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Trained MT Metrics Learn to Cope with Machine-translated References

Vamvas, Jannis; Domhan, Tobias; Trenous, Sony; Sennrich, Rico; Hasler, Eva (2023). Trained MT Metrics Learn to Cope with Machine-translated References. In: Eighth Conference on Machine Translation, Singapore, 6 December 2023 - 7 December 2023. Association for Computational Linguistics, 983-995.

Abstract

Neural metrics trained on human evaluations of MT tend to correlate well with human judgments, but their behavior is not fully understood. In this paper, we perform a controlled experiment and compare a baseline metric that has not been trained on human evaluations (Prism) to a trained version of the same metric (Prism+FT). Surprisingly, we find that Prism+FT becomes more robust to machine-translated references, which are a notorious problem in MT evaluation. This suggests that the effects of metric training go beyond the intended effect of improving overall correlation with human judgments.

Additional indexing

Item Type:Conference or Workshop Item (Paper), not_refereed, original work
Communities & Collections:06 Faculty of Arts > Institute of Computational Linguistics
06 Faculty of Arts > Zurich Center for Linguistics
Dewey Decimal Classification:000 Computer science, knowledge & systems
410 Linguistics
Language:English
Event End Date:7 December 2023
Deposited On:13 Dec 2023 11:21
Last Modified:31 Mar 2024 03:36
Publisher:Association for Computational Linguistics
Series Name:Proceedings of Conference on Machine Translation
Number:8
OA Status:Hybrid
Free access at:Publisher DOI. An embargo period may apply.
Publisher DOI:https://doi.org/10.18653/v1/2023.wmt-1.95
Project Information:
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  • Content: Published Version
  • Language: English
  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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