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Interactions in the development of skilled word learning in neural networks and toddlers

机译:神经网络和幼儿中熟练的单词学习发展中的相互作用

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Development is about change over time. Computational models have provided insights into the developmental changes seen in different cognitive phenomena, including within the domain of word learning. The present paper uses a computational model in tandem with a behavioral study to make and test predictions about the interdependencies between the emergences of different word learning biases. The model is used to investigate how the shape bias influences novel noun generalization to other types of items, and to guide a behavioral study of this effect in children. The results provide a novel view of biased word learning over time, and suggest that emerging biases interact with each other and influence how networks and children attend to different kinds of information over time.
机译:发展是指随着时间的变化。计算模型提供了对不同认知现象(包括单词学习领域)中所见发展变化的见解。本文结合行为研究使用了一种计算模型,以对不同单词学习偏见的出现之间的相互依赖性进行预测。该模型用于调查形状偏向如何影响新名词泛化到其他类型的项目,并指导对这种效果的儿童进行行为研究。结果提供了随着时间的推移偏向词学习的新颖观点,并表明出现的偏见彼此相互作用,并随着时间的推移影响网络和儿童如何处理不同种类的信息。

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