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Automated model-based vertebra detection, identification, and segmentation in CT images.

机译:基于自动模型的椎骨在CT图像中的检测,识别和分割。

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For many orthopaedic, neurological, and oncological applications, an exact segmentation of the vertebral column including an identification of each vertebra is essential. However, although bony structures show high contrast in CT images, the segmentation and labelling of individual vertebrae is challenging. In this paper, we present a comprehensive solution for automatically detecting, identifying, and segmenting vertebrae in CT images. A framework has been designed that takes an arbitrary CT image, e.g., head-neck, thorax, lumbar, or whole spine, as input and provides a segmentation in form of labelled triangulated vertebra surface models. In order to obtain a robust processing chain, profound prior knowledge is applied through the use of various kinds of models covering shape, gradient, and appearance information. The framework has been tested on 64 CT images even including pathologies. In 56 cases, it was successfully applied resulting in a final mean point-to-surface segmentation error of 1.12+/-1.04mm. One key issue is a reliable identification of vertebrae. For a single vertebra, we achieve an identification success of more than 70%. Increasing the number of available vertebrae leads to an increase in the identification rate reaching 100% if 16 or more vertebrae are shown in the image.
机译:对于许多骨科,神经病学和肿瘤学应用,必须对椎骨进行精确的分割,包括对每个椎骨的识别。然而,尽管骨结构在CT图像中显示出高对比度,但是单个椎骨的分割和标记仍具有挑战性。在本文中,我们提出了一种用于自动检测,识别和分割CT图像中的椎骨的综合解决方案。已经设计出一种框架,该框架以任意CT图像(例如头颈,胸部,腰部或整个脊柱)作为输入,并以标记的三角椎骨表面模型的形式提供分割。为了获得强大的处理链,通过使用涵盖形状,渐变和外观信息的各种模型来应用广泛的先验知识。该框架已经在64张CT图像上进行了测试,甚至包括病理在内。在56个案例中,成功应用了该算法,最终的平均点到表面分割误差为1.12 +/- 1.04mm。一个关键问题是椎骨的可靠识别。对于单个椎骨,我们的识别成功率超过70%。如果在图像中显示16个或更多的椎骨,则增加可用椎骨的数量会使识别率提高到100%。

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