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集合转换任务中认知灵活性背后的神经元动力学。

The neuronal dynamics underlying cognitive flexibility in set shifting tasks.

作者信息

Stemme Anja, Deco Gustavo, Busch Astrid

机构信息

Department Psychologie, LMU Munich, Leopoldstr. 13, D-80802, Munich, Germany.

出版信息

J Comput Neurosci. 2007 Dec;23(3):313-31. doi: 10.1007/s10827-007-0034-x. Epub 2007 May 18.

Abstract

The ability to switch attention from one aspect of an object to another or in other words to switch the "attentional set" as investigated in tasks like the "Wisconsin Card Sorting Test" is commonly referred to as cognitive flexibility. In this work we present a biophysically detailed neurodynamical model which illustrates the neuronal base of the processes related to this cognitive flexibility. For this purpose we conducted behavioral experiments which allow the combined evaluation of different aspects of set shifting tasks: uninstructed set shifts as investigated in Wisconsin-like tasks, effects of stimulus congruency as investigated in Stroop-like tasks and the contribution of working memory as investigated in "Delayed-Match-to-Sample" tasks. The work describes how general experimental findings are usable to design the architecture of a biophysical detailed though minimalistic model with a high orientation on neurobiological findings and how, in turn, the simulations support experimental investigations. The resulting model is able to account for experimental and individual response times and error rates and enables the switch of attention as a system inherent model feature: The switching process suggested by the model is based on the memorization of the visual stimuli and does not require any synaptic learning. The operation of the model thus demonstrates with at least a high probability the neuronal dynamics underlying a key component of human behavior: the ability to adapt behavior according to context requirements--cognitive flexibility.

摘要

将注意力从物体的一个方面转移到另一个方面的能力,或者换句话说,在诸如“威斯康星卡片分类测试”等任务中所研究的切换“注意力集”的能力,通常被称为认知灵活性。在这项工作中,我们提出了一个具有生物物理细节的神经动力学模型,该模型阐述了与这种认知灵活性相关过程的神经元基础。为此,我们进行了行为实验,这些实验允许对集转移任务的不同方面进行综合评估:如在类似威斯康星任务中所研究的无指导集转移、如在类似斯特鲁普任务中所研究的刺激一致性效应以及如在“延迟匹配样本”任务中所研究的工作记忆的贡献。这项工作描述了一般实验结果如何可用于设计一个具有生物物理细节但简约的模型架构,该架构高度基于神经生物学发现,以及反过来模拟如何支持实验研究。所得模型能够解释实验和个体的反应时间及错误率,并使注意力切换成为系统固有的模型特征:模型所提出的切换过程基于视觉刺激的记忆,不需要任何突触学习。因此,该模型的运行至少以很高的概率展示了人类行为一个关键组成部分背后的神经元动力学:根据情境要求调整行为的能力——认知灵活性。

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