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Single-trial classification of awareness state during anesthesia by measuring critical dynamics of global brain activity

机译:通过测量全球脑部活动的关键动态,对麻醉过程中的意识状态进行单次试验分类

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In daily life, in the operating room and in the laboratory, the operational way to assess wakefulness and consciousness is through responsiveness. A number of studies suggest that the awake, conscious state is not the default behavior of an assembly of neurons, but rather a very special state of activity that has to be actively maintained and curated to support its functional properties. Thus responsiveness is a feature that requires active maintenance, such as a homeostatic mechanism to balance excitation and inhibition. In this work we developed a method for monitoring such maintenance processes, focusing on a specific signature of their behavior derived from the theory of dynamical systems: stability analysis of dynamical modes. When such mechanisms are at work, their modes of activity are at marginal stability, neither damped (stable) nor exponentially growing (unstable) but rather hovering in between. We have previously shown that, conversely, under induction of anesthesia those modes become more stable and thus less responsive, then reversed upon emergence to wakefulness. We take advantage of this effect to build a single-trial classifier which detects whether a subject is awake or unconscious achieving high performance. We show that our approach can be developed into a means for intra-operative monitoring of the depth of anesthesia, an application of fundamental importance to modern clinical practice.
机译:在日常生活中,在手术室和实验室中,评估觉醒和意识的操作方式是通过响应。大量研究表明,清醒的意识状态不是神经元集合的默认行为,而是一种非常特殊的活动状态,必须对其进行积极维护和管理以支持其功能特性。因此,响应性是需要积极维护的功能,例如平衡激发和抑制的稳态机制。在这项工作中,我们开发了一种监视此类维护过程的方法,重点是从动态系统理论中得出的行为的特定特征:动态模式的稳定性。当这些机制发挥作用时,它们的活动模式处于边际稳定状态,既没有衰减(稳定)也没有指数增长(不稳定),而是徘徊在两者之间。相反,我们以前的研究表明,在麻醉诱导下,这些模式变得更加稳定,因此反应较慢,然后在出现清醒时反转。我们利用这种效果来构建一个单项分类器,该分类器可检测受试者是否处于清醒状态或无意识地实现高性能。我们表明,我们的方法可以发展成为一种术中监测麻醉深度的方法,对现代临床实践具有根本重要性。

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