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FCM-Based Method for MRI Segmentation of Anatomical Structure

机译:基于FCM的解剖结构MRI分割方法

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Fuzzy C-means (FCM) has been widely applied to segmentation of medical images, especially MRI images for identifying living organs and supporting medical diagnosis. However, in practice, this method is too sensitive to image noises. Then, many methods have been proposed to improve the objective function of FCM by adding a penalty term to it. One drawback of these methods is that they can determine neither the appropriate size of observation window for each pixel of interest for incorporating spatial information, nor the suitable importance coefficient of the penalty term. Moreover, the modification of the objective function of FCM often causes additional complex derivations. In this paper, we develop a new FCM-based method for medical MRI image segmentation. This method permits to dynamically determine the optimal size of observation window for each pixel of interest without adding any penalty term. Moreover, a n-dimensional feature vector including both local and global spatial information between neighboring pixels is generated to describe each pixel in the objective function. And specialized a priori knowledge is integrated into the segmentation procedure in order to control the application of FCM for tissue classification of thigh. The effectiveness and the robustness of the proposed method have been validated by real MRI image of thigh.
机译:模糊C型方式(FCM)已被广泛应用于医学图像的分割,尤其是用于识别生活机器和支持医学诊断的MRI图像。然而,在实践中,这种方法对图像噪声太敏感。然后,已经提出了许多方法来通过向其增加罚款来改善FCM的目标函数。这些方法的一个缺点是它们可以针对结合空间信息的每个感兴趣像素来确定适当的观察窗口大小,也不是惩罚项的合适重要系数。此外,FCM的目标函数的修改通常导致额外的复杂衍生。在本文中,我们开发了一种新的基于FCM的医学MRI图像分割方法。该方法允许动态地确定每个感兴趣像素的观察窗口的最佳大小而不添加任何惩罚项。此外,生成包括相邻像素之间的局部和全局空间信息的N维特征向量以描述目标函数中的每个像素。并专业化先验知识被集成到分割程序中,以控制FCM对大腿组织分类的应用。所提出的方法的有效性和稳健性已被大腿的真实MRI图像验证。

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