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A novel method of extracting and classifying the features of masses in mammograms

机译:一种提取和分类乳房X线照片群众特征的新方法

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Some improvements in the classification of masses in the breast are proposed in this paper. First, for the purpose of enriching the information concerning the shape of the mass, a new morphological feature is extracted. Then, the textural features of the region of interest (ROI) are extracted by combining the undecimated wavelet transform (UWT) and the gray level co-occurrence matrix (GLCM). Finally, based on the geometrical and textural features, the feature-weighted support-vector machine (FWSVM) is used to distinguish between malignant and benign masses. The experiments implemented on the public digital database for screening mammography (DDSM) indicated that the proposed improvements can achieve better results than the existing methods.
机译:本文提出了乳房肿块分类的一些改进。首先,为了富集有关质量形状的信息,提取了一种新的形态特征。然后,通过组合未传定的小波变换(UWT)和灰度共发生矩阵(GLCM)来提取感兴趣区域(ROI)的纹理特征。最后,基于几何和纹理特征,使用特征加权支持 - 向量机(FWSVM)来区分恶性和良性群体。在公共数字数据库中实现用于筛选乳房X线摄影(DDSM)的实验表明,所提出的改进可以达到比现有方法更好的结果。

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