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Automatic Left Ventricle Segmentation in Cardiac MRI via Level Set and Fuzzy C-Means

机译:心脏MRI自动左心室分割通过水平集和模糊C-MEAL

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Magnetic resonance imaging (MRI) has become an important assistant for clinical diagnosis of cardiac diseases which can not only observe the morphological structure of the heart, but also estimate the global and local function of myocardium. It is necessary to segment the left ventricle (LV) for the quantitative analysis of the global and regional cardiac function. However, cardiac MR images are usually intensity inhomogeneity, which results in a considerable challenge in left ventricle segmentation. In this research, we presented a synthetically automatic LV segmentation model on basis of modified level set and fuzzy C-means. We used level set method to delineate the endocardium and estimated the bias field which was used to decrease the intensity inhomogeneity of cardiac image. In addition, the fuzzy C-means algorithm and morphologic segmentation were applied in the corrected MR image to segment the epicardium. For the algorithm evaluation, we tested the short axis cardiac cine MR images published by MICCAI. The experiment results showed that our method obtained a good performance for both the endocardium and the epicardium segmentation. And, it was more effective to delineate epicardium in the corrected image than the original image.
机译:磁共振成像(MRI)已成为心脏病临床诊断的重要助手,这不仅可以观察心脏的形态结构,还估计心肌的全球和局部功能。有必要对左心室(LV)分段进行全局和区域心功能的定量分析。然而,心脏MR图像通常是强度的不均匀性,这导致左心室分割中具有相当大的挑战。在这项研究中,我们在改进的水平集和模糊C-ince的基础上介绍了一种综合自动LV分段模型。我们使用水平集方法来描绘心内膜,并估计用于降低心脏图像的强度不均匀性的偏置场。此外,在校正的MR图像中施加模糊C型算法和形态学分割以分割表皮。对于算法评估,我们测试了Miccai发布的短轴心脏凝胶MR图像。实验结果表明,我们的方法对心内膜和表皮细分来获得良好的性能。并且,在校正的图像中描绘表皮比原始图像更有效。

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