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An Improved Integrated Active Contour Model without Re-initialization for Vector-valued Images Segmentation

机译:一种改进的集成有源轮廓模型,无需重新初始化向量值图像分割

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In this paper, an improved variational formulation for active contours model is introduced to force level set function to become fast and stably close to signed distance function, which can completely eliminate the need of the costly re-initialization procedure. A restriction item that is a nonlinear heat equation with balanced diffusion rate is attached to variational Integrated Active Contour (IAC) model on the basis of analysis on regions and edges information from all channels of the valued-vector images, so that the level set evolution segmentation process becomes fast and stable. In addition, more efficient discretization method with spatial rotation-invariance gradient and divergence operator is proposed as numerical implementation scheme. Finally, the experiments on some images have demonstrated the efficiency, accuracy and robustness of the proposed method.
机译:在本文中,引入了用于活性轮廓模型的改进的变分制剂,以力水平设定功能变得快速且稳定地接近符号距离功能,这可以完全消除昂贵的重新初始化过程的需要。作为具有平衡扩散速率的非线性热方程的限制项,基于来自值矢量图像的所有通道的区域和边缘信息的分析,附加到具有平衡的扩散速率的变化集成有源轮廓(IAC)模型,使得级别设置演化分割过程变得快速稳定。此外,提出了具有空间旋转不变性梯度和发散操作者的更有效的离散化方法作为数值实现方案。最后,对某些图像的实验表明了所提出的方法的效率,准确性和鲁棒性。

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