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Interactive surface-guided segmentation of brain MRI data

机译:MRI数据的交互式表面引导分割

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MRI segmentation is a process of deriving semantic information from volume data. For brain MRI data, segmentation is initially performed at a voxel level and then continued at a brain surface level by generating its approximation. While successful most of the time, automated brain segmentation may leave errors which have to be removed interactively by editing individual 2D slices. We propose an approach for correcting these segmentation errors in 3D modeling space. We actively use the brain surface, which is estimated (potentially wrongly) in the automated FreeSurfer segmentation pipeline. It allows us to work with the whole data set at once, utilizing the context information and correcting several slices simultaneously. Proposed heuristic editing support and automatic visual highlighting of potential error locations allow us to substantially reduce the segmentation time. The paper describes the implementation principles of the proposed software tool and illustrates its application.
机译:MRI分割是从体数据中导出语义信息的过程。对于脑部MRI数据,首先在体素级别执行分割,然后通过生成其近似值在脑表面级别继续进行分割。尽管大多数时候都是成功的,但自动脑部分割可能会留下错误,必须通过编辑单个2D切片以交互方式消除这些错误。我们提出了一种在3D建模空间中纠正这些细分错误的方法。我们会积极使用大脑表面,这是在自动FreeSurfer细分管道中估算出来的(可能是错误地)。它使我们能够立即使用整个数据集,利用上下文信息并同时校正多个切片。拟议的启发式编辑支持和对潜在错误位置的自动视觉突出显示使我们能够大大减少分割时间。本文描述了所提出的软件工具的实现原理并说明了其应用。

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