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A Benchmark for Evaluating Machine Translation Metrics on Dialects without Standard Orthography

Aepli, Noëmi; Amrhein, Chantal; Schottmann, Florian; Sennrich, Rico (2023). A Benchmark for Evaluating Machine Translation Metrics on Dialects without Standard Orthography. In: Koehn, Philipp; Haddow, Barry; Kocmi, Tom; Monz, Christof. Proceedings of the Eighth Conference on Machine Translation. Singapore: Association for Computational Linguistics, 1045-1065.

Abstract

For sensible progress in natural language processing, it is important that we are aware of the limitations of the evaluation metrics we use. In this work, we evaluate how robust metrics are to non-standardized dialects, i.e. spelling differences in language varieties that do not have a standard orthography. To investigate this, we collect a dataset of human translations and human judgments for automatic machine translations from English to two Swiss German dialects. We further create a challenge set for dialect variation and benchmark existing metrics' performances. Our results show that existing metrics cannot reliably evaluate Swiss German text generation outputs, especially on segment level. We propose initial design adaptations that increase robustness in the face of non-standardized dialects, although there remains much room for further improvement. The dataset, code, and models are available here: https://github.com/textshuttle/dialect_eval

Additional indexing

Item Type:Book Section, not_refereed, original work
Communities & Collections:06 Faculty of Arts > Institute of Computational Linguistics
Dewey Decimal Classification:000 Computer science, knowledge & systems
410 Linguistics
Scopus Subject Areas:Social Sciences & Humanities > Language and Linguistics
Physical Sciences > Human-Computer Interaction
Physical Sciences > Software
Language:English
Date:December 2023
Deposited On:05 Mar 2024 14:15
Last Modified:29 Sep 2024 03:42
Publisher:Association for Computational Linguistics
ISBN:979-8-89176-041-7
OA Status:Hybrid
Publisher DOI:https://doi.org/10.18653/v1/2023.wmt-1.99
Project Information:
  • Funder: SNSF
  • Grant ID: 191934
  • Project Title: Sustainable Natural Language Processing for Low-Resource Language Variations
  • Funder: SNSF
  • Grant ID: 176727
  • Project Title: Multi-Task Learning with Multilingual Resources for Better Natural Language Understanding
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  • Content: Published Version
  • Language: English
  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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