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DIALECTBENCH: A NLP Benchmark for Dialects, Varieties, and Closely-Related Languages (2403.11009v2)

Published 16 Mar 2024 in cs.CL and cs.AI

Abstract: Language technologies should be judged on their usefulness in real-world use cases. An often overlooked aspect in NLP research and evaluation is language variation in the form of non-standard dialects or language varieties (hereafter, varieties). Most NLP benchmarks are limited to standard language varieties. To fill this gap, we propose DIALECTBENCH, the first-ever large-scale benchmark for NLP on varieties, which aggregates an extensive set of task-varied variety datasets (10 text-level tasks covering 281 varieties). This allows for a comprehensive evaluation of NLP system performance on different language varieties. We provide substantial evidence of performance disparities between standard and non-standard language varieties, and we also identify language clusters with large performance divergence across tasks. We believe DIALECTBENCH provides a comprehensive view of the current state of NLP for language varieties and one step towards advancing it further. Code/data: https://github.com/ffaisal93/DialectBench

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Authors (7)
  1. Fahim Faisal (20 papers)
  2. Orevaoghene Ahia (23 papers)
  3. Aarohi Srivastava (5 papers)
  4. Kabir Ahuja (18 papers)
  5. David Chiang (59 papers)
  6. Yulia Tsvetkov (142 papers)
  7. Antonios Anastasopoulos (111 papers)
Citations (16)