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首页> 外文期刊>PLoS Computational Biology >Spatial Learning and Action Planning in a Prefrontal Cortical Network Model
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Spatial Learning and Action Planning in a Prefrontal Cortical Network Model

机译:前额叶皮质网络模型中的空间学习和行动计划

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摘要

The interplay between hippocampus and prefrontal cortex (PFC) is fundamental to spatial cognition. Complementing hippocampal place coding, prefrontal representations provide more abstract and hierarchically organized memories suitable for decision making. We model a prefrontal network mediating distributed information processing for spatial learning and action planning. Specific connectivity and synaptic adaptation principles shape the recurrent dynamics of the network arranged in cortical minicolumns. We show how the PFC columnar organization is suitable for learning sparse topological-metrical representations from redundant hippocampal inputs. The recurrent nature of the network supports multilevel spatial processing, allowing structural features of the environment to be encoded. An activation diffusion mechanism spreads the neural activity through the column population leading to trajectory planning. The model provides a functional framework for interpreting the activity of PFC neurons recorded during navigation tasks. We illustrate the link from single unit activity to behavioral responses. The results suggest plausible neural mechanisms subserving the cognitive “insight” capability originally attributed to rodents by Tolman & Honzik. Our time course analysis of neural responses shows how the interaction between hippocampus and PFC can yield the encoding of manifold information pertinent to spatial planning, including prospective coding and distance-to-goal correlates.
机译:海马和前额叶皮层(PFC)之间的相互作用是空间认知的基础。作为对海马体位置编码的补充,前额表示提供了更抽象和层次化的组织内存,适合决策。我们对前额网络进行建模,该网络介导用于空间学习和行动计划的分布式信息处理。特定的连通性和突触适应原理塑造了排列在皮质小柱中的网络的循环动力学。我们展示了PFC柱状组织如何适合于从冗余的海马输入中学习稀疏拓扑度量表示。网络的循环特性支持多级空间处理,从而可以对环境的结构特征进行编码。激活扩散机制通过列总体传播神经活动,从而进行轨迹规划。该模型提供了一个功能框架,用于解释导航任务期间记录的PFC神经元的活动。我们说明了从单个单元活动到行为响应的链接。结果表明,合理的神经机制可以保护最初归因于Tolman&Honzik的啮齿动物的认知“洞察力”。我们对神经反应的时程分析表明,海马和PFC之间的相互作用如何产生与空间规划有关的多种信息的编码,包括预期编码和目标距离相关性。

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