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Cross-lingual Visual Verb Sense Disambiguation

机译:跨语言视觉动词歧义消除

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摘要

Recent work has shown that visual context improves cross-lingual sense disambiguation for nouns. We extend this line of work to the more challenging task of cross-lingual verb sense disambiguation, introducing the Multi-Sense dataset of 9,504 images annotated with English. German, and Spanish verbs. Each image in MultiSense is annotated with an English verb and its translation in German or Spanish. We show that cross-lingual verb sense disambiguation models benefit from visual context, compared to unimodal baselines. We also show that the verb sense predicted by our best disambiguation model can improve the results of a text-only machine translation system when used for a multimodal translation task.
机译:最近的工作表明,视觉语境改善了名词的跨语言歧义消除。我们将这一工作范围扩展到跨语言动词义消歧的更具挑战性的任务,引入了用英语注释的9,504张图像的Multi-Sense数据集。德语和西班牙语动词。 MultiSense中的每个图像都用英语动词注释,并用德语或西班牙语翻译。我们显示,与单峰基线相比,跨语言动词义消歧模型受益于视觉上下文。我们还表明,当用于多模式翻译任务时,由最佳歧义模型预测的动词意义可以改善纯文本机器翻译系统的结果。

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