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发育中新生儿大脑磁共振图像的自动分割

Automatic segmentation of MR images of the developing newborn brain.

作者信息

Prastawa Marcel, Gilmore John H, Lin Weili, Gerig Guido

机构信息

Department of Computer Science, University of North Carolina, CB #3175 Sitterson Hall, Chapel Hill, NC 27599, USA.

出版信息

Med Image Anal. 2005 Oct;9(5):457-66. doi: 10.1016/j.media.2005.05.007.

Abstract

This paper describes an automatic tissue segmentation method for newborn brains from magnetic resonance images (MRI). The analysis and study of newborn brain MRI is of great interest due to its potential for studying early growth patterns and morphological changes in neurodevelopmental disorders. Automatic segmentation of newborn MRI is a challenging task mainly due to the low intensity contrast and the growth process of the white matter tissue. Newborn white matter tissue undergoes a rapid myelination process, where the nerves are covered in myelin sheathes. It is necessary to identify the white matter tissue as myelinated or non-myelinated regions. The degree of myelination is a fractional voxel property that represents regional changes of white matter as a function of age. Our method makes use of a registered probabilistic brain atlas. The method first uses robust graph clustering and parameter estimation to find the initial intensity distributions. The distribution estimates are then used together with the spatial priors to perform bias correction. Finally, the method refines the segmentation using training sample pruning and non-parametric kernel density estimation. Our results demonstrate that the method is able to segment the brain tissue and identify myelinated and non-myelinated white matter regions.

摘要

本文描述了一种从磁共振成像(MRI)中自动分割新生儿大脑组织的方法。由于新生儿脑MRI在研究神经发育障碍的早期生长模式和形态变化方面具有潜力,因此对其进行分析和研究具有重要意义。新生儿MRI的自动分割是一项具有挑战性的任务,主要原因是强度对比度低以及白质组织的生长过程。新生儿白质组织经历快速的髓鞘形成过程,神经被髓鞘覆盖。有必要将白质组织识别为有髓鞘或无髓鞘区域。髓鞘形成程度是一种体素分数属性,它表示白质随年龄变化的区域变化。我们的方法利用了已配准的概率性脑图谱。该方法首先使用鲁棒图聚类和参数估计来找到初始强度分布。然后将分布估计与空间先验一起用于进行偏差校正。最后,该方法使用训练样本修剪和非参数核密度估计来细化分割。我们的结果表明,该方法能够分割脑组织并识别有髓鞘和无髓鞘的白质区域。

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