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Symmetry Identification Using Partial Surface Matching and Tilt Correction in 3D Brain Images

机译:在3D脑图像中使用部分表面匹配和倾斜校正进行对称性识别

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摘要

We propose a novel method to automatically compute the symmetry plane and correct the 3D orientation of patient brain images. Many images of the brain are clinically unreadable because of the misalignment of the patient's head in the scanner. We proposed an algorithm that represents the brain volume as a re-parameterized surface point cloud where each location has been parameterized by its elevation (latitude), azimuth (longitude) and radius. The removal of the interior contents of the brain makes this approach perform robustly in the presence of the brain pathologies, e.g. tumor, stroke and bleed. Thus, we decompose the symmetry plane computation problem into a surface matching routine. The search for the best matching surface is implemented in a multi-resolution paradigm so as to decrease computational time considerably. Spatial affine transform then is performed to rotate the 3D brain images and align them within the coordinate system of the scanner. The corrected brain volume is re-sliced such that each planar image represents the brain at the same axial level.
机译:我们提出了一种新颖的方法来自动计算对称平面并纠正患者大脑图像的3D方向。由于扫描仪中患者头部未对准,因此许多大脑图像在临床上均无法读取。我们提出了一种将大脑体积表示为重新参数化的表面点云的算法,其中每个位置都已通过其海拔高度(纬度),方位角(经度)和半径进行了参数化。大脑内部内容的去除使这种方法在存在脑部疾病(例如脑部疾病)的情况下表现出色。肿瘤,中风和出血。因此,我们将对称平面计算问题分解为表面匹配例程。在多分辨率范例中实现了对最佳匹配曲面的搜索,从而大大减少了计算时间。然后执行空间仿射变换来旋转3D脑部图像,并将其在扫描仪的坐标系内对齐。重新校正校正后的大脑体积,以使每个平面图像在相同的轴向水平上代表大脑。

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