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首页> 外文期刊>Human brain mapping >A window‐less approach for capturing time‐varying connectivity in f MRI MRI data reveals the presence of states with variable rates of change
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A window‐less approach for capturing time‐varying connectivity in f MRI MRI data reveals the presence of states with variable rates of change

机译:窗口 - 用于在F MRI MRI数据中捕获时变连接的窗口方法揭示了具有可变变化率的状态的存在

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Abstract Functional connectivity during the resting state has been shown to change over time (i.e., has a dynamic connectivity). However, resting‐state fluctuations, in contrast to task‐based experiments, are not initiated by an external stimulus. Consequently, a more complicated method needs to be designed to measure the dynamic connectivity. Previous approaches have been based on assumptions regarding the nature of the underlying dynamic connectivity to compensate for this knowledge gap. The most common assumption is what we refer to as locality assumption . Under a locality assumption, a single connectivity state can be estimated from data that are close in time. This assumption is so natural that it has been either explicitly or implicitly embedded in many current approaches to capture dynamic connectivity. However, an important drawback of methods using this assumption is they are unable to capture dynamic changes in connectivity beyond the embedded rate while, there has been no evidence that the rate of change in brain connectivity matches the rates enforced by this assumption. In this study, we propose an approach that enables us to capture functional connectivity with arbitrary rates of change, varying from very slow to the theoretically maximum possible rate of change, which is only imposed by the sampling rate of the imaging device. This method allows us to observe unique patterns of connectivity that were not observable with previous approaches. As we explain further, these patterns are also significantly correlated to the age and gender of study subjects, which suggests they are also neurobiologically related.
机译:摘要在静止状态期间的功能连接已被显示为随着时间的推移而改变(即,具有动态连接)。然而,与基于任务的实验相比,休息状态波动不是由外部刺激发起的。因此,需要设计更复杂的方法来测量动态连接。以前的方法是基于关于潜在的动态连接性质的假设来补偿这种知识差距。最常见的假设是我们称为地区的假设。在局部假设下,可以从最近关闭的数据估计单个连接状态。这种假设是如此自然,它已经明确地或隐含地嵌入到许多电流以捕获动态连接的方法中。然而,使用这种假设的方法的重要缺点是它们无法捕获超出嵌入率的连接的动态变化,而没有证据表明脑连接的变化率与这种假设执行的速率相匹配。在这项研究中,我们提出了一种方法,使我们能够捕获与任意变化率的功能连接,从非常速度到理论上的最大变化率,这仅由成像装置的采样率施加。该方法允许我们观察未观察到以前的方法的独特连接模式。当我们进一步解释时,这些模式也与研究受试者的年龄和性别有关,这表明它们也是神经生物学相关的。

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