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Robust estimation of group-wise cortical correspondence with an application to macaque and human neuroimaging studies

机译:鲁棒估计团体皮层的对应关系,在猕猴和人类神经影像学研究中的应用

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We present a novel group-wise registration method for cortical correspondence for local cortical thickness analysis in human and non-human primate neuroimaging studies. The proposed method is based on our earlier template based registration that estimates a continuous, smooth deformation field via sulcal curve-constrained registration employing spherical harmonic decomposition of the deformation field. This pairwise registration though results in a well-known template selection bias, which we aim to overcome here via a group-wise approach. We propose the use of an unbiased ensemble entropy minimization following the use of the pairwise registration as an initialization. An individual deformation field is then iteratively updated onto the unbiased average. For the optimization, we use metrics specific for cortical correspondence though all of these are straightforwardly extendable to the generic setting: The first focused on optimizing the correspondence of automatically extracted sulcal landmarks and the second on that of sulcal depth property maps. We further propose a robust entropy metric and a hierarchical optimization by employing spherical harmonic basis orthogonality. We also provide the detailed methodological description of both our earlier work and the proposed method with a set of experiments on a population of human and non-human primate subjects. In the experiment, we have shown that our method achieves superior results on consistency through quantitative and visual comparisons as compared to the existing methods.
机译:我们为人类和非人类的灵长类动物神经影像学研究中的局部皮层厚度分析提供了一种新型的皮层对应分组方法。所提出的方法基于我们之前的基于模板的配准,该配准通过使用变形场的球谐分解通过槽曲线约束配准来估计连续,平滑的变形场。这种成对配准会导致众所周知的模板选择偏差,我们打算在此通过逐组方法克服这种偏差。我们建议在使用成对配准作为初始化之后,使用无偏集合熵最小化。然后将单个变形场迭代更新为无偏平均。对于优化,我们使用特定于皮质对应关系的指标,尽管所有这些指标都可以直接扩展到通用设置:第一个专注于优化自动提取的沟渠界标的对应关系,第二个专注于沟渠深度特性图的对应关系。通过采用球谐基正交性,我们进一步提出了鲁棒的熵度量和分级优化。我们还通过对人类和非人类灵长类动物种群的一组实验,提供了我们早期工作和拟议方法的详细方法论说明。在实验中,我们证明了与现有方法相比,通过定量和视觉比较,我们的方法在一致性方面取得了优异的结果。

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