研究大脑临界性的理论基础

IF 3.6 3区 医学 Q2 NEUROSCIENCES
Network Neuroscience Pub Date : 2022-10-01 eCollection Date: 2022-01-01 DOI:10.1162/netn_a_00269
Yang Tian, Zeren Tan, Hedong Hou, Guoqi Li, Aohua Cheng, Yike Qiu, Kangyu Weng, Chun Chen, Pei Sun
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引用次数: 0

摘要

摘要临界性被假设为大脑皮层状态和显著信息处理能力之间有效转换的物理机制。虽然有相当多的证据普遍支持这一假设,但关于临界性在神经动力学中的普遍性及其在信息处理中的作用,仍存在不可忽视的争议。在从经验数据中识别潜在的大脑临界性的过程中,有效性问题经常出现。此外,大脑临界状态所暗示的功能益处经常被误解或过度概括。这些问题源于分析推导大脑临界性的物理理论和从经验数据中估计大脑临界度的统计技术的不平凡和不成熟。为了帮助解决这些问题,我们提出了一个系统的综述,并使用神经科学的术语重新制定了研究大脑临界的基础,即普通临界(OC)、准临界(qC)、自组织临界(SOC)和自组织准临界(SOqC)。我们对大脑临界的物理理论和统计技术提供了易于理解的解释,提供了逐步的推导,将神经动力学描述为一个具有雪崩的物理系统。我们总结了大脑关键性分析中容易出错的细节和现有的局限性,并提出了可能的解决方案。此外,我们提出了一个前瞻性的观点,即优化大脑临界性研究的基础如何加深我们对各种神经科学问题的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical foundations of studying criticality in the brain.

Criticality is hypothesized as a physical mechanism underlying efficient transitions between cortical states and remarkable information-processing capacities in the brain. While considerable evidence generally supports this hypothesis, nonnegligible controversies persist regarding the ubiquity of criticality in neural dynamics and its role in information processing. Validity issues frequently arise during identifying potential brain criticality from empirical data. Moreover, the functional benefits implied by brain criticality are frequently misconceived or unduly generalized. These problems stem from the nontriviality and immaturity of the physical theories that analytically derive brain criticality and the statistic techniques that estimate brain criticality from empirical data. To help solve these problems, we present a systematic review and reformulate the foundations of studying brain criticality, that is, ordinary criticality (OC), quasi-criticality (qC), self-organized criticality (SOC), and self-organized quasi-criticality (SOqC), using the terminology of neuroscience. We offer accessible explanations of the physical theories and statistical techniques of brain criticality, providing step-by-step derivations to characterize neural dynamics as a physical system with avalanches. We summarize error-prone details and existing limitations in brain criticality analysis and suggest possible solutions. Moreover, we present a forward-looking perspective on how optimizing the foundations of studying brain criticality can deepen our understanding of various neuroscience questions.

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来源期刊
Network Neuroscience
Network Neuroscience NEUROSCIENCES-
CiteScore
6.40
自引率
6.40%
发文量
68
审稿时长
16 weeks
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