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Hierarchical Selective Recruitment in Linear-Threshold Brain Networks—Part I: Single-Layer Dynamics and Selective Inhibition

机译:线性阈值脑网络中的分层选择性招聘 - 第一部分:单层动力学和选择性抑制

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Goal-driven selective attention (GDSA) refers to the brain's function of prioritizing the activity of a task-relevant subset of its overall network to efficiently process relevant information while inhibiting the effects of distractions. Despite decades of research in neuroscience, a comprehensive understanding of GDSA is still lacking. We propose a novel framework using concepts and tools from control theory as well as insights and structures from neuroscience. Central to this framework is an information-processing hierarchy with two main components: selective inhibition of task-irrelevant activity and top-down recruitment of task-relevant activity. We analyze the internal dynamics of each layer of the hierarchy described as a network with linear-threshold dynamics and derive conditions on its structure to guarantee existence and uniqueness of equilibria, asymptotic stability, and boundedness of trajectories. We also provide mechanisms that enforce selective inhibition using the biologically inspired schemes of feedforward and feedback inhibition. Despite their differences, both lead to the same conclusion: the intrinsic dynamical properties of the (not-inhibited) task-relevant subnetworks are the sole determiner of the dynamical properties that are achievable under selective inhibition.
机译:目标驱动的选择性注意力(GDSA)是指大脑的功能优先考虑其整体网络的任务相关子集的活动,以有效地处理相关信息,同时抑制分心的影响。尽管在神经科学研究几十年来,但仍然缺乏对GDSA的全面了解。我们建议使用来自控制理论的概念和工具以及神经科学的见解和结构的新颖框架。该框架的核心是一种具有两个主要组件的信息处理层次结构:选择性抑制任务 - 无关的活动和自上而下的招聘任务相关活动。我们分析了具有线性阈值动态的层次结构层的内部动态,并导致其结构的条件,以保证横向,渐近稳定性和轨迹的界限的存在和唯一性。我们还提供使用生物学启发的前馈和反馈抑制方案来强制选择性抑制的机制。尽管有所不同,但都导致得出相同的结论:(不受禁止的)任务相关的子网的内在动力学特性是在选择性抑制下可实现的动态性质的唯一决定因素。

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