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Phase Transitions in Mesoscopic Brain Dynamics - Implications for Cognition and Consciousness

机译:介观大脑动力学的相变-对认知和意识的影响

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Mesoscopic brain dynamics, typically studied with electro- and magnetoencephalography (EEG and MEG) display a rich complexity of oscillatory and chaoticlike states, including many different frequencies, amplitudes and phases. Presumably, these different dynamical states correspond to different mental states and functions, and to study transitions between such states could give us valuable insight in brain-mind relations that should also be of clinical interest. We use computational methods to address these problems, with an objective to find relations between structure, dynamics and function. In particular, we have developed models of paleo- and neocortical structures, in order to study their mesoscopic neurodynamics, as a link between the microscopic neuronal and macroscopic mental events and processes. In this presentation, I will describe different types of models, where the emphasis is on network connectivity and structure, but also including molecular and cellular properties at varying detail, depending on the particular problem and experimental data available. We use these models to study how phase transitions can be induced in the mesoscopic neurodynamics of cortical networks by internal (natural) and external (artificial) factors. We relate and discuss the models and simulation results to macroscopic phenomena, such as arousal, attention, anaesthesia, learning, and mental disorders.
机译:通常用脑电图和脑磁图(EEG和MEG)研究的介观大脑动力学显示出丰富的振荡状态和混沌状态,包括许多不同的频率,幅度和相位。据推测,这些不同的动力学状态对应于不同的精神状态和功能,研究这些状态之间的转换可以为我们提供关于脑力关系的宝贵见解,这也应具有临床意义。我们使用计算方法来解决这些问题,目的是发现结构,动力学和功能之间的关系。特别是,我们已经开发了古皮层和新皮层结构的模型,以研究它们的介观神经动力学,以此作为微观神经元和宏观心理事件与过程之间的联系。在此演示文稿中,我将描述不同类型的模型,其中重点放在网络的连接性和结构上,还包括分子和细胞特性的不同细节,具体取决于特定的问题和可用的实验数据。我们使用这些模型来研究如何通过内部(自然)和外部(人工)因素在皮质网络的介观神经动力学中诱导相变。我们将模型和模拟结果与宏观现象相关并进行讨论,例如唤醒,注意,麻醉,学习和精神障碍。

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