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An efficient bi-convex fuzzy variational image segmentation method

机译:一种有效的双凸模糊变分图像分割方法

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摘要

Image segmentation is an important and well-known ill-posed inverse problem in computer vision. It is a process of assigning a label to each pixel in a digital image so that pixels with the same label have similar characteristics. Chan-Vese model which belongs to partial differential equation approaches has been widely used in image segmentation tasks. Chan-Vese model has to optimize a non-convex problem. It usually converges to local minima. Furthermore, the length penalty item which is critical to the final results of Chan-Vese model makes the model be sensitive to parameter settings and costly in computation. In order to overcome these drawbacks, a novel bi-convex fuzzy variational image segmentation method is proposed. It is unique in two aspects: (I) introducing fuzzy logic to construct a bi-convex object function in order to simplify the procedure of finding global optima and (2) efficiently combining the length penalty item and the numerical remedy method to get better results and to bring robustness to parameter settings and greatly reduce computation costs. Experiments on synthetic, natural, medical and radar images have visually or quantitatively validated the superiorities of the proposed method compared with five state-of-the-art algorithms. (C) 2014 Elsevier Inc. All rights reserved.
机译:图像分割是计算机视觉中一个重要且众所周知的不适定逆问题。这是为数字图像中的每个像素分配标签,以使具有相同标签的像素具有相似特性的过程。属于偏微分方程方法的Chan-Vese模型已广泛应用于图像分割任务中。 Chan-Vese模型必须优化非凸问题。它通常收敛于局部最小值。此外,对于Chan-Vese模型的最终结果至关重要的长度惩罚项使该模型对参数设置敏感,并且计算成本很高。为了克服这些缺点,提出了一种新颖的双凸模糊变分图像分割方法。它在两个方面是独特的:(I)引入模糊逻辑以构造双凸对象函数,以简化寻找全局最优值的过程;(2)有效地结合长度惩罚项和数值补救方法以获得更好的结果并为参数设置带来稳定性,并大大降低了计算成本。与五种最新算法相比,合成,自然,医学和雷达图像的实验已经在视觉上或定量上验证了所提出方法的优越性。 (C)2014 Elsevier Inc.保留所有权利。

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