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首页> 外文期刊>Journal of Mathematical Analysis and Applications >Split Bregman method for minimization of improved active contour model combining local and global information dynamically
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Split Bregman method for minimization of improved active contour model combining local and global information dynamically

机译:分裂Bregman方法最小化动态结合局部和全局信息的改进主动轮廓模型

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摘要

This paper presents an improved active contour model by combining the Chan-Vese model, the region-scalable fitting energy model, the globally convex segmentation method and the split Bregman method. A weight function that varies with the location of a given image is used to control the influence of the local and global information dynamically. We first present our model in a 2-phase level set formulation and then extend it to a multi-phase formulation. By taking the local and global information into consideration together, our model can segment more general images, especially images with intensity inhomogeneity. Our model has been applied to synthetic and real images with promising results. Numerical results show the advantages of our model compared with other models. The accuracy and efficiency are demonstrated by the numerical results. Besides, our model is robust in the presence of noise.
机译:通过结合Chan-Vese模型,区域可缩放拟合能量模型,全局凸分割方法和split Bregman方法,提出了一种改进的主动轮廓模型。随给定图像的位置而变化的权重函数用于动态控制本地信息和全局信息的影响。我们首先以2相水平集公式表示模型,然后将其扩展为多相公式。通过将本地和全局信息一起考虑,我们的模型可以分割更通用的图像,尤其是强度不均匀的图像。我们的模型已应用于合成图像和真实图像,效果令人满意。数值结果表明我们的模型与其他模型相比具有优势。数值结果证明了精度和效率。此外,我们的模型在存在噪声的情况下也很健壮。

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