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From homeostasis to behavior: Balanced activity in an exploration of embodied dynamic environmental-neural interaction

机译:从动态平衡到行为:平衡的活动,探索动态的环境-神经互动

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In recent years, there have been many computational simulations of spontaneous neural dynamics. Here, we describe a simple model of spontaneous neural dynamics that controls an agent moving in a simple virtual environment. These dynamics generate interesting brain-environment feedback interactions that rapidly destabilize neural and behavioral dynamics demonstrating the need for homeostatic mechanisms. We investigate roles for homeostatic plasticity both locally (local inhibition adjusting to balance excitatory input) as well as more globally (regional “task negative” activity that compensates for “task positive”, sensory input in another region) balancing neural activity and leading to more stable behavior (trajectories through the environment). Our results suggest complementary functional roles for both local and macroscale mechanisms in maintaining neural and behavioral dynamics and a novel functional role for macroscopic “task-negative” patterns of activity (e.g., the default mode network).
机译:近年来,有许多自发神经动力学的计算模拟。在这里,我们描述了一个自发神经动力学的简单模型,该模型控制在简单虚拟环境中移动的代理。这些动力学产生有趣的脑-环境反馈相互作用,迅速破坏神经和行为动力学的稳定性,表明需要体内平衡机制。我们研究了局部(局部调节以平衡兴奋性输入的平衡)以及更全局性(区域“任务消极”的活动来补偿“任务积极”,另一区域的感觉输入)平衡稳态的作用,平衡了神经活动并导致了更多行为稳定(通过环境的轨迹)。我们的结果表明,局部和宏观机制在维持神经和行为动力学方面具有互补的功能作用,而宏观的“任务负性”活动模式(例如默认模式网络)具有新颖的功能作用。

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