4.4 Article

Autoassociator networks: insights into infant cognition

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DEVELOPMENTAL SCIENCE
卷 7, 期 2, 页码 133-140

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WILEY
DOI: 10.1111/j.1467-7687.2004.00330.x

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This paper presents autoassociator neural networks. A first section reviews the architecture of these models, common learning rules, and presents sample simulations to illustrate their abilities. In a second section, the ability of these models to account for learning phenomena such as habituation is reviewed The contribution of these networks to discussions about infant cognition is highlighted A new, modular approach is presented in a third section. In the discussion, a role for these learning models in a broader developmental framework is proposed.

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