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An adaptive-scale active contour model for inhomogeneous image segmentation and bias field estimation

机译:用于不均匀图像分割和偏置场估计的自适应级活动轮廓模型

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摘要

The active contour model is a widely used method for image segmentation. Most existing active contour models yield poor performance when applied to images with severe intensity inhomogeneity. To address this issue, we propose an adaptive-scale active contour model (ASACM) based on image entropy and semi-naive Bayesian classifier, which achieves simultaneous segmentation and bias field estimation for images with severe intensity inhomogeneity. Firstly, an adaptive scale operator is constructed to adaptively adjust the scale of the ASACM according to the degree of the intensity inhomogeneity. Secondly, we define an improved bias field estimation term via distributing a dependent-membership function for each pixel to estimate the bias field in severe inhomogeneous images. Thirdly, a new penalty term is proposed using piecewise polynomial, which helps to avoid time-consuming re-initialization process and instability in conventional penalty term. The experimental results demonstrate that the proposed ASACM consistently outperforms many state-of-the-art models in segmentation accuracy, segmentation efficiency and robustness w.r.t initialization and noise. (C) 2018 Elsevier Ltd. All rights reserved.
机译:主动轮廓模型是一种广泛使用的图像分割方法。当应用于具有严重强度不均匀性的图像时,大多数现有的主动轮廓模型产生差的性能。为了解决这个问题,我们提出了一种基于图像熵和半天真贝叶斯分类器的自适应级活动轮廓模型(ASACM),其实现了具有严重强度不均匀性的图像的同时分割和偏置场估计。首先,构造自适应刻度操作员以根据强度不均匀性的程度自适应地调节浅棱镜的比例。其次,我们通过向每个像素分发依赖的成员资格函数来定义改进的偏置场估计术语,以估计严重的不均匀图像中的偏置场。第三,使用分段多项式提出了一种新的罚款项,有助于避免耗时的重新初始化过程和传统惩罚项中的不稳定性。实验结果表明,所提出的ASACM在分割精度,分割效率和鲁棒性W.R.T初始化和噪声中始终如一地优于许多最先进的模型。 (c)2018年elestvier有限公司保留所有权利。

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