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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Improved Labeling of Subcortical Brain Structures in Atlas-Based Segmentation of Magnetic Resonance Images
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Improved Labeling of Subcortical Brain Structures in Atlas-Based Segmentation of Magnetic Resonance Images

机译:在基于图集的磁共振图像分割中改善皮质下大脑结构的标记

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摘要

Precise labeling of subcortical structures plays a key role in functional neurosurgical applications. Labels from an atlas image are propagated to a patient image using atlas-based segmentation. Atlas-based segmentation is highly dependent on the registration framework used to guide the atlas label propagation. This paper focuses on atlas-based segmentation of subcortical brain structures and the effect of different registration methods on the generated subcortical labels. A single-step and three two-step registration methods appearing in the literature based on affine and deformable registration algorithms in the ANTS and FSL algorithms are considered. Experiments are carried out with two atlas databases of IBSR and LPBA40. Six segmentation metrics consisting of Dice overlap, relative volume error, false positive, false negative, surface distance, and spatial extent are used for evaluation. Segmentation results are reported individually and as averages for nine subcortical brain structures. Based on two statistical tests, the results are ranked. In general, among four different registration strategies investigated in this paper, a two-step registration consisting of an initial affine registration followed by a deformable registration applied to subcortical structures provides superior segmentation outcomes. This method can be used to provide an improved labeling of the subcortical brain structures in MRIs for different applications.
机译:皮层下结构的精确标记在功能性神经外科应用中起着关键作用。使用基于图集的分割,将图集图像中的标签传播到患者图像。基于图集的细分在很大程度上取决于用于指导图集标签传播的配准框架。本文着重于基于图集的皮质下大脑结构分割以及不同注册方法对生成的皮质下标签的影响。考虑了基于ANTS和FSL算法中的仿射和可变形配准算法的文献中出现的单步和三种两步配准方法。实验是使用IBSR和LPBA40的两个图集数据库进行的。六个分割指标由Dice重叠,相对体积误差,假阳性,假阴性,表面距离和空间范围组成,用于评估。分割结果分别报告为九个皮质下大脑结构的平均值。基于两个统计检验,对结果进行排名。通常,在本文研究的四种不同的配准策略中,由初始仿射配准和可变形配准应用于皮层下结构组成的两步​​配准可提供出色的分割效果。此方法可用于为MRI提供针对不同应用的改进的皮质下大脑结构标记。

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