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A rapid algorithm for robust and automatic extraction of the midsagittal plane of the human cerebrum from neuroimages based on local symmetry and outlier removal.

机译:一种基于局部对称性和离群值消除的快速有效算法,可从神经图像中可靠,自动地提取人大脑的中矢状面。

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A rapid algorithm for robust, accurate, and automatic extraction of the midsagittal plane (MSP) of the human cerebrum from normal and pathological neuroimages is proposed. The MSP is defined as a plane formed from the interhemispheric fissure line segments having the dominant orientation. The algorithm extracts the MSP in four steps: (1) determine suitable axial slices for processing, (2) localize the fissure line segments on them, (3) select inliers from the extracted fissure line segments through histogram-based outlier removal, and (4) calculate the equation of the MSP from the selected inliers. The fissure line segments are localized by minimizing the local symmetry index characterizing anatomical properties of images in the vicinity of the interhemispheric fissure. A two-stage angular and distance outlier removal is introduced to handle abnormalities. The algorithm has been validated quantitatively with 125 structural MRI and CT cases from 10 centers on three continents by studying its accuracy; tolerance to rotation, noise, asymmetry, and bias field; sensitivity to parameters; and performance. A statistical relationship between algorithm accuracy and the data's adherence to planarity is also determined. The algorithm extracts the MSP below 6 s on Pentium 4 (2.4 GHz) with the average angular and distance errors of (0.40 degrees; 0.63 mm) for normal and (0.59 degrees; 0.73 mm) for pathological cases. The robustness to noise, asymmetry, rotation, and bias field is achieved by extracting the MSP based on the dominant orientation and local symmetry index. A low computational cost results from applying simple operations capturing intrinsic anatomic features, constraining the searching space to the local vicinity of the interhemispheric fissure, and formulating a noniterative algorithm with a coarse and fine fixed-step searching. In comparison to the existing methods, our algorithm is much faster, performs accurately and robustly for a wide range of diversified data, and is fully automatic and thoroughly validated, which make it suitable for clinical applications.
机译:提出了一种快速,准确,自动从正常和病理神经影像中提取人大脑中矢状面(MSP)的算法。 MSP被定义为由具有主要取向的半球间裂缝线段形成的平面。该算法分四个步骤提取MSP:(1)确定合适的轴向切片进行处理;(2)在其上定位裂缝线段;(3)通过基于直方图的离群值去除从提取的裂缝线段中选择离群值;以及( 4)根据选定的离群值计算MSP方程。通过最小化局部对称指数来局部化裂缝线段,该局部对称指数表征了半球间裂缝附近图像的解剖学特性。引入了两步角度和距离离群值消除来处理异常。通过研究算法的准确性,已对来自三大洲10个中心的125例结构性MRI和CT病例进行了定量验证;对旋转,噪声,不对称性和偏置场的容忍度;对参数的敏感性;和性能。还确定了算法准确性和数据对平面性的依从性之间的统计关系。该算法提取奔腾4(2.4 GHz)上6 s以下的MSP,正常情况下平均角和距离误差为(0.40度; 0.63毫米),病理情况下为(0.59度; 0.73毫米)。通过基于主导方向和局部对称性指标提取MSP,可以实现对噪声,不对称性,旋转和偏置场的鲁棒性。通过应用简单的操作捕获固有的解剖特征,将搜索空间限制在半球间裂隙的局部附近以及使用粗略和精细的固定步长公式制定非迭代算法,可以实现较低的计算成本。与现有方法相比,我们的算法速度更快,对多种多样的数据均能准确而稳健地执行,并且是全自动且经过全面验证的,因此适合于临床应用。

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