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Semiautomatic Segmentation of Brain Subcortical Structures From High-Field MRI

机译:从高场MRI半自动分割大脑皮层下结构

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Volumetric segmentation of subcortical structures, such as the basal ganglia and thalamus, is necessary for noninvasive diagnosis and neurosurgery planning. This is a challenging problem due in part to limited boundary information between structures, similar intensity profiles across the different structures, and low contrast data. This paper presents a semiautomatic segmentation system exploiting the superior image quality of ultrahigh field (7 T) MRI. The proposed approach utilizes the complementary edge information in the multiple structural MRI modalities. It combines optimally selected two modalities from susceptibility-weighted, T $_{2}$-weighted, and diffusion MRI, and introduces a tailored new edge indicator function. In addition to this, we employ prior shape and configuration knowledge of the subcortical structures in order to guide the evolution of geometric active surfaces. Neighboring structures are segmented iteratively, constraining oversegmentation at their borders with a nonoverlapping penalty. Several experiments with data acquired on a 7 T MRI scanner demonstrate the feasibility and power of the approach for the segmentation of basal ganglia components critical for neurosurgery applications such as deep brain stimulation surgery.
机译:皮质下结构(例如基底神经节和丘脑)的体积分割对于无创诊断和神经外科手术计划是必需的。这是一个具有挑战性的问题,部分原因是结构之间的边界信息有限,跨不同结构的相似强度分布以及低对比度数据。本文介绍了一种利用超高场(7T)MRI图像质量高的半自动分割系统。所提出的方法在多种结构MRI模态中利用互补边缘信息。它结合了从磁化率加权的最佳选择的两个模态,即T $ _ {2} $ 加权和扩散MRI,以及引入了量身定制的新边缘指示器功能。除此之外,我们利用皮层下结构的先验形状和构造知识来指导几何活动表面的演变。相邻的结构被迭代地分割,以不重叠的惩罚约束边界的过度分割。在7T MRI扫描仪上采集的数据进行的几项实验证明了这种方法的可行性和强大功能,该方法可用于对深部脑刺激手术等神经外科应用至关重要的基底神经节成分。

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