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Hybrid two-stage active contour method with region and edge information for intensity inhomogeneous image segmentation

机译:具有区域和边缘信息的混合式两级主动轮廓方法,用于强度不均匀图像分割

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摘要

This paper presents a novel two-stage image segmentation method using an edge scaled energy functional based on local and global information for intensity inhomogeneous image segmentation. In the first stage, we integrate global intensity term with a geodesic edge term, which produces a preliminary rough segmentation result. Thereafter, by taking final contour of the first stage as initial contour, we begin second stage segmentation process by integrating local intensity term with geodesic edge term to get final segmentation result. Due to the suitable initialization from the first stage, the second stage precisely achieves desirable segmentation result for inhomogeneous image segmentation. Two stage segmentation technique not only increases the accuracy but also eliminates the problem of initial contour existed in traditional local segmentation methods. The energy function of the proposed method uses both global and local terms incorporated with compacted geodesic edge term in an additive fashion which uses image gradient information to delineate obscured boundaries of objects inside an image. A Gaussian kernel is adapted for the regularization of the level set function and to avoid an expensive re-initialization. The experiments were carried out on synthetic and real images. Quantitative validations were performed on Multimodal Brain Tumor Image Segmentation Benchmark (BRATS) 2015 and PH2 skin lesion database. The visual and quantitative comparisons will demonstrate the efficiency of the proposed method.
机译:本文介绍了一种新颖的两级图像分割方法,该方法使用基于局部和全局信息的边缘缩放能量函数的强度不均匀图像分割。在第一阶段,我们将全局强度术语与测地边缘术语集成,它产生初步粗略分割结果。此后,通过将第一阶段的最终轮廓作为初始轮廓,我们通过将局部强度术语与测地边缘术语集成到获得最终分割结果来开始第二阶段分割过程。由于从第一阶段的合适初始化,第二阶段精确地实现了不均匀图像分割的所需分割结果。两个阶段分割技术不仅提高了准确性,而且还消除了传统局部分段方法中存在的初始轮廓的问题。所提出的方法的能量函数使用加入方式与压实的测地边缘术语的全局和本地术语以添加方式使用图像梯度信息来描绘图像内部物体的遮挡边界。高斯内核适用于级别集功能的正则化,并避免昂贵的重新初始化。实验是对合成和真实图像进行的。对多模式脑肿瘤图像分割基准测试(BRATS)2015和PH2皮肤病变数据库进行定量验证。视觉和定量比较将展示所提出的方法的效率。

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