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A Tweaking Principle for Executive Control: Neuronal Circuit Mechanism for Rule-Based Task Switching and Conflict Resolution

机译:执行控制的调整原理:基于规则的任务切换和冲突解决的神经元电路机制

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摘要

A hallmark of executive control is the brain's agility to shift between different tasks depending on the behavioral rule currently in play. In this work, we propose a “tweaking hypothesis” for task switching: a weak rule signal provides a small bias that is dramatically amplified by reverberating attractor dynamics in neural circuits for stimulus categorization and action selection, leading to an all-or-none reconfiguration of sensory-motor mapping. Based on this principle, we developed a biologically realistic model with multiple modules for task switching. We found that the model quantitatively accounts for complex task switching behavior: switch cost, congruency effect, and task-response interaction; as well as monkey's single-neuron activity associated with task switching. The model yields several testable predictions, in particular, that category-selective neurons play a key role in resolving sensory-motor conflict. This work represents a neural circuit model for task switching and sheds insights in the brain mechanism of a fundamental cognitive capability.
机译:执行控制的标志是大脑根据当前的行为规则在不同任务之间切换的敏捷性。在这项工作中,我们提出了一个用于任务切换的“假说”:弱规则信号提供了一个小的偏差,通过在神经回路中回荡吸引子动力学来进行刺激分类和动作选择,从而大大放大了偏差,从而导致了全有或全无的重新配置感觉运动映射。基于此原理,我们开发了具有多个模块的生物现实模型,用于任务切换。我们发现该模型定量地说明了复杂的任务切换行为:切换成本,一致性效果和任务-响应交互;以及与任务切换相关的猴子的单神经元活动。该模型产生了几个可检验的预测,特别是类别选择性神经元在解决感觉运动冲突中起关键作用。这项工作代表了用于任务切换的神经回路模型,并揭示了基本认知能力的大脑机制。

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