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Fully Automatic Skull Stripping of Routine Clinical Neurological NMR Data

机译:全自动颅骨剥离常规临床神经系统NMR数据

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Image analysis of neurological NMR data is often an easier undertaking when non-cerebral tissue compartment voxels are removed from the NMR image dataset. This preprocessing step is often called 'skull stripping'. The simple but robust technique formulated and presented in this paper utilizes a combination of mathematical morphology and statistical segmentation techniques. Non-tissue background voxels are deemed to possess a Rayleigh distribution and consequently removed using an adaptive region dividing technique. Further processing automatically identifies a set of voxels that act as a test slice to determine whether the cerebral tissue compartment voxels have been fully separated during subsequent morphological processing. This set is used as a test to terminate an iterative morphological processing scheme to disconnect cerebral from non-cerebral voxels. The method has been successfully applied to 9 NMR datasets of varying quality with low inter-slice resolution. It therefore appears that this approach should be sufficiently robust to be useful for the statistical analysis of routine clinical NMR data.
机译:当从NMR图像数据集中移除非脑组织隔室体素时,神经系统NMR数据的图像分析通常是更容易的事项。该预处理步骤通常被称为“头骨剥离”。本文制定和呈现的简单但稳健的技术利用数学形态和统计分割技术的组合。非组织背景体素被认为具有瑞利分布,从而使用自适应区域分割技术除去。进一步的处理自动识别一种充当测试切片的一组体素,以确定在随后的形态加工期间是否已经完全分离了脑组织舱室体素。该组用作试验以终止迭代形态处理方案以断开来自非脑体素的脑筋。该方法已成功应用于9个NMR数据集,具有低切片分辨率。因此,似乎这种方法应该足够强大地用于常规临床NMR数据的统计分析。

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