Lessons learned in multilingual grounded language learning
September 20, 2018 ยท Declared Dead ยท ๐ Conference on Computational Natural Language Learning
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Authors
รkos Kรกdรกr, Desmond Elliott, Marc-Alexandre Cรดtรฉ, Grzegorz Chrupaลa, Afra Alishahi
arXiv ID
1809.07615
Category
cs.CL: Computation & Language
Citations
26
Venue
Conference on Computational Natural Language Learning
Last Checked
4 months ago
Abstract
Recent work has shown how to learn better visual-semantic embeddings by leveraging image descriptions in more than one language. Here, we investigate in detail which conditions affect the performance of this type of grounded language learning model. We show that multilingual training improves over bilingual training, and that low-resource languages benefit from training with higher-resource languages. We demonstrate that a multilingual model can be trained equally well on either translations or comparable sentence pairs, and that annotating the same set of images in multiple language enables further improvements via an additional caption-caption ranking objective.
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