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一种用于经典条件反射中海马体功能的神经网络方法。

A neural network approach to hippocampal function in classical conditioning.

作者信息

Schmajuk N A, DiCarlo J J

机构信息

Department of Psychology, Northwestern University, Evanston, Illinois 60208.

出版信息

Behav Neurosci. 1991 Feb;105(1):82-110. doi: 10.1037//0735-7044.105.1.82.

Abstract

Hippocampal participation in classical conditioning in terms of Grossberg's (1975) attentional theory is described. According to the present rendition of this theory, pairing of a conditioned stimulus (CS) with an unconditioned stimulus (US) causes both an association of the sensory representation of the CS with the US (conditioned reinforcement learning) and an association of the sensory representation of the CS with the drive representation of the US (incentive motivation learning). Sensory representations compete among themselves for a limited-capacity short-term memory (STM) that is reflected in a long-term memory storage. The STM regulation hypothesis, which proposes that the hippocampus controls incentive motivation, self-excitation, and competition among sensory representations thereby regulating the contents of a limited capacity STM, is introduced. Under the STM regulation hypothesis, nodes and connections in Grossberg's neural network are mapped onto regional hippocampal-cerebellar circuits. The resulting neural model provides (a) a framework for understanding the dynamics of information processing and storage in the hippocampus and cerebellum during classical conditioning of the rabbit's nictitating membrane, (b) principles for understanding the effect of different hippocampal manipulations on classical conditioning, and (c) numerous novel and testable predictions.

摘要

本文描述了根据格罗斯伯格(1975年)的注意理论,海马体在经典条件反射中的参与情况。根据该理论的当前版本,条件刺激(CS)与非条件刺激(US)的配对会导致CS的感觉表征与US之间的关联(条件强化学习)以及CS的感觉表征与US的驱力表征之间的关联(激励动机学习)。感觉表征之间相互竞争有限容量的短期记忆(STM),这种竞争反映在长期记忆存储中。引入了STM调节假说,该假说认为海马体控制激励动机、自我兴奋以及感觉表征之间的竞争,从而调节有限容量STM的内容。在STM调节假说下,格罗斯伯格神经网络中的节点和连接被映射到海马体 - 小脑区域回路。由此产生的神经模型为理解兔子瞬膜经典条件反射过程中海马体和小脑中信息处理与存储的动态提供了一个框架,为理解不同海马体操作对经典条件反射的影响提供了原理,并产生了许多新颖且可测试的预测。

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