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Fuzzy C means integrated with spatial information and contrast enhancement for segmentation of MR brain images

机译:Fuzzy C表示集成了空间信息和对比度增强功能的MR脑图像分割

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This paper proposes a fully automated method for MR brain image segmentation into Gray Matter, White Matter and Cerebro-spinal Fluid. It is an extension of Fuzzy C Means Clustering Algorithm which overcomes its drawbacks, of sensitivity to noise and inhomogeneity. In the conventional FCM, the membership function is computed based on the Euclidean distance between the pixel and the cluster center. It does not take into consideration the spatial correlation among the neighboring pixels. This means that the membership values of adjacent pixels belonging to the same cluster may not have the same range of membership value due to the contamination of noise and hence misclassified. Hence, in the proposed method, the membership function is convolved with mean filter and thus the local spatial information is incorporated in the clustering process. The method further includes pixel re-labeling and contrast enhancement using non-linear mapping to improve the segmentation accuracy. The proposed method is applied to both simulated and real T1-weighted MR brain images from BrainWeb and IBSR database. Experiments show that there is an increase in segmentation accuracy of around 30% over the conventional methods and 6% over the state of the art methods.
机译:本文提出了一种将MR脑图像分割为灰度,白色和脑脊髓液的全自动方法。它是对模糊C均值聚类算法的扩展,克服了它的缺点,即对噪声敏感和不均匀。在传统的FCM中,隶属度函数是基于像素与聚类中心之间的欧式距离来计算的。它没有考虑相邻像素之间的空间相关性。这意味着,由于噪声的污染,属于同一簇的相邻像素的隶属度值可能不具有相同范围的隶属度值,因此分类错误。因此,在提出的方法中,隶属函数与均值滤波器进行卷积,从而将局部空间信息纳入聚类过程。该方法还包括使用非线性映射的像素重新标记和对比度增强,以提高分割精度。该方法适用于来自BrainWeb和IBSR数据库的模拟和真实T1加权MR脑图像。实验表明,与传统方法相比,分割精度提高了约30%,与现有技术相比提高了6%。

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