How Good is Zero-Shot MT Evaluation for Low Resource Indian Languages?
- Anushka Singh,
- Ananya Sai,
- Raj Dabre,
- ,
- Anoop Kunchukuttan,
- Mitesh M. Khapra
- Indian Institute of Technology Madras,
- Agency for Science, Technology and Research (A*Star)
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-reviewOpen access
Publication Information
Output type
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-reviewOriginal language
EnglishPages from-to (Number of pages)
Pages 640-649Publication milestones
- Published - 2024
Publication status
Published - 2024
Publisher
Association for Computational Linguistics, United StatesPublication IDs
- Scopus: 85203832534
Host publication title
Proceedings of the 62nd Annual Meeting of the Association for Computational Linguistics (Volume 2: Short Papers)Abstract
While machine translation evaluation has been studied primarily for high-resource languages, there has been a recent interest in evaluation for low-resource languages due to the increasing availability of data and models. In this paper, we focus on a zero-shot evaluation setting focusing on low-resource Indian languages, namely Assamese, Kannada, Maithili, and Punjabi. We collect sufficient Multi-Dimensional Quality Metrics (MQM) and Direct Assessment (DA) annotations to create test sets and meta-evaluate a plethora of automatic evaluation metrics. We observe that even for learned metrics, which are known to exhibit zero-shot performance, the Kendall Tau and Pearson correlations with human annotations are only as high as 0.32 and 0.45. Synthetic data approaches show mixed results and overall do not help close the gap by much for these languages. This indicates that there is still a long way to go for low-resource evaluation.
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Related Event
Title
Conference on Association for Computational Linguistics
Event type
ConferenceDegree of recognition
International eventDate
11/08/2024 - 16/08/2024Location
BangkokThailand
