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A New Finsler Minimal Path Model with Curvature Penalization for Image Segmentation and Closed Contour Detection

机译:带有曲率惩罚的Finsler最小路径新模型用于图像分割和闭合轮廓检测

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In this paper, we propose a new curvature penalized minimal path model for image segmentation via closed contour detection based on the weighted Euler elastica curves, firstly introduced to the field of computer vision in [22]. Our image segmentation method extracts a collection of curvature penalized minimal geodesics, concatenated to form a closed contour, by connecting a set of user-specified points. Globally optimal minimal paths can be computed by solving an Eikonal equation. This first order PDE is traditionally regarded as unable to penalize curvature, which is related to the path acceleration in active contour models. We introduce here a new approach that enables finding a global minimum of the geodesic energy including a curvature term. We achieve this through the use of a novel Finsler metric adding to the image domain the orientation as an extra space dimension. This metric is non-Riemannian and asymmetric, defined on an orientation lifted space, incorporating the curvature penalty in the geodesic energy. Experiments show that the proposed Finsler minimal path model indeed outperforms state-of-the-art minimal path models in both synthetic and real images.
机译:在本文中,我们基于加权的欧拉弹性曲线提出了一种新的曲率损失最小路径模型,用于基于闭合轮廓检测的图像分割,该模型首先在[22]中引入计算机视觉领域。我们的图像分割方法通过连接一组用户指定的点来提取弯曲最小化测地线的集合,这些集合串联起来形成闭合轮廓。全局最优的最小路径可以通过求解一个Eikonal方程来计算。传统上认为这种一阶PDE无法惩罚曲率,这与活动轮廓模型中的路径加速度有关。我们在这里介绍一种新方法,该方法可以找到包括曲率项在内的测地能量的整体最小值。我们通过使用新颖的Finsler度量来实现此目的,该度量将图像方向添加为额外的空间尺寸。该度量是非黎曼不对称的,定义在定向提升的空间上,并将曲率损失纳入了测地能量中。实验表明,所提出的Finsler最小路径模型的确在综合图像和真实图像中都优于最新的最小路径模型。

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