Subjectivity in Stereotypes Against Migrants in Italian: An Experimental Annotation Procedure
- S.M. Lo,
- ,
- Alessandra Teresa Cignarella,
- Simona Frenda,
- Valerio Basile,
- Elisabetta Jezek
- University of Torino,
- Aequa-tech,
- University of Ghent,
- Heriot-Watt University,
- University of Turin,
- Universitá di Pavia
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-reviewOpen access
Publication Information
Output type
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-reviewOriginal language
EnglishPages from-to (Number of pages)
Pages 603-612 (10 pages)Publication milestones
- Published - 2025
Publication status
Published - 2025
Publisher
CEUR Workshop ProceedingsBook series
- Book series name: CEUR Workshop Proceedings
Volume: 4112
ISSN: 1613-0073
ISBN (Print)
979-12-243-0587-3Publication IDs
- ORCID: /0000-0001-9337-7250/work/220441816
- Scopus: 105034272737
Host publication title
Proceedings of the Eleventh Italian Conference on Computational Linguistics (CLiC-it 2025)Abstract
The presence of social stereotypes in NLP resources is an emerging topic that challenges traditionally used approaches for the creation of corpora and resources. An increasing number of scholars proposed strategies for considering annotators’ subjectivity in order to reduce such bias both in computational resources and in NLP models. In this paper, we present Open-Stereotype, an annotated corpus of Italian tweets and news headlines regarding immigration in Italy developed through an experimental procedure for the annotation of stereotypes aimed to investigate their different interpretation. The annotation is the result of a six-step process, where annotators identify text-spans expressing stereotypes, generate rationales about these spans and group them in a more comprehensive set of labels. Results show that humans exhibit high subjectivity in conceptualizing this phenomenon, and that the prior knowledge of an Italian LLM leads to more consistent classifications of specific labels that do not depend on annotators’ background.
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Funding Details
The work of A. T. Cignarella is supported by the European Union’s Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie Actions,
Grant Agreement No. 101146287.
FundersFunding numbers
-
101146287
Access to documents
Final published version
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Related Event
Title
11th Italian Conference on Computational Linguistics
Event type
ConferenceDegree of recognition
International eventDate
24/09/2025 - 26/09/2025Location
CagliariItaly
