首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Local average fitting active contour model with thresholding for noisy image segmentation
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Local average fitting active contour model with thresholding for noisy image segmentation

机译:具有阈值的局部平均拟合活动轮廓模型,用于噪声图像分割

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摘要

In this paper, an active contours model using neighborhood average fitting with thresholding is proposed for noisy images segmentation. Energy of the proposed model is formulated according to the difference between the local average and global region information. For images corrupted by noise, the neighborhood average method is capable of denoising at the expense of blurring images to some extent. However, problems that appear with average method can be settled by thresholding in this work. Minimization of the energy associated with the active contour model is then implemented in a variational level set framework. Moreover, to eliminate the need for costly re-initialization procedure, a reaction-diffusion method is adopted to regularize the level set function for stability. Experimental results on synthetic and real images validate the effectiveness of the proposed approach. (C) 2015 Elsevier GmbH. All rights reserved.
机译:在本文中,提出了一种基于邻域平均拟合和阈值的主动轮廓模型,用于噪声图像的分割。根据局部平均值与全局区域信息之间的差异来制定模型的能量。对于被噪声破坏的图像,邻域平均法能够以一定程度的模糊图像为代价进行去噪。但是,可以通过设定阈值来解决平均法中出现的问题。然后,在可变水平集框架中实现与活动轮廓模型关联的能量最小化。此外,为了消除昂贵的重新初始化过程的需要,采用了一种反应扩散方法来调整水平设定函数的稳定性。在合成和真实图像上的实验结果证明了该方法的有效性。 (C)2015 Elsevier GmbH。版权所有。

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