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Computer-aided Detection System for Breast Masses on Digital Tomosynthesis Mammograms: Preliminary Experience

机译:乳腺X线断层扫描乳腺肿块计算机辅助检测系统的初步经验

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摘要

The purpose of the study was to design a computer-aided detection (CAD) system for breast mass detection on digital breast tomosynthesis (DBT) mammograms and to perform a preliminary evaluation of the performance of this system. Twenty-six patients were imaged with a prototype DBT system. Institutional review board approval and written informed patient consent were obtained. Use of the data set in this study was HIPAA compliant. The CAD system first screened the three-dimensional volume of the mass candidates by means of gradient-field analysis. Each mass candidate was segmented from the structured background, and its image features were extracted. A feature classifier was designed to differentiate true masses from normal tissues. The CAD system was trained and tested by using a leave-one-case-out method. The classifier calculated a mean area under the test receiver operating characteristic curve of 0.91 ± 0.03 (standard error of mean). The CAD system achieved a sensitivity of 85%, with 2.2 false-positive objects per case. The results demonstrate the feasibility of the authors’ approach to the development of a CAD system for DBT mammography.
机译:这项研究的目的是设计一种计算机辅助检测(CAD)系统,用于在数字乳腺断层合成(DBT)乳房X线照片上进行乳腺肿块检测,并对该系统的性能进行初步评估。使用原型DBT系统对26位患者进行了成像。获得机构审查委员会的批准和患者知情的书面同意。本研究中使用的数据集符合HIPAA。 CAD系统首先通过梯度场分析筛选了质量候选物的三维体积。从结构化背景中分割每个候选对象,并提取其图像特征。设计了一个功能分类器,以区分正常组织和正常组织。 CAD系统是通过留一事例法进行培训和测试的。分类器计算出测试接收机工作特性曲线下的平均面积为0.91±0.03(平均值的标准误差)。 CAD系统的灵敏度为85%,每个案例有2.2个假阳性对象。结果证明了作者开发DBT乳腺摄影CAD系统的可行性。

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