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A skull stripping from brain MRI using adaptive iterative thresholding and mathematical morphology

机译:使用自适应迭代阈值法和数学形态学从颅脑MRI剥离颅骨

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Skull striping is a crucial pre-processing step incorporated in several brain image processing applications. It deals with the removal of non-brain tissues from the brain Magnetic Resonance Imaging (MRI). The skull striping of brain MRI is not a trivial task due to the complex structure of the brain and presence of intensity in homogeneity artifact in MRI. In this paper a novel approach of skull stripping has been presented. The method is composed of adaptive iterative thresholding in addition to Otsu's global thresholding. The global thresholding is followed by analysis and removal of connected components. Finally morphological operations are carried out to obtain the brain mask. The method has been validated using 20 T1w normal coronal brain MRI images of Internet Brain Segmentation Repository (IBSR) dataset, 40 T1w MRI scans of LONI Probabilistic Brain Atlas project (LPBA40) dataset and 77 T1w MRI images from Open Access Series of Imaging Studies (OASIS) dataset. The comparative analysis using standard metrices (such as Dice Similarity Coefficient (DSC), Jacard Index (JI), sensitivity, and specificity) shows that the proposed method performs better than existing skull striping methods for brain MRI.
机译:头骨条纹是一些大脑图像处理应用程序中包含的关键预处理步骤。它涉及从大脑磁共振成像(MRI)去除非脑组织。由于MRI的大脑复杂结构和均质伪像的强度,因此脑部MRI的颅骨条纹检查并不是一件容易的事。在本文中,提出了一种新颖的颅骨剥离方法。该方法除Otsu的全局阈值外,还包括自适应迭代阈值。全局阈值处理后,将分析并删除连接的组件。最后,进行形态学操作以获得脑罩。该方法已通过Internet脑分段存储库(IBSR)数据集的20例T1w正常冠状脑MRI图像,LONI概率脑图集项目(LPBA40)数据集的40例T1w MRI扫描以及来自开放获取影像研究系列的77例T1w MRI图像进行了验证( OASIS)数据集。使用标准度量标准(例如骰子相似性系数(DSC),Jacard指数(JI),灵敏度和特异性)进行的比较分析表明,对于脑MRI,该方法的性能优于现有的颅骨剥离方法。

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