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Multimodal Quality Estimation for Machine Translation

2020-07-01ACL 2020Unverified0· sign in to hype

Shu Okabe, Fr{\'e}d{\'e}ric Blain, Lucia Specia

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Abstract

We propose approaches to Quality Estimation (QE) for Machine Translation that explore both text and visual modalities for Multimodal QE. We compare various multimodality integration and fusion strategies. For both sentence-level and document-level predictions, we show that state-of-the-art neural and feature-based QE frameworks obtain better results when using the additional modality.

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