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Efficient cellular automaton segmentation supervised by pyramid on medical volumetric data and real time implementation with graphics processing unit

机译:由金字塔对医疗体数据进行高效的细胞自动机分割,并通过图形处理单元实时实现

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In surgery simulation, the extracted tissue data can be operated repeatedly in a Virtual-reality (VR) system which provides a good alternative to classical training method. Fully automated segmentation techniques cannot guarantee the efficiency and precision in general case. This paper describes a user interactive segmentation method: given a labeled 2D image plane in Multi-Planar Reformation (MPR), the rest tissues are segmented automatically by a cellular automaton in multi-scale domain. Labels image generated in higher level Gaussian pyramid can be extended to lower level ones according to selected resolution. An edge indicator function is also set to avoid over-segmentation in Laplacian pyramid. The evolution can be observed and guided with volume rendering results. The proposed method shows the merits of higher precision, real time response in GPU framework and few interactions are required.
机译:在手术模拟中,可以在虚拟现实(VR)系统中重复操作提取的组织数据,这是传统训练方法的良好替代方案。在一般情况下,全自动分割技术无法保证效率和精度。本文介绍了一种用户交互式的分割方法:在多平面重构(MPR)中给定标记的2D图像平面后,其余的组织将通过细胞自动机在多尺度域中自动分割。可以根据选定的分辨率将在较高级别的高斯金字塔中生成的标签图像扩展为较低级别的图像。还设置了边缘指示器功能,以避免拉普拉斯金字塔中的过度分割。可以观察到这种演变并以体积渲染结果为指导。该方法具有较高的精度,在GPU框架中具有实时响应的优点,并且几乎不需要交互。

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