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A Survey of Race, Racism, and Anti-Racism in NLP

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arxiv 2106.11410 v2 pith:UMMP6GCJ submitted 2021-06-21 cs.CL

classification cs.CL
keywords raceworkresearchconsidereddevelopmentliteratureracialracism
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Despite inextricable ties between race and language, little work has considered race in NLP research and development. In this work, we survey 79 papers from the ACL anthology that mention race. These papers reveal various types of race-related bias in all stages of NLP model development, highlighting the need for proactive consideration of how NLP systems can uphold racial hierarchies. However, persistent gaps in research on race and NLP remain: race has been siloed as a niche topic and remains ignored in many NLP tasks; most work operationalizes race as a fixed single-dimensional variable with a ground-truth label, which risks reinforcing differences produced by historical racism; and the voices of historically marginalized people are nearly absent in NLP literature. By identifying where and how NLP literature has and has not considered race, especially in comparison to related fields, our work calls for inclusion and racial justice in NLP research practices.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Exploring Culturally Informed AI Assistants: A Comparative Study of ChatBlackGPT and ChatGPT

    cs.HC 2025-04 conditional novelty 5.0 of 10

    In a preliminary comparison, ChatBlackGPT provided more culturally specific resources and historical context than ChatGPT for Black travel inquiries, suggesting culturally tailored assistants add value.

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