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Automatic Estimation of the Number of Segmentation Groups Based on MI

机译:基于MI的分割群数量自动估计。

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摘要

Clustering is important in medical imaging segmentation. The number of segmentation groups is often needed as an initial condition, but is often unknown. We propose a method to estimate the number of segmentation groups based on mutual information, anisotropic diffusion model and class-adaptive Gauss-Markov random fields. Initially, anisotropic diffusion is used to decrease the image noise. Subsequently, the class-adaptive Gauss-Markov modeling and mutual information are used to determine the number of segmentation groups. This general formulation enables the method to easily adapt to various kinds of medical images and the associated acquisition artifacts. Experiments on simulated, and multi-model data demonstrate the advantages of the method over the current state-of-the-art approaches.
机译:聚类在医学成像分割中很重要。分割组的数量通常需要作为初始条件,但通常是未知的。我们提出了一种基于互信息,各向异性扩散模型和类别自适应高斯-马尔可夫随机场来估计分割群数量的方法。最初,使用各向异性扩散来减少图像噪声。随后,使用类别自适应的高斯-马尔可夫建模和互信息来确定分割组的数量。该一般公式使该方法能够轻松地适应各种医学图像和相关的采集伪像。在模拟和多模型数据上进行的实验证明了该方法相对于当前最先进方法的优势。

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  • 来源
  • 会议地点 Las Palmas de Gran Canaria(ES);Las Palmas de Gran Canaria(ES)
  • 作者单位

    Department of Computer Science, Aberystwyth University, UK,Faculty of Information and Control Engineering, Shenyang Jianzhu University, Liaoning, China;

    Network Information Center of the Sixth Affiliated Hospital of Sun Yat-sen University, Guangzhou, China,Key Laboratory of Medical Image Processing, Southern Medical University, Guangzhou, China;

    Department of Computer Science, Aberystwyth University, UK;

    Department of Computer Science, Aberystwyth University, UK;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 信息处理(信息加工);
  • 关键词

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