Multilingual Bias Detection and Mitigation for Indian Languages
December 23, 2023 ยท Declared Dead ยท ๐ WILDRE
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Authors
Ankita Maity, Anubhav Sharma, Rudra Dhar, Tushar Abhishek, Manish Gupta, Vasudeva Varma
arXiv ID
2312.15181
Category
cs.CL: Computation & Language
Citations
3
Venue
WILDRE
Last Checked
5 months ago
Abstract
Lack of diverse perspectives causes neutrality bias in Wikipedia content leading to millions of worldwide readers getting exposed by potentially inaccurate information. Hence, neutrality bias detection and mitigation is a critical problem. Although previous studies have proposed effective solutions for English, no work exists for Indian languages. First, we contribute two large datasets, mWikiBias and mWNC, covering 8 languages, for the bias detection and mitigation tasks respectively. Next, we investigate the effectiveness of popular multilingual Transformer-based models for the two tasks by modeling detection as a binary classification problem and mitigation as a style transfer problem. We make the code and data publicly available.
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