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Integration of Sparse Multi-modality Representation and Geometrical Constraint for Isointense Infant Brain Segmentation

机译:稀疏多模态表征的集成几何约束的等信号婴幼儿大脑分割

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摘要

Segmentation of infant brain MR images is challenging due to insufficient image quality, severe partial volume effect, and ongoing maturation and myelination process. During the first year of life, the signal contrast between white matter (WM) and gray matter (GM) in MR images undergoes inverse changes. In particular, the inversion of WM/GM signal contrast appears around 6–8 months of age, where brain tissues appear isointense and hence exhibit extremely low tissue contrast, posing significant challenges for automated segmentation. In this paper, we propose a novel segmentation method to address the above-mentioned challenge based on the sparse representation of the complementary tissue distribution information from T1, T2 and diffusion-weighted images. Specifically, we first derive an initial segmentation from a library of aligned multi-modality images with ground-truth segmentations by using sparse representation in a patch-based fashion. The segmentation is further refined by the integration of the geometrical constraint information. The proposed method was evaluated on 22 6-month-old training subjects using leave-one-out cross-validation, as well as 10 additional infant testing subjects, showing superior results in comparison to other state-of-the-art methods.
机译:由于图像质量不足,严重的部分体积效应以及持续的成熟和髓鞘形成过程,婴儿脑MR图像的分割具有挑战性。在生命的第一年中,MR图像中白质(WM)和灰质(GM)之间的信号对比度发生逆变化。特别是,WM / GM信号对比度的反转出现在大约6-8个月大时,那里的脑组织表现为等强度的,因此表现出极低的组织对比度,这给自动分割带来了巨大挑战。在本文中,我们基于来自T1,T2和扩散加权图像的互补组织分布信息的稀疏表示,提出了一种新颖的分割方法来应对上述挑战。具体来说,我们首先通过使用基于补丁的稀疏表示,从对齐的多模式图像库中提取具有地面真实性分割的初始分割。通过整合几何约束信息进一步细分细分。该方法对22个6个月大的训练对象进行了留一法交叉验证,另外还有10个婴儿测试对象进行了评估,与其他最新方法相比,该方法具有更好的结果。

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