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Learning to associate object categories and label categories: A self-organising model

In B. C. Love, K. McRae & V. M. Sloutsky (eds.), Proceedings of the 30th Annual Conference of the Cognitive Science Society. Cognitive Science Society. pp. 697--702 (2008)

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  1. Labels as Features (Not Names) for Infant Categorization: A Neurocomputational Approach.Valentina Gliozzi, Julien Mayor, Jon-Fan Hu & Kim Plunkett - 2009 - Cognitive Science 33 (4):709-738.
    A substantial body of experimental evidence has demonstrated that labels have an impact on infant categorization processes. Yet little is known regarding the nature of the mechanisms by which this effect is achieved. We distinguish between two competing accounts: supervised name‐based categorization and unsupervised feature‐based categorization. We describe a neurocomputational model of infant visual categorization, based on self‐organizing maps, that implements the unsupervised feature‐based approach. The model successfully reproduces experiments demonstrating the impact of labeling on infant visual categorization reported in (...)
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  • The impact of labels on visual categorisation: A neural network model.Valentina Gliozzi, Julien Mayor, Jon-Fan Hu & Kim Plunkett - 2008 - In B. C. Love, K. McRae & V. M. Sloutsky (eds.), Proceedings of the 30th Annual Conference of the Cognitive Science Society. Cognitive Science Society.
     
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