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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Active contour model based on local and global Gaussian fitting energy for medical image segmentation
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Active contour model based on local and global Gaussian fitting energy for medical image segmentation

机译:基于本地和全球高斯贴合能量的医学图像分割的主动轮廓模型

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摘要

An improved active contour model is proposed for medical image segmentation in this paper, which integrates the local and global intensity information of the image effectively, with the local fitting term, the active model can attract the contour to stop at the true image edges, the global fitting term is based on the statistical numerical function and level set method. by subtracting the Gaussian convolution image with the original image, the difference images is used to replace the original image in the evolution equation, and the average intensity of the difference image inside and outside the contour is also used to substitute the average intensity of the original image during the level set evolutionary process, the experiments shows the proposed method can have a better segmentation performance with less iterations while dealing with the medical images with intensity inhomogeneity. (C) 2018 Elsevier GmbH. All rights reserved.
机译:本文提出了一种改进的有效轮廓模型,用于有效地集成了图像的本地和全局强度信息,随着本地拟合项,有效模型可以吸引轮廓以停止在真实图像边缘处, 全球拟合项基于统计数值函数和级别集方法。 通过用原始图像中减去高斯卷积图像,差异图像用于替换进化方程中的原始图像,并且轮廓内外差异图像的平均强度也用于替换原始的平均强度 图像在级别设置进化过程中,实验表明,所提出的方法可以具有更好的分割性能,同时处理具有强度不均匀性的医学图像的迭代。 (c)2018年Elsevier GmbH。 版权所有。

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