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Automatic segmentation of infant brain MR images: With special reference to myelinated white matter

机译:婴儿脑MR图像的自动分割:特别参考青少年白质

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Automatic segmentation of infant brain images is faced with numerous challenges like poor image contrast, motion artifacts, and changes caused by progressive myelination of the infant brain. Since timely myelination points to normal brain maturity, monitoring the progress and degree of myelination is clinically significant. However, most of the existing segmentation methods do not segment myelinated portions of the infant brain. In this paper, we propose a segmentation approach focused on segmenting the myelinated white matter tissue in T1-weighted magnetic resonance images of the infant brain. The novelty of the algorithm lies in the introduction of a weighted localized Tsallis entropy based thresholding method. The proposed method is also tested on older babies beyond the one-year age mark to verify its utility and robustness. It is seen that the mean Dice coefficients obtained for myelin segmentation by the proposed weighted localized method are higher than that of the other methods, namely, the conventional Tsallis entropy thresholding and modified localized method. (C) 2017 Nalecz Institute of Biocybemetics and Biomedical Engineering of the Polish Academy of Sciences. Published by Elsevier B.V. All rights reserved.
机译:婴儿脑图像的自动分割面临着众多挑战,如婴儿大脑的渐进式髓鞘导致的差的图像对比度,运动伪影和变化。由于及时髓鞘指向正常的脑成熟,因此监测髓鞘的进展和程度临床上显着。然而,大多数现有的分割方法都不会分段婴儿脑的凹部。在本文中,我们提出了一种分割方法,其集中在婴幼儿脑的T1加权磁共振图像中分割肌肉化白质组织。算法的新颖性在于引入加权局部化Tsallis基于阈值的阈值方法。该方法还测试了超出了一年年龄标志的较大的婴儿,以验证其实用性和鲁棒性。可以看出,通过所提出的加权局部方法对髓鞘分割获得的平均骰子系数高于其他方法的平均骰子系数,即传统的TSallis熵阈值和修改的局部方法。 (c)2017年纳雷斯州博士科学院生物群和生物医学工程研究所。 elsevier b.v出版。保留所有权利。

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