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Brain MRI Thresholding Using Incomparability and Overlap Functions

机译:脑MRI使用无与伦比和重叠函数的阈值阈值

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In this work we present a new image thresholding algorithm for the segmentation of MRI brain images into two classes: gray matter and white matter. The proposed algorithm is based on the concept of incomparability proposed by Fodor and Roubens for fuzzy preference relations. We test our algorithm for local and global segmentation of brain images. We proof that global segmentation performs better results than local segmentation and improves the results obtained by other thresholding algorithm.
机译:在这项工作中,我们向两类MRI脑图像分割的新图像阈值算法:灰质和白质。该算法基于FODOR和Roubens提出的无与伦比的概念,用于模糊偏好关系。我们测试我们的局部和全球脑图像分割算法。我们证明,全局分割比局部分割执行更好的结果,并改善通过其他阈值算法获得的结果。

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