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首页> 外文期刊>Medical Physics >Computer-aided detection of breast masses: four-view strategy for screening mammography.
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Computer-aided detection of breast masses: four-view strategy for screening mammography.

机译:乳腺肿块的计算机辅助检测:乳腺钼靶筛查的四视图策略。

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摘要

PURPOSE: To improve the performance of a computer-aided detection (CAD) system for mass detection by using four-view information in screening mammography. METHODS: The authors developed a four-view CAD system that emulates radiologists' reading by using the craniocaudal and mediolateral oblique views of the ipsilateral breast to reduce false positives (FPs) and the corresponding views of the contralateral breast to detect asymmetry. The CAD system consists of four major components: (1) Initial detection of breast masses on individual views, (2) information fusion of the ipsilateral views of the breast (referred to as two-view analysis), (3) information fusion of the corresponding views of the contralateral breast (referred to as bilateral analysis), and (4) fusion of the four-view information with a decision tree. The authors collected two data sets for training and testing of the CAD system: A mass set containing 389 patients with 389 biopsy-proven masses and a normal set containing 200 normal subjects. All cases had four-view mammograms. The true locations of the masses on the mammograms were identified by an experienced MQSA radiologist. The authors randomly divided the mass set into two independent sets for cross validation training and testing. The overall test performance was assessed by averaging the free response receiver operating characteristic (FROC) curves of the two test subsets. The FP rates during the FROC analysis were estimated by using the normal set only. The jackknife free-response ROC (JAFROC) method was used to estimate the statistical significance of the difference between the test FROC curves obtained with the single-view and the four-view CAD systems. RESULTS: Using the single-view CAD system, the breast-based test sensitivities were 58% and 77% at the FP rates of 0.5 and 1.0 per image, respectively. With the four-view CAD system, the breast-based test sensitivities were improved to 76% and 87% at the corresponding FP rates, respectively. The improvement was found to be statistically significant (p < 0.0001) by JAFROC analysis. CONCLUSIONS: The four-view information fusion approach that emulates radiologists' reading strategy significantly improves the performance of breast mass detection of the CAD system in comparison with the single-view approach.
机译:目的:通过在乳腺钼靶筛查中使用四视图信息来提高用于质量检测的计算机辅助检测(CAD)系统的性能。方法:作者开发了一种四视图CAD系统,该系统通过使用同侧乳房的颅尾和中外侧斜视图减少假阳性(FPs)和对侧乳房的相应视图来检测放射线不对称,从而模拟放射科医生的阅读。 CAD系统包括四个主要部分:(1)对单个视图上的乳房肿块进行初步检测,(2)乳房同侧视图的信息融合(称为两视图分析),(3)乳房的信息融合。对侧乳房的相应视图(称为双边分析),以及(4)将四视图信息与决策树融合。作者收集了用于训练和测试CAD系统的两个数据集:一个包含389例活检证实的肿块的389个患者的质量集,以及一个包含200个正常受试者的正常集的数据集。所有病例均具有四视图乳房X线照片。经验丰富的MQSA放射科医生确定了乳房X光照片上肿块的真实位置。作者将质量集合随机分为两个独立的集合,以进行交叉验证训练和测试。通过平均两个测试子集的自由响应接收器工作特性(FROC)曲线来评估总体测试性能。 FROC分析过程中的FP率仅通过使用正常值来估算。使用折刀自由响应ROC(JAFROC)方法来估计单视图和四视图CAD系统获得的测试FROC曲线之间差异的统计显着性。结果:使用单视图CAD系统,在每幅图像的FP率为0.5和1.0时,基于乳房的测试敏感性分别为58%和77%。使用四视图CAD系统,在相应的FP率下,基于乳房的测试敏感性分别提高到76%和87%。通过JAFROC分析发现该改善具有统计学显着性(p <0.0001)。结论:与单视图方法相比,模仿放射线医生阅读策略的四视图信息融合方法显着提高了CAD系统的乳腺肿块检测性能。

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