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Novel methods of image description and ensemble of classifiers in application to mammogram analysis

机译:图像描述和分类器集成的新方法在乳腺X线照片分析中的应用

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The paper proposes new advanced methods of image description and an ensemble of classifiers for recognition of mammograms in breast cancer. The non-negative matrix factorization and many other advanced methods of image representation, not exploited in the field of mammogram recognition, are developed and checked in the role of diagnostic features. Final image recognition is done by using an ensemble of classifiers. The new approach to the integration of an ensemble is proposed. It applies the weighted majority voting with the weights determined from the optimization task defined on the basis of the area under curve of ROC. The results of numerical experiments performed on large data base "Digital Database for Screening Mammography" containing more than 10,000 mammograms have confirmed superior accuracy in recognition of abnormal from the normal cases. The presented results of class recognition exceed the best achievements for this base reported in the actual publications. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新的高级图像描述方法,并提出了用于识别乳腺X线照片的分类器集合。在乳房X线照片识别领域未开发的非负矩阵分解和许多其他高级图像表示方法已经开发出来,并在诊断功能中得到了检验。最终的图像识别通过使用一组分类器完成。提出了一种集成整体的新方法。它将加权多数投票与根据ROC曲线下面积定义的优化任务确定的权重相结合。在包含10,000多个乳房X线照片的大型数据库“用于筛查X射线照片的数字数据库”上进行的数值实验结果证实,在识别正常病例中的异常方面具有更高的准确性。给出的班级认可的结果超过了实际出版物中报告的该基础的最佳成绩。 (C)2017 Elsevier Ltd.保留所有权利。

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