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Using GVF Snake to Segment Liver from CT Images

机译:使用GVF Snake从CT图像分割肝脏

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Liver segmentation on computed tomography (CT) images is a challenging task because the images are often corrupted by noise and sampling artifacts. Thus we choose GVF snake to perform the task. Unfortunately, GVF snake use Gaussian function to generate the edge map. We find that this often cause new problems such as blur the liver boundary. To avoid this, a Canny edge detector is a good choice. Another problem during the segmentation is that GVF snake cannot works well with bad initialization, especially when encounter deep concavities. Fortunately we find that if the initial contour can cross the "bottleneck" of the deep concave, it can easily reach the boundary of liver. Thus an algorithm was developed to generate the initial contour automatically. We introduce a new "maximum force angle map" to evaluate the direction variability of the GVF forces. This map can mark up the "bottleneck " and give a trace to run through it. There may be other trace we do not need in the map. With the help of transcendental knowledge about the liver, such as the position, the shape and the Hounsfield unit range of the liver, the correct trace can be found. The contour of this trace is suitable for using as initial contour for GVF snake. By this means we finally segment the liver slice by slice correctly.
机译:计算机断层扫描(CT)图像上的肝脏分割是一个具有挑战性的任务,因为图像通常被噪声和采样伪像损坏。因此,我们选择GVF Snake来执行任务。不幸的是,GVF Snake使用高斯函数来生成边缘地图。我们发现这常常导致诸如肝脏边界的模糊等新问题。为避免这种情况,罐头边缘探测器是一个不错的选择。分割过程中的另一个问题是GVF Snake无法适用于初始化不良,尤其是在遇到深度凹凸时。幸运的是,如果初始轮廓可以过度凹入的“瓶颈”,它可以容易地达到肝脏的边界。因此,开发了一种算法以自动生成初始轮廓。我们介绍了一个新的“最大力角图”来评估GVF力的方向变异性。这张地图可以标记“瓶颈”,并给出轨迹贯穿它。可能有其他迹象我们在地图中不需要。在关于肝脏的超越知识的帮助下,例如肝脏的位置,形状和Hounsfield单元范围,可以找到正确的迹线。该迹线的轮廓适用于使用作为GVF蛇的初始轮廓。通过这意味着我们最终将肝脏切片正确正确分割。

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