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Atlas-Based Fuzzy Connectedness Segmentation and Intensity Nonuniformity Correction Applied to Brain MRI

机译:基于图集的模糊连接分割和强度不均匀校正在脑MRI中的应用

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摘要

A framework that combines atlas registration, fuzzy connectedness (FC) segmentation, and parametric bias field correction (PABIC) is proposed for the automatic segmentation of brain magnetic resonance imaging (MRI). First, the atlas is registered onto the MRI to initialize the following FC segmentation. Original techniques are proposed to estimate necessary initial parameters of FC segmentation. Further, the result of the FC segmentation is utilized to initialize a following PABIC algorithm. Finally, we re-apply the FC technique on the PABIC corrected MRI to get the final segmentation. Thus, we avoid expert human intervention and provide a fully automatic method for brain MRI segmentation. Experiments on both simulated and real MRI images demonstrate the validity of the method, as well as the limitation of the method. Being a fully automatic method, it is expected to find wide applications, such as three-dimensional visualization, radiation therapy planning, and medical database construction
机译:提出了一种结合了地图集配准,模糊连接性(FC)分割和参数化偏场校正(PABIC)的框架,用于脑磁共振成像(MRI)的自动分割。首先,将地图集注册到MRI上以初始化随后的FC分割。提出了原始技术来估计FC分段的必要初始参数。此外,利用FC分段的结果来初始化随后的PABIC算法。最后,我们将FC技术重新应用于PABIC校正的MRI以获得最终分割。因此,我们避免了人工干预,并为脑部MRI分割提供了一种全自动方法。在模拟和真实MRI图像上进行的实验证明了该方法的有效性以及该方法的局限性。作为一种全自动方法,它有望找到广泛的应用,例如三维可视化,放射治疗计划和医疗数据库构建

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