Particularly, how currently employed automatically translated data are insufficient to train or measure cultural adaptation, and how training on native-speaker data can more than double response acceptance rates. We release our study data as DaKultur - the first native Danish cultural awareness dataset.
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