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Zewei Sun

6 accepted papers

2023

Beyond Triplet: Leveraging the Most Data for Multimodal Machine Translation

ACL 2023findings

Multimodal machine translation (MMT) aims to improve translation quality by incorporating information from other modalities, such as vision. Previous MMT systems focus on better access and use of visual information and tend to validate their methods on image-related datasets. However, these studies…

2023

BigVideo: A Large-scale Video Subtitle Translation Dataset for Multimodal Machine Translation

ACL 2023findings

We present a large-scale video subtitle translation dataset, *BigVideo*, to facilitate the study of multi-modality machine translation. Compared with the widely used *How2* and *VaTeX* datasets, *BigVideo* is more than 10 times larger, consisting of 4.5 million sentence pairs and 9,981 hours of vide…

2023

Controlling Styles in Neural Machine Translation with Activation Prompt

ACL 2023findings

Controlling styles in neural machine translation (NMT) has attracted wide attention, as it is crucial for enhancing user experience. Earlier studies on this topic typically concentrate on regulating the level of formality and achieve some progress in this area. However, they still encounter two majo…

2022

Alleviating the Inequality of Attention Heads for Neural Machine Translation

COLING 2022main

Recent studies show that the attention heads in Transformer are not equal. We relate this phenomenon to the imbalance training of multi-head attention and the model dependence on specific heads. To tackle this problem, we propose a simple masking method: HeadMask, in two specific ways. Experiments s…

Cited by 8SourcePDFScholar
2022

Rethinking Document-level Neural Machine Translation

ACL 2022findings

This paper does not aim at introducing a novel model for document-level neural machine translation. Instead, we head back to the original Transformer model and hope to answer the following question: Is the capacity of current models strong enough for document-level translation? Interestingly, we obs…