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基于模糊知识和改进的种子区域生长的多光谱磁共振图像分割。

Multispectral MR images segmentation based on fuzzy knowledge and modified seeded region growing.

机构信息

Department of Electrical Engineering, National Central University, Jhongli City, Taiwan 320, R.O.C.

出版信息

Magn Reson Imaging. 2012 Feb;30(2):230-46. doi: 10.1016/j.mri.2011.09.008. Epub 2011 Nov 30.

Abstract

Magnetic resonance imaging (MRI) is a valuable diagnostic tool in medical science due to its capability for soft-tissue characterization and three-dimensional visualization. One potential application of MRI in clinical practice is brain parenchyma classification and segmentation. Based on fuzzy knowledge and modified seeded region growing, this work proposes a novel image segmentation method, called Fuzzy Knowledge-Based Seeded Region Growing (FKSRG), for multispectral MR images. In this work, fuzzy knowledge includes the fuzzy edge, fuzzy similarity and fuzzy distance, which are obtained from relationships between pixels in multispectral MR images and are applied to the modified seeded regions growing process. In conventional regions merging, the final number of regions is unknown. Therefore, a Target Generation Process is proposed and applied to support conventional regions merging, such that the FKSRG method does not over- or undersegment images. Finally, two image sets, namely, computer-generated phantom images and real MR images, are used in experiments to assess the effectiveness of the proposed FKSRG method. Experimental results demonstrate that the FKSRG method segments multispectral MR images much more effectively than the Functional MRI of the Brain Automated Segmentation Tool, K-means and Support Vector Machine methods.

摘要

磁共振成像(MRI)由于其软组织特征化和三维可视化的能力,是医学科学中一种有价值的诊断工具。MRI 在临床实践中的一个潜在应用是脑实质分类和分割。基于模糊知识和改进的种子区域生长,这项工作提出了一种新的图像分割方法,称为基于模糊知识的种子区域生长(FKSRG),用于多谱磁共振图像。在这项工作中,模糊知识包括模糊边缘、模糊相似性和模糊距离,这些是从多谱磁共振图像中像素之间的关系中获得的,并应用于改进的种子区域生长过程中。在传统的区域合并中,最终的区域数量是未知的。因此,提出了目标生成过程并应用于支持传统的区域合并,使得 FKSRG 方法不会过度或欠分割图像。最后,使用两个图像集,即计算机生成的幻影图像和真实的磁共振图像,进行实验以评估所提出的 FKSRG 方法的有效性。实验结果表明,FKSRG 方法比脑功能磁共振自动分割工具、K-均值和支持向量机方法更有效地分割多谱磁共振图像。

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