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Brain MRI Segmentation with Multiphase Minimal Partitioning: A Comparative Study

机译:脑MRI分割与多相最小分割的比较研究

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This paper presents the implementation and quantitative evaluation of a multiphase three-dimensional deformable model in a level set framework for automated segmentation of brain MRIs. The segmentation algorithm performs an optimal partitioning of three-dimensional data based on homogeneity measures that naturally evolves to the extraction of different tissue types in the brain. Random seed initialization was used to minimize the sensitivity of the method to initial conditions while avoiding the need fora prioriinformation. This random initialization ensures robustness of the method with respect to the initialization and the minimization set up. Postprocessing corrections with morphological operators were applied to refine the details of the global segmentation method. A clinical study was performed on a database of 10 adult brain MRI volumes to compare the level set segmentation to three other methods: “idealized” intensity thresholding, fuzzy connectedness, and an expectation maximization classification using hidden Markov random fields. Quantitative evaluation of segmentation accuracy was performed with comparison to manual segmentation computing true positive and false positive volume fractions. A statistical comparison of the segmentation methods was performed through a Wilcoxon analysis of these error rates and results showed very high quality and stability of the multiphase three-dimensional level set method.
机译:本文介绍了在水平集框架中对脑MRI进行自动分割的多相三维可变形模型的实现和定量评估。分割算法基于同质性度量对三维数据进行最佳划分,该同质性度量自然演变为提取大脑中不同组织类型。随机种子初始化用于最小化方法对初始条件的敏感性,同时避免了需要先验信息的情况。该随机初始化确保了该方法相对于初始化和最小化设置的鲁棒性。应用形态学运算符进行后处理校正以完善全局分割方法的细节。在一个包含10个成人脑部MRI量的数据库上进行了一项临床研究,以将水平集分割与其他三种方法进行比较:“理想化”强度阈值,模糊连接和使用隐马尔可夫随机场的期望最大化分类。分割精度的定量评估与手工分割计算出的真阳性和假阳性体积分数进行了比较。通过对这些错误率的Wilcoxon分析,对分割方法进行了统计比较,结果表明,多相三维水平集方法具有很高的质量和稳定性。

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