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Outlier detection for robust region-based estimation of the hemodynamic response function in event-related fMRI

机译:事件检测对事件相关的FMRI中的血流动力响应函数的基于鲁棒区域的估计

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In functional magnetic resonance imaging (fMRI), the hemodynamic response function (HRF) represents the impulse response of the neurovascular system. Its identification is essential for a deeper understanding of the dynamics of cerebral activity. In previous papers, we developed a voxelwise approach, i.e. based on a single time-course. In this paper, we propose an extension to cope with region-based HRF estimation. We introduce a spatial homogeneous model that assumes the same HRF shape for a majority of voxels within a given region-of-interest (ROI). A least trimmed squares estimator is employed to select those voxels. A Bayesian HRF estimation is then performed with the corresponding time courses. Our approach is tested on real fMRI data to illustrate the gain in robustness achieved with the region-based estimate.
机译:在功能磁共振成像(FMRI)中,血液动力学反应函数(HRF)代表神经血管系统的脉冲响应。它的识别对于更深入地了解脑活动动态的更深刻。在先前的论文中,我们开发了一种Voxelwise方法,即,基于单一的时间课程。在本文中,我们提出了应对基于区域的HRF估计的延伸。我们介绍了一种空间均匀模型,该模型对于给定的兴趣区域(ROI)内的大多数体素具有相同的HRF形状。采用最小修整的正方形估计器来选择这些体素。然后使用相应的时间课程进行贝叶斯HRF估计。我们的方法是在真正的FMRI数据上测试,以说明基于区域的估计所实现的稳健性的增益。

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