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情绪-认知相互作用的动力学原理:精神障碍的数学图像。

Dynamical principles of emotion-cognition interaction: mathematical images of mental disorders.

机构信息

BioCircuits Institute, University of California San Diego, La Jolla, California, USA.

出版信息

PLoS One. 2010 Sep 21;5(9):e12547. doi: 10.1371/journal.pone.0012547.

Abstract

The key contribution of this work is to introduce a mathematical framework to understand self-organized dynamics in the brain that can explain certain aspects of itinerant behavior. Specifically, we introduce a model based upon the coupling of generalized Lotka-Volterra systems. This coupling is based upon competition for common resources. The system can be regarded as a normal or canonical form for any distributed system that shows self-organized dynamics that entail winnerless competition. Crucially, we will show that some of the fundamental instabilities that arise in these coupled systems are remarkably similar to endogenous activity seen in the brain (using EEG and fMRI). Furthermore, by changing a small subset of the system's parameters we can produce bifurcations and metastable sequential dynamics changing, which bear a remarkable similarity to pathological brain states seen in psychiatry. In what follows, we will consider the coupling of two macroscopic modes of brain activity, which, in a purely descriptive fashion, we will label as cognitive and emotional modes. Our aim is to examine the dynamical structures that emerge when coupling these two modes and relate them tentatively to brain activity in normal and non-normal states.

摘要

这项工作的主要贡献在于引入了一个数学框架,以理解大脑中的自组织动力学,该动力学可以解释巡游行为的某些方面。具体来说,我们引入了一个基于广义Lotka-Volterra 系统耦合的模型。这种耦合是基于对共同资源的竞争。该系统可以被视为表现出自组织动力学的任何分布式系统的正常或规范形式,这种自组织动力学需要无赢家的竞争。至关重要的是,我们将表明,这些耦合系统中出现的一些基本不稳定性与大脑中观察到的内源性活动(使用 EEG 和 fMRI)非常相似。此外,通过改变系统参数的一小部分,我们可以产生分叉和亚稳序动力学变化,这与精神病学中观察到的病理性脑状态非常相似。在接下来的内容中,我们将考虑大脑活动的两种宏观模式的耦合,我们将以纯描述性的方式将其标记为认知和情感模式。我们的目的是研究当耦合这两种模式时出现的动力学结构,并将其与正常和非正常状态下的大脑活动进行初步关联。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b3c/2943469/8b10d8d7f0f3/pone.0012547.g001.jpg

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