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Segmentation of brain from computed tomography head images

机译:从计算机断层扫描头图像中分割大脑

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An algorithm to determine the human brain (gray matter (GM) and white matter (WM)) from computed tomography (CT) head volumes with large slice thickness is proposed based on thresholding and brain mask propagation. Firstly, a 2D reference image is chosen to represent the intensity characteristics of the original 3D data set. Secondly, the region of interest of the reference image is determined as the space enclosed by the skull. Fuzzy C-means clustering is employed to determine the threshold for head mask and the low threshold for brain segmentation. The high threshold is calculated as the weighted intensity average of the boundary pixels between bones and GM/WM. Based on the low and high thresholds, the CT volume is binarized, followed by finding the brain candidates through distance criterion. Finally the brain is identified through brain mask propagation using the spatial relationship of neighboring axial slices. The algorithm has been validated against one non-enhanced CT and one enhanced CT volume with pathology.
机译:提出了一种基于阈值化和脑罩传播的算法,可以从具有较大切片厚度的计算机断层扫描(CT)头部体积中确定人脑(灰质(GM)和白质(WM))。首先,选择2D参考图像来表示原始3D数据集的强度特性。其次,将参考图像的关注区域确定为头骨所包围的空间。模糊C均值聚类用于确定头罩的阈值和脑部分割的低阈值。高阈值计算为骨骼与GM / WM之间的边界像素的加权强度平均值。根据低阈值和高阈值,将CT量二值化,然后通过距离标准找到候选大脑。最后,通过使用相邻轴向切片的空间关系通过脑罩传播来识别大脑。该算法已针对1例非增强CT和1例具有病理表现的增强CT量进行了验证。

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