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Like a bilingual baby: The advantage of visually grounding a bilingual language model

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arxiv 2210.05487 v3 pith:QUIL5YIK submitted 2022-10-11 cs.CL

Like a bilingual baby: The advantage of visually grounding a bilingual language model

classification cs.CL
keywords languagegroundingmodelmodelsmultilingualadvantagebilingualfind
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Unlike most neural language models, humans learn language in a rich, multi-sensory and, often, multi-lingual environment. Current language models typically fail to fully capture the complexities of multilingual language use. We train an LSTM language model on images and captions in English and Spanish from MS-COCO-ES. We find that the visual grounding improves the model's understanding of semantic similarity both within and across languages and improves perplexity. However, we find no significant advantage of visual grounding for abstract words. Our results provide additional evidence of the advantages of visually grounded language models and point to the need for more naturalistic language data from multilingual speakers and multilingual datasets with perceptual grounding.

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