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Automatic falx cerebri and tentorium cerebelli segmentation from Magnetic Resonance Images

机译:来自磁共振图像的自动大脑小脑和小脑小脑膜分割

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The falx cerebri and tentorium cerebelli are dural structures found in the brain. Due to the roles both structures play in constraining brain motion, the falx and tentorium must be identified and included in finite element models of the head to accurately predict brain dynamics during injury events. To date there has been very little research work on automatically segmenting these two structures, which is understandable given that their 1) thin structure challenges the resolution limits of in vivo 3D imaging, and 2) contrast with respect to surrounding tissue is low in standard magnetic resonance imaging. An automatic segmentation algorithm to find the falx and tentorium which uses the results of a multi-atlas segmentation and cortical reconstruction algorithm is proposed. Gray matter labels are used to find the location of the falx and tentorium. The proposed algorithm is applied to five datasets with manual delineations. 3D visualizations of the final results are provided, and Hausdorff distance (HD) and mean surface distance (MSD) is calculated to quantify the accuracy of the proposed method. For the falx, the mean HD is 43.84 voxels and the mean MSD is 2.78 voxels, with the largest errors occurring at the frontal inferior falx boundary. For the tentorium, the mean HD is 14.50 voxels and mean MSD is 1.38 voxels.
机译:大脑小脑和小脑腱是在大脑中发现的硬脑膜结构。由于这两种结构在限制脑部运动中所起的作用,因此必须识别出马ten和ten肌,并将其包括在头部的有限元模型中,以准确预测伤害事件期间的脑部动力学。迄今为止,关于自动分割这两种结构的研究很少,这是可以理解的,因为它们的薄薄结构挑战了体内3D成像的分辨率极限,并且2)与周围组织的对比在标准磁场中较低共振成像。提出了一种利用多图集分割和皮层重建算法的结果自动找到falx和ten的分割算法。灰质标签用于查找falx和Tentorium的位置。所提出的算法被应用于五个具有手动描述的数据集。提供了最终结果的3D可视化效果,并计算了Hausdorff距离(HD)和平均表面距离(MSD)以量化所提出方法的准确性。对于马克斯,平均HD为43.84体素,平均MSD为2.78体素,最大的误差发生在额叶下方的马克斯边界。对于the骨,平均HD为14.50体素,平均MSD为1.38体素。

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