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Segmentation of MRI brain images by incorporating intensity inhomogeneity and spatial information using probabilistic fuzzy c-means clustering algorithm

机译:通过使用概率模糊c均值聚类算法结合强度不均匀性和空间信息对MRI脑图像进行分割

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Segmentation of magnetic resonance imaging (MRI) brain images is an important task to analyze tissue structures of a human brain. Due to improper image acquisition systems, MRI images are generally corrupted by intensity inhomogeneity (IIH) or intensity nonuniformity (INU). Conventional methods try to segment MRI images using only spatial information about the distribution of pixel intensities and are highly sensitive to noise and the IIH or INU. This paper presents a method to segment MRI brain images by considering the INU and spatial information using fuzzy C-means (FCM) clustering algorithm. Firstly, the INU of MRI brain image is corrected using fusion of Gaussian surfaces. The individual Gaussian surface is estimated independently over the different homogeneous regions by considering its center as the center of mass of the respective homogeneous region. Secondly, the IIH corrected image is segmented using probabilistic FCM algorithm, which considers spatial features of image pixels. The experiments using 3D synthetic phantoms and real-patient MRI brain images reveal that the proposed method performs satisfactorily.
机译:磁共振成像(MRI)脑图像的分割是分析人脑组织结构的重要任务。由于不正确的图像采集系统,MRI图像通常会因强度不均匀(IIH)或强度不均匀(INU)而损坏。常规方法尝试仅使用有关像素强度分布的空间信息对MRI图像进行分割,并且对噪声和IIH或INU高度敏感。本文提出了一种使用模糊C均值(FCM)聚类算法考虑INU和空间信息来分割MRI脑图像的方法。首先,使用高斯表面融合校正MRI脑图像的INU。通过将单个高斯表面的中心视为各个均匀区域的质心,可以独立地估计各个高斯表面。其次,利用概率FCM算法对IIH校正后的图像进行分割,该算法考虑了图像像素的空间特征。使用3D合成体模和真实的MRI大脑图像进行的实验表明,该方法的效果令人满意。

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