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Fully Automated Support System for Diagnosis of Breast Cancer in Contrast-Enhanced Spectral Mammography Images

机译:对比增强的乳腺X线摄影图像中诊断乳腺癌的全自动支持系统

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摘要

Contrast-Enhanced Spectral Mammography (CESM) is a novelty instrumentation for diagnosing of breast cancer, but it can still be considered operator dependent. In this paper, we proposed a fully automatic system as a diagnostic support tool for the clinicians. For each Region Of Interest (ROI), a features set was extracted from low-energy and recombined images by using different techniques. A Random Forest classifier was trained on a selected subset of significant features by a sequential feature selection algorithm. The proposed Computer-Automated Diagnosis system is tested on 48 ROIs extracted from 53 patients referred to Istituto Tumori “Giovanni Paolo II” of Bari (Italy) from the breast cancer screening phase between March 2017 and June 2018. The present method resulted highly performing in the prediction of benign/malignant ROIs with median values of sensitivity and specificity of 87.5% and 91.7%, respectively. The performance was high compared to the state-of-the-art, even with a moderate/marked level of parenchymal background. Our classification model outperformed the human reader, by increasing the specificity over 8%. Therefore, our system could represent a valid support tool for radiologists for interpreting CESM images, both reducing the false positive rate and limiting biopsies and surgeries.
机译:对比度增强的乳腺X线摄影术(CESM)是诊断乳腺癌的一种新颖仪器,但仍然可以认为是依赖于操作者的。在本文中,我们提出了一种全自动系统作为临床医生的诊断支持工具。对于每个感兴趣的区域(ROI),使用不同的技术从低能量和重组图像中提取特征集。通过顺序特征选择算法,对选定的重要特征子集训练了随机森林分类器。在2017年3月至2018年6月的乳腺癌筛查阶段,对从53名患者中提取的48个ROI进行了测试,该系统是从Bari(意大利)的Istituto Tumori“ Giovanni Paolo II”病人中提取的,对所提出的计算机自动诊断系统进行了测试。 < mrow> 87 5 91 7 。即使具有中等/显着的实质背景水平,其性能也比最新技术高。通过提高 8 。因此,我们的系统可以为放射科医生解释CESM图像提供有效的支持工具,既可以减少假阳性率,又可以限制活检和手术。

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