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A Framework of Vertebra Segmentation Using the Active Shape Model-Based Approach

机译:基于主动形状模型的椎骨分割框架

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We propose a medical image segmentation approach based on the Active Shape Model theory. We apply this method for cervical vertebra detection. The main advantage of this approach is the application of a statistical model created after a training stage. Thus, the knowledge and interaction of the domain expert intervene in this approach. Our application allows the use of two different models, that is, a global one (with several vertebrae) and a local one (with a single vertebra). Two modes of segmentation are also proposed: manual and semiautomatic. For the manual mode, only two points are selected by the user on a given image. The first point needs to be close to the lower anterior corner of the last vertebra and the second near the upper anterior corner of the first vertebra. These two points are required to initialize the segmentation process. We propose to use the Harris corner detector combined with three successive filters to carry out the semiautomatic process. The results obtained on a large set of X-ray images are very promising.
机译:我们提出基于主动形状模型理论的医学图像分割方法。我们将这种方法用于颈椎检测。这种方法的主要优点是在训练阶段之后创建的统计模型的应用。因此,领域专家的知识和互动介入了这种方法。我们的应用程序允许使用两种不同的模型,即全局模型(具有多个椎骨)和局部模型(具有单个椎骨)。还提出了两种分割模式:手动和半自动。对于手动模式,用户在给定图像上仅选择两个点。第一点必须靠近最后一个椎骨的下前角,第二个点必须靠近第一个椎骨的上前角。这两个点是初始化分段过程所必需的。我们建议结合使用哈里斯拐角检测器和三个连续的滤波器来执行半自动过程。在大量的X射线图像上获得的结果非常有希望。

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