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Automatic segmentation of Optic Pathway Gliomas in MRI

机译:MRI视神经胶质瘤的自动分割

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This paper presents an automatic method for the segmentation of Optic Pathway Gliomas (OPGs) from multi-spectral MRI datasets. The method starts with the automatic localization of the OPG and its core with an anatomical tumor atlas followed by a binary voxel classification with a probabilistic tissue model whose parameters are estimated from MR images. The method effectively incorporates prior location, shape, and intensity information to accurately identify the sharp OPG boundaries and to delineate in a consistent and repeatable manner the OPG contours that cannot be clearly distinguished on conventional MR images. Our experimental study on 15 datasets yield a mean surface distance error of 0.67mm and mean volume overlap difference of 28.6% as compared to manual segmentation by an expert radiologist. To the best of our knowledge, this is the first method that addresses automatic OPG segmentation.
机译:本文提出了一种从多光谱MRI数据集中分割光学通路胶质瘤(OPG)的自动方法。该方法开始于将OPG及其核心自动定位为解剖肿瘤图谱,然后通过具有概率组织模型的二元体素分类,该概率组织模型的参数是从MR图像估计的。该方法有效地结合了先前的位置,形状和强度信息,以准确地识别出锋利的OPG边界,并以一致且可重复的方式描绘出在常规MR图像上无法清晰地区分的OPG轮廓。我们对15个数据集的实验研究得出的平均表面距离误差为0.67mm,而平均体积重叠差为28.6%,这与放射线专家进行的手动分割相比。据我们所知,这是解决自动OPG分割的第一种方法。

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