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Method and system for automatic prostate segmentation in magnetic resonance images

机译:在磁共振图像中自动进行前列腺分割的方法和系统

摘要

A method and system for fully automatic segmentation the prostate in magnetic resonance (MR) image data is disclosed. Intensity normalization is performed on an MR image of a patient to adjust for global contrast changes between the MR image and other MR scans and to adjust for intensity variation within the MR image due to an endorectal coil used to acquire the MR image. An initial prostate segmentation in the MR image is obtained by aligning a learned statistical shape model of the prostate to the MR image using marginal space learning (MSL). The initial prostate segmentation is refined using one or more trained boundary classifiers.
机译:公开了一种用于在磁共振(MR)图像数据中自动分割前列腺的方法和系统。在患者的MR图像上执行强度归一化,以调整MR图像和其他MR扫描之间的总体对比度变化,并调整MR图像中由于用于获取MR图像的直肠内线圈而引起的强度变化。通过使用边际空间学习(MSL)将学习到的前列腺统计形状模型与MR图像对齐,可以在MR图像中获得初始前列腺分割。使用一个或多个训练有素的边界分类器细化初始前列腺分割。

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