Literature DB >> 19389131

Using speakers' referential intentions to model early cross-situational word learning.

Michael C Frank1, Noah D Goodman, Joshua B Tenenbaum.   

Abstract

Word learning is a "chicken and egg" problem. If a child could understand speakers' utterances, it would be easy to learn the meanings of individual words, and once a child knows what many words mean, it is easy to infer speakers' intended meanings. To the beginning learner, however, both individual word meanings and speakers' intentions are unknown. We describe a computational model of word learning that solves these two inference problems in parallel, rather than relying exclusively on either the inferred meanings of utterances or cross-situational word-meaning associations. We tested our model using annotated corpus data and found that it inferred pairings between words and object concepts with higher precision than comparison models. Moreover, as the result of making probabilistic inferences about speakers' intentions, our model explains a variety of behavioral phenomena described in the word-learning literature. These phenomena include mutual exclusivity, one-trial learning, cross-situational learning, the role of words in object individuation, and the use of inferred intentions to disambiguate reference.

Entities:  

Mesh:

Year:  2009        PMID: 19389131     DOI: 10.1111/j.1467-9280.2009.02335.x

Source DB:  PubMed          Journal:  Psychol Sci        ISSN: 0956-7976


  53 in total

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Review 6.  The unrealized promise of infant statistical word-referent learning.

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8.  Pigeons acquire multiple categories in parallel via associative learning: a parallel to human word learning?

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9.  Bayesian learning and the psychology of rule induction.

Authors:  Ansgar D Endress
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10.  Beyond naïve cue combination: salience and social cues in early word learning.

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Journal:  Dev Sci       Date:  2015-11-17
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