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A local Gaussian distribution fitting energy-based active contour model for image segmentation

机译:用于图像分割的局部高斯分布拟合能量基主动轮廓模型

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摘要

Intensity inhomogeneity and the bias field often occur in real-world images, which cause considerable difficulties in image segmentation. This paper presents a local region-based active contour model for segmentation of images with intensity inhomogeneity and simultaneous estimation of the bias field. In our model, the local image intensities and the bias field are described by the Gaussian distributions with different means and variances. A local Gaussian distribution fitting energy functional is defined on the image region, which combines the level set function and the bias field. Then, gradient flow equations and the bias field are derived for energy minimization. Due to the definition of local image intensities and the bias field, the proposed model is able to deal with intensity inhomogeneity and estimate the bias field. Experimental results on real images demonstrate that the proposed model has advantages over the other classical methods. (C) 2016 Elsevier Ltd. All rights reserved.
机译:强度不均匀性,并且偏置场经常发生在现实世界中,这在图像分割中导致相当大的困难。本文介绍了基于局部区域的主动轮廓模型,用于具有强度不均匀性的图像分割和偏置场的同时估计。在我们的模型中,本地图像强度和偏置字段由具有不同方式和差异的高斯分布来描述。在图像区域上限定了局部高斯分配拟合能量功能,其组合了电平集功能和偏置场。然后,导出梯度流动方程和偏置字段以用于能量最小化。由于局部图像强度和偏置字段的定义,所提出的模型能够处理强度的不均匀性并估计偏置场。实际图像的实验结果表明,所提出的模型具有优于其他经典方法的优势。 (c)2016 Elsevier Ltd.保留所有权利。

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