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Theta-alpha cross-frequency synchronization facilitates working memory control – a modeling study

机译:Theta-alpha跨频同步促进了工作记忆控制–建模研究

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摘要

Despite decades of research, the neural mechanism of central executive and working memory is still unclear. In this paper, we propose a new neural network model for the real-time control of working memory. The key idea is to consider separately the role of neural activation from that of oscillatory phase. Neural populations encoding different information would not confuse each other when the populations have different oscillatory phases. Depending on the current situation, relevant memories bind together through phase-locking between theta-frequency oscillation of a Central Unit and alpha-frequency oscillations of the relevant group of Memory Units. The Central Unit dynamically controls which Memory Units should be synchronized (and the encoded memory would be processed), and which units should be out of phase (the encoded memory is standby and would not be processed yet). Simulations of two working memory tasks are provided as examples. The model is in agreement with many recent experimental results of human scalp EEG analysis, which reported observations of neural synchronization and cross-frequency coupling during working memory tasks. This model offers a possible explanation of the underlying mechanism for these experiments.
机译:尽管进行了数十年的研究,但中央执行器和工作记忆的神经机制仍不清楚。在本文中,我们提出了一种新的神经网络模型,用于实时控制工作记忆。关键思想是分别考虑神经激活和振荡阶段的作用。当不同种群的振荡相位不同时,编码不同信息的神经种群不会相互混淆。根据当前情况,相关的存储器通过中央单元的θ频率振荡和相关的一组存储单元的α频率振荡之间的锁相结合在一起。中央单元动态控制应该同步哪些存储单元(编码的内存将被处理),以及哪些单元异相(编码的内存处于待机状态并且尚未被处理)。提供了两个工作记忆任务的仿真示例。该模型与人类头皮脑电图分析的许多最新实验结果一致,后者报告了在工作记忆任务期间神经同步和交叉频率耦合的观察结果。该模型为这些实验的潜在机制提供了可能的解释。

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