首页> 外文会议>International Conference on Medical Image Computing and Computer-Assisted Intervention;MICCAI 2008 >Automatic Labeling of Anatomical Structures in MR FastView Images Using a Statistical Atlas
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Automatic Labeling of Anatomical Structures in MR FastView Images Using a Statistical Atlas

机译:使用统计图集自动标记MR FastView图像中的解剖结构

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We present a method for fast and automatic labeling of anatomical structures in MR Fast View localizer images, which can be useful for automatic MR examination planning. Fast View is a modern MR protocol, that provides larger planning fields of view than previously available with isotropic 3D resolution by scanning during continuous movement of the patient table. Hence, full 3D information is obtained within short acquisition time. Anatomical labeling is done by registering the images to a statistical atlas created from training image data beforehand. The statistical atlas consists of a statistical model of deformation and a statistical model of grey value appearance. It is generated by non-rigid registration and principal component analysis of the resulting deformation fields and registered images. Labeling of an unseen FastView image is done by non-rigid registration of the image to the statistical atlas and propagating the labels from the atlas to the image. In our implementation, the statistical models of deformation and appearance are both implemented on the GPU (graphics processing unit), which permits computing the atlas based labeling using GPU hardware acceleration. The running times of about 10 to 30 seconds are of the same magnitude as the image acquisition itself, which allows for practical usage in clinical MR routine.
机译:我们提出了一种在MR Fast View定位器图像中快速自动标记解剖结构的方法,该方法可用于自动MR检查计划。快速查看是一种现代的MR协议,通过在病床连续移动过程中进行扫描,可以提供比以前具有各向同性3D分辨率的更大的计划视野。因此,可以在较短的采集时间内获得完整的3D信息。解剖标记是通过将图像注册到事先由训练图像数据创建的统计图集来完成的。统计图集由变形的统计模型和灰度值外观的统计模型组成。它是通过非刚性配准和主成分分析生成的变形场和配准图像生成的。通过将图像非刚性注册到统计图集并将标签从图集传播到图像,可以完成对看不见的FastView图像的标记。在我们的实现中,变形和外观的统计模型都在GPU(图形处理单元)上实现,这允许使用GPU硬件加速来计算基于图集的标记。大约10到30秒的运行时间与图像采集本身的幅度相同,这允许在临床MR例行程序中实际使用。

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