Grounded Word Sense Translation

Chiraag Lala, P. Madhyastha, Lucia Specia
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引用次数: 2

Abstract

Recent work on visually grounded language learning has focused on broader applications of grounded representations, such as visual question answering and multimodal machine translation. In this paper we consider grounded word sense translation, i.e. the task of correctly translating an ambiguous source word given the corresponding textual and visual context. Our main objective is to investigate the extent to which images help improve word-level (lexical) translation quality. We do so by first studying the dataset for this task to understand the scope and challenges of the task. We then explore different data settings, image features, and ways of grounding to investigate the gain from using images in each of the combinations. We find that grounding on the image is specially beneficial in weaker unidirectional recurrent translation models. We observe that adding structured image information leads to stronger gains in lexical translation accuracy.
基础词义翻译
最近关于基于视觉的语言学习的研究主要集中在基于表象的更广泛应用上,如视觉问答和多模态机器翻译。在本文中,我们考虑了基础词义翻译,即在给定的文本和视觉语境下正确翻译歧义源词的任务。我们的主要目的是研究图像在多大程度上有助于提高词级(词汇)翻译质量。为此,我们首先研究此任务的数据集,以了解任务的范围和挑战。然后,我们探索不同的数据设置、图像特征和接地方式,以调查在每种组合中使用图像的增益。我们发现基于图像的方法在较弱的单向循环翻译模型中特别有用。我们观察到,添加结构化图像信息可以提高词汇翻译的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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