基于自适应各向异性滤波的MR图像自动分割

E. Ardizzone, R. Pirrone, O. Gambino
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引用次数: 8

摘要

提出了一种检测多发性硬化症(MS)病变的新方法,该方法使用各向异性扩散和模糊c均值(FCM)聚类的自适应公式。与同一作者之前的作品相反,FCM仅在PD加权切片上运行,对于每个检查,这些切片都组成在一个唯一的数据集中。采用自适应优化扩散函数的各向同性扩散滤波器对图像进行预处理,以聚集属于病灶的像素并切断所有其他像素。自适应被用来实现显著的降噪。详细描述了所提出的方法,以及第一个实验结果。
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Automatic segmentation of MR images based on adaptive anisotropic filtering
A novel approach to the detection of multiple sclerosis (MS) lesions is presented, which uses an adaptive formulation of the anisotropic diffusion and fuzzy-c-means (FCM) clustering. In opposition to previous works of the same authors, FCM runs only on PD weighted slices that, for each examination, are composed in a unique data set. Images are preprocessed with an an isotropic diffusion filter whose diffusion function has been adaptively optimized to aggregate pixels belonging to lesions and cut off all the others. Adaptivity is used to achieve significant noise reduction. A detailed description of the proposed approach is presented, along with first experimental results.
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