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EsBBQ and CaBBQ: The Spanish and Catalan Bias Benchmarks for Question Answering

Proceedings of the Fifteenth Language Resources and Evaluation Conference (LREC 2026)

DOI:10.63317/2u47873noowf

Abstract

Previous literature has largely shown that Large Language Models (LLMs) perpetuate social biases learnt from their pre-training data. Given the notable lack of resources for social bias evaluation in languages other than English, and for social contexts outside of the United States, this paper introduces the Spanish and the Catalan Bias Benchmarks for Question Answering (EsBBQ and CaBBQ). Based on the original BBQ, these two parallel datasets are designed to assess social bias across 10 categories using a multiple-choice QA setting, now adapted to the Spanish and Catalan languages and to the social context of Spain. We report evaluation results on different LLMs, factoring in model family, size and variant. Our results show that models tend to fail to choose the correct answer in ambiguous scenarios, and that high QA accuracy often correlates with greater reliance on social biases.

Details

Paper ID
lrec2026-main-309
Pages
pp. 3884-3907
BibKey
ruizfernndez-etal-2026-esbbq
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
978-2-493814-49-4
Conference
The Fifteenth Language Resources and Evaluation Conference (LREC 2026)
Location
Palma, Mallorca, Spain
Date
11 May 2026 16 May 2026

Authors

  • VR

    Valle Ruiz-Fernández

  • MM

    Mario Mina

  • JF

    Júlia Falcão

  • LR

    Luis Antonio Vasquez Reina

  • AS

    Anna Salles

  • AG

    Aitor Gonzalez-Agirre

  • OP

    Olatz Perez-de-Viñaspre

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