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VISA: An Ambiguous Subtitles Dataset for Visual Scene-aware Machine Translation

Proceedings of the Thirteenth International Conference on Language Resources and Evaluation (LREC 2022)

DOI:10.63317/37vw4b6vruh5

Abstract

Existing multimodal machine translation (MMT) datasets consist of images and video captions or general subtitles which rarely contain linguistic ambiguity, making visual information not so effective to generate appropriate translations. We introduce VISA, a new dataset that consists of 40k Japanese-English parallel sentence pairs and corresponding video clips with the following key features: (1) the parallel sentences are subtitles from movies and TV episodes; (2) the source subtitles are ambiguous, which means they have multiple possible translations with different meanings; (3) we divide the dataset into Polysemy and Omission according to the cause of ambiguity. We show that VISA is challenging for the latest MMT system, and we hope that the dataset can facilitate MMT research.

Details

Paper ID
lrec2022-main-725
Pages
pp. 6735-6743
BibKey
li-etal-2022-visa
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
79-10-95546-38-2
Conference
Thirteenth Language Resources and Evaluation Conference
Location
Marseille, France
Date
20 June 2022 25 June 2022

Authors

  • YL

    Yihang Li

  • SS

    Shuichiro Shimizu

  • WG

    Weiqi Gu

  • CC

    Chenhui Chu

  • SK

    Sadao Kurohashi

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