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Classification of Mass in Two Views Mammograms: Use of Analysis ot Variance (ANOVA) for Reduction of the Features

机译:两种视图乳腺X光照片中的质量分类:使用分析方差分析(ANOVA)来减少特征

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Breast cancer is the most frequently diagnosed cancer in women all over the world. Patents have shown that cancer is the fifth cause of death worldwide, among other leading cancers, such as lung cancer, stomach cancer, liver cancer and colon cancer. In this paper, we present a method for extraction of the morphological and texture information and attribute selection for mass classification using the fusion of information from CC and MLO views. In the extraction stage, the wavelets coefficients and the singular value decomposition (SVD) technique were applied to reduce the number of texture attributes. From the segmented mass regions, we construct the mass morphological features set. The application of analysis of variance (ANOVA) also contributes to the reduction of the textural and morphological information. In the final stage, we used the Random Forest and Support Vector Machine algorithms for classifying masses in mammograms. The overall performances of the methods were evaluated by means of the area under the ROC curve (AUC). The experiments showed that the fusion of information of views contributed to increase of values of AUC. These results demonstrate that the proposed fusion of information and combination of descriptors contribute in the classification of breast lesions.
机译:乳腺癌是全世界女性中最常被诊断出的癌症。专利已经表明,在肺癌,胃癌,肝癌和结肠癌等其他主要癌症中,癌症是全球第五大死因。在本文中,我们提出了一种使用CC和MLO视图中的信息融合来提取形态和纹理信息以及用于质量分类的属性选择的方法。在提取阶段,应用小波系数和奇异值分解(SVD)技术来减少纹理属性的数量。从分割的质量区域,我们构造质量形态特征集。方差分析(ANOVA)的应用也有助于减少纹理和形态信息。在最后阶段,我们使用随机森林和支持向量机算法对乳房X线照片中的质量进行分类。通过ROC曲线(AUC)下的面积评估方法的整体性能。实验表明,视图信息的融合有助于AUC值的增加。这些结果表明,建议的信息融合和描述符的组合有助于乳腺病变的分类。

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