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人类通过目标导向注意力的原型学习实现内部表征的泛化。

Human generalization of internal representations through prototype learning with goal-directed attention.

作者信息

Pettine Warren Woodrich, Raman Dhruva Venkita, Redish A David, Murray John D

机构信息

Department of Psychiatry, Yale School of Medicine, New Haven, CT, USA.

Department of Informatics, University of Sussex, Brighton, UK.

出版信息

Nat Hum Behav. 2023 Mar;7(3):442-463. doi: 10.1038/s41562-023-01543-7. Epub 2023 Mar 9.

Abstract

The world is overabundant with feature-rich information obscuring the latent causes of experience. How do people approximate the complexities of the external world with simplified internal representations that generalize to novel examples or situations? Theories suggest that internal representations could be determined by decision boundaries that discriminate between alternatives, or by distance measurements against prototypes and individual exemplars. Each provide advantages and drawbacks for generalization. We therefore developed theoretical models that leverage both discriminative and distance components to form internal representations via action-reward feedback. We then developed three latent-state learning tasks to test how humans use goal-oriented discrimination attention and prototypes/exemplar representations. The majority of participants attended to both goal-relevant discriminative features and the covariance of features within a prototype. A minority of participants relied only on the discriminative feature. Behaviour of all participants could be captured by parameterizing a model combining prototype representations with goal-oriented discriminative attention.

摘要

世界充斥着丰富的信息,这些信息掩盖了经验的潜在原因。人们如何用简化的内部表征来近似外部世界的复杂性,从而推广到新的例子或情况呢?理论表明,内部表征可以由区分不同选项的决策边界决定,或者由与原型和单个示例的距离测量决定。每种方法在推广方面都有优缺点。因此,我们开发了理论模型,通过行动-奖励反馈利用区分性和距离成分来形成内部表征。然后,我们开发了三个潜在状态学习任务,以测试人类如何使用目标导向的区分性注意力以及原型/示例表征。大多数参与者既关注与目标相关的区分性特征,也关注原型内特征的协方差。少数参与者仅依赖区分性特征。通过对一个结合了原型表征和目标导向区分性注意力的模型进行参数化,可以捕捉到所有参与者的行为。

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