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Integrated fMRI Preprocessing Framework Using Extended Kalman Filter for Estimation of Slice-Wise Motion

机译:使用扩展卡尔曼滤波器的集成fMRI预处理框架用于估计切片运动

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摘要

Functional MRI acquisition is sensitive to subjects' motion that cannot be fully constrained. Therefore, signal corrections have to be applied a posteriori in order to mitigate the complex interactions between changing tissue localization and magnetic fields, gradients and readouts. To circumvent current preprocessing strategies limitations, we developed an integrated method that correct motion and spatial low-frequency intensity fluctuations at the level of each slice in order to better fit the acquisition processes. The registration of single or multiple simultaneously acquired slices is achieved online by an Iterated Extended Kalman Filter, favoring the robust estimation of continuous motion, while an intensity bias field is non-parametrically fitted. The proposed extraction of gray-matter BOLD activity from the acquisition space to an anatomical group template space, taking into account distortions, better preserves fine-scale patterns of activity. Importantly, the proposed unified framework generalizes to high-resolution multi-slice techniques. When tested on simulated and real data the latter shows a reduction of motion explained variance and signal variability when compared to the conventional preprocessing approach. These improvements provide more stable patterns of activity, facilitating investigation of cerebral information representation in healthy and/or clinical populations where motion is known to impact fine-scale data.
机译:功能性MRI采集对无法完全约束的对象的运动敏感。因此,必须在后验上应用信号校正,以减轻变化的组织定位与磁场,梯度和读数之间的复杂相互作用。为了规避当前预处理策略的局限性,我们开发了一种集成方法,该方法可以校正每个切片级别的运动和空间低频强度波动,以更好地适应采集过程。单个或多个同时获取的切片的配准是通过迭代扩展卡尔曼滤波器在线完成的,这有利于对连续运动的鲁棒估计,而强度偏置场则是非参数拟合的。拟议的将灰色物质BOLD活动从采集空间提取到解剖学组模板空间中,考虑到失真,可以更好地保留活动的精细模式。重要的是,提出的统一框架可以推广到高分辨率的多层技术。在模拟和真实数据上进行测试时,与传统的预处理方法相比,后者可以减少运动说明的方差和信号变化。这些改进提供了更稳定的活动模式,有助于调查已知运动会影响精细数据的健康和/或临床人群的大脑信息表示。

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