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A new binary level set model using L_0 regularizer for image segmentation

机译:一种新的二进制级别设置模型,使用L_0规范器进行图像分割

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摘要

In this paper, a new model of image segmentation is proposed by considering L_0 regularizer term. A new energy function is formulated by utilizing Local Gaussian Distribution model based on binary level set function followed by introducing a L_0 gradient regularizer as regularizing term. Instead of zero level set, the binary level set function is applied to differentiate between foreground and background regions. The regularization function is used to calculate the interfaces between foreground sub-regions and regulariza-tion term L_0 which helps to evolve the curve. The proposed energy function is solved using minimization algorithm to achieve promising results in terms of segmentation accuracy. The different sets of experiments are performed on real and medical images. The proposed model provides higher segmentation accuracy results in less computational time compared to the other state-of-the-art models. Further, the results are found to be superior as compared to other existing models in terms of robustness to noise and intensity inhomogeneity.
机译:在本文中,通过考虑L_0规范器术语来提出一种新的图像分割模型。通过利用基于二进制级别集功能的本地高斯分布模型来制定新的能量功能,然后将L_0梯度规范器引入正规术语。应用二进制级别集功能而不是零级别集合来区分前景和后台区域。正则化函数用于计算前景子区域和常规提出术语L_0之间的接口,有助于演变曲线。利用最小化算法解决了所提出的能量函数,以实现对分割精度方面的有希望的结果。不同的实验组对实际和医学图像进行。与其他最先进的模型相比,所提出的模型提供更高的分割精度导致计算时间较少。此外,在稳健性与噪声和强度不均匀性方面,结果发现结果是优越的。

著录项

  • 来源
    《Signal processing》 |2020年第9期|107603.1-107603.13|共13页
  • 作者

    Soumen Biswas; Ranjay Hazra;

  • 作者单位

    Department of Electronics and Instrumentation Engineering National Institute of Technology Silchar Assam 788010 India;

    Department of Electronics and Instrumentation Engineering National Institute of Technology Silchar Assam 788010 India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Image segmentation; LCD model; L_0 regularizer;

    机译:图像分割;LCD模型;L_0规范器;

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