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¿Es un platano? Exploring the Application of a Physically Grounded Language Acquisition System to Spanish

Caroline Kery, Cynthia Matuszek, Francis Ferraro

Year
2019
Citations
2
Access
Open access

Abstract

In this paper we describe a multilingual grounded language learning system adapted from an English-only system. This system learns the meaning of words used in crowd-sourced descriptions by grounding them in the physical representations of the objects they are describing. Our work presents a framework to compare the performance of the system when applied to a new language and to identify modifications necessary to attain equal performance, with the goal of enhancing the ability of robots to learn language from a more diverse range of people. We then demonstrate this system with Spanish, through first analyzing the performance of translated Spanish, and then extending this analysis to a new corpus of crowd-sourced Spanish language data. We find that with small modifications, the system is able to learn color, object, and shape words with comparable performance between languages.

Keywords

Computer scienceMeaning (existential)Natural language processingObject (grammar)Artificial intelligenceLanguage understandingLanguage acquisitionLinguisticsPsychology

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