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Dynamic functional connectivity using state-based dynamic community structure: Method and application to opioid analgesia

机译:基于状态的动态社区结构的动态功能连接:阿片类镇痛的方法和应用

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摘要

We present a new method, State-based Dynamic Community Structure, that detects time-dependent community structure in networks of brain regions. Most analyses of functional connectivity assume that network behavior is static in time, or differs between task conditions with known timing. Our goal is to determine whether brain network topology remains stationary over time, or if changes in network organization occur at unknown time points. Changes in network organization may be related to shifts in neurological state, such as those associated with learning, drug uptake or experimental conditions. Using a hidden Markov stochastic block model, we define a time-dependent community structure. We apply this approach to data from a functional magnetic resonance imaging experiment examining how contextual factors influence drug-induced analgesia. Results reveal that networks involved in pain, working memory, and emotion show distinct profiles of time-varying connectivity. (C) 2014 Elsevier Inc. All rights reserved.
机译:我们提出了一种新的方法,即基于状态的动态社区结构,该方法可以检测大脑区域网络中随时间变化的社区结构。对功能连接的大多数分析都假定网络行为在时间上是静态的,或者在任务条件与已知时间不同的情况下。我们的目标是确定大脑网络拓扑是否随时间推移保持静止,或者网络组织的变化是否在未知时间点发生。网络组织的变化可能与神经系统状态的变化有关,例如与学习,药物吸收或实验条件相关的变化。使用隐马尔可夫随机块模型,我们定义了一个与时间有关的社区结构。我们将此方法应用于功能性磁共振成像实验的数据,该实验检查了背景因素如何影响药物引起的镇痛作用。结果表明,与疼痛,工作记忆和情绪有关的网络显示出时变连接的独特特征。 (C)2014 Elsevier Inc.保留所有权利。

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