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A Modified FCM Algorithm for Fast Segmentation of Brain MR Images

机译:改进的FCM算法快速分割脑部MR图像

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摘要

Automated brain MR image segmentation is a challenging problem and received significant attention lately. Several improvements have been made to the standard fuzzy c-means (FCM) algorithm, in order to reduce its sensitivity to Gaussian, impulse, and intensity non-uniformity noises. In this paper we present a modified FCM algorithm, which aims accurate segmentation in case of mixed noises, and performs at a high processing speed. The proposed method extracts a scalar feature value from the neighborhood of each pixel, using a filtering technique that deals with both spatial and gray level distances. These features are classified afterwards using the histogram-based approach of the enhanced FCM classifier. The experiments using synthetic phantoms and real MR images show, that the proposed method provides better results compared to other reported FCM-based techniques.
机译:自动化的脑部MR图像分割是一个具有挑战性的问题,近来受到了广泛关注。为了降低标准模糊c均值(FCM)算法对高斯噪声,脉冲噪声和强度非均匀噪声的敏感性,已经进行了一些改进。在本文中,我们提出了一种改进的FCM算法,该算法的目标是在混合噪声的情况下进行精确分割,并以较高的处理速度执行。所提出的方法使用处理空间和灰度级距离的滤波技术从每个像素的邻域中提取标量特征值。随后,使用增强型FCM分类器的基于直方图的方法对这些功能进行分类。使用合成体模和真实MR图像进行的实验表明,与其他已报道的基于FCM的技术相比,该方法可提供更好的结果。

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