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Segmentation of Mammography Images Based on Spectrum Clustering Method

机译:基于频谱聚类方法的乳房X线摄影图像分割

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Mass segmentation in mammography images is one of the effective ways to screen breast cancer. The accurate segmentation of the pectoral muscle can improve the accuracy of mass recognition. However, the results of traditional mammography image segmentation methods often appear incomplete segmentation and over-segmentation, the accuracy is low, which directly affects the accuracy of breast cancer screening. To solve these problems, a segmentation method of mammography images based on spectral clustering is proposed in this paper. Firstly, we use the spectral clustering to segment the pectoral muscle preliminarily. In view of the stratification of pectoral muscle and the unclear boundary of breast muscle and breast tissue, we use the maximum grayscale difference constraint and shape constraint to achieve accurate breast muscle segmentation. The mass is recognized accurately with the segmented image. The experimental results of the MIAS breast image database show that the proposed method can effectively segment the uneven grayscale pectoral muscle caused by the overlap of the pectoral muscle tissues, and it is robust to the segmentation of tumors of different sizes.
机译:乳房X线摄影图像中的质量分割是筛选乳腺癌的有效方法之一。胸肌的精确分割可以提高大众识别的准确性。然而,传统乳房X线摄影图像分割方法的结果通常出现不完全分割和过分,精度低,这直接影响乳腺癌筛选的准确性。为了解决这些问题,本文提出了一种基于光谱聚类的乳房X线摄影图像的分段方法。首先,我们使用光谱聚类来初步分割胸肌。鉴于胸肌的分层和乳房肌肉组织的阴影,我们使用最大的灰度差分约束和形状约束来实现精确的乳房肌肉细分。用分段图像准确地识别质量。 MIS乳房图像数据库的实验结果表明,该方法可以有效地分割由胸肌组织的重叠引起的不均匀灰度胸肌,并且对不同尺寸的肿瘤的分割是强大的。

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