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A learning model for essentialist concepts

机译:本质论概念的学习模型

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Many cognitive scientists take it for granted that concepts like CAT (mental terms that are expressed with single nouns) can be learned by observing a co-occurrence in superficial properties, such as having fur, being 4-legged, and tending to purr, and then building a complex category representation from representations for those superficial properties. A less popular account, known as Psychological Essentialism, claims that concepts like CAT pick out deep, hidden properties (essences) that are causal explanations for observable co-occurrences in superficial properties. The trouble is, Psychological Essentialism lacks an account of how such essentialist concepts could be learned, and often adopt the unpalatable conclusion that such concepts are innate. Developmental roboticists have recently started implementing systems that employ learned hidden/latent variables. The present paper spells out a learning theory for essentialist concepts, and presents two psychology experiments that help support the account over the associationist alternative.
机译:许多认知科学家都认为,可以通过观察表面特性的共同出现来学习诸如CAT(用单个名词表达的心理术语)之类的概念,例如毛发,四腿毛和趋于发出咕pur声,以及然后根据这些表面属性的表示来构建复杂的类别表示。一个不太流行的说法,称为“心理本质主义”,声称像CAT这样的概念会挑选出深层的,隐藏的属性(本质),这些属性是对表观属性中可观察到的共现的因果解释。问题在于,“心理本质主义”缺乏对如何学习这种本质主义概念的解释,并且常常采用令人讨厌的结论,即这些概念是与生俱来的。发展型机器人专家最近开始实施采用学习到的隐藏/潜在变量的系统。本文阐述了一种关于本质主义概念的学习理论,并提出了两个心理学实验,这些实验可以帮助我们对交往者的选择提供支持。

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