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Bilateral smoothing of gradient vector field and application to image segmentation

机译:梯度矢量场的双边平滑及其在图像分割中的应用

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Medical image segmentation finds application in computer-aided diagnosis, computer-guided surgery, measuring tissue volumes, locating tumors, and pathologies. One approach to segmentation is to use active contours or snakes. Active contours start from an initialization (often manually specified) and are guided by image-dependent forces to the object boundary. Snakes may also be guided by gradient vector fields associated with an image. The first main result in this direction is that of Xu and Prince, who proposed the notion of gradient vector flow (GVF), which is computed iteratively. We propose a new formalism to compute the vector flow based on the notion of bilateral filtering of the gradient field associated with the edge map — we refer to it as the bilateral vector flow (BVF). The range kernel definition that we employ is different from the one employed in the standard Gaussian bilateral filter. The advantage of the BVF formalism is that smooth gradient vector flow fields with enhanced edge information can be computed noniteratively. The quality of image segmentation turned out to be on par with that obtained using the GVF and in some cases better than the GVF.
机译:医学图像分割可用于计算机辅助诊断,计算机指导的手术,测量组织体积,定位肿瘤和病理。分割的一种方法是使用活动轮廓或蛇形。活动轮廓从初始化(通常是手动指定)开始,并由与图像有关的力引导到对象边界。蛇也可以由与图像相关联的梯度矢量场引导。这个方向上的第一个主要结果是徐和普林斯的,他们提出了梯度矢量流(GVF)的概念,该概念是通过迭代计算的。我们提出了一种新的形式主义,以基于与边图相关联的梯度场的双边滤波的概念来计算矢量流-我们将其称为双边矢量流(BVF)。我们采用的范围内核定义与标准高斯双边滤波器中使用的范围内核定义不同。 BVF形式主义的优点是可以非迭代地计算具有增强的边缘信息的平滑梯度矢量流场。图像分割的质量与使用GVF获得的图像分割质量相当,并且在某些情况下要优于GVF。

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