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Computerized detection of breast cancer on automated breast ultrasound imaging of women with dense breasts

机译:乳腺密集妇女的自动乳房超声成像对乳腺癌的计算机检测

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摘要

>Purpose: Develop a computer-aided detection method and investigate its feasibility for detection of breast cancer in automated 3D ultrasound images of women with dense breasts.>Methods: The HIPAA compliant study involved a dataset of volumetric ultrasound image data, “views,” acquired with an automated U-Systems Somo•V® ABUS system for 185 asymptomatic women with dense breasts (BI-RADS Composition/Density 3 or 4). For each patient, three whole-breast views (3D image volumes) per breast were acquired. A total of 52 patients had breast cancer (61 cancers), diagnosed through any follow-up at most 365 days after the original screening mammogram. Thirty-one of these patients (32 cancers) had a screening-mammogram with a clinically assigned BI-RADS Assessment Category 1 or 2, i.e., were mammographically negative. All software used for analysis was developed in-house and involved 3 steps: (1) detection of initial tumor candidates, (2) characterization of candidates, and (3) elimination of false-positive candidates. Performance was assessed by calculating the cancer detection sensitivity as a function of the number of “marks” (detections) per view.>Results: At a single mark per view, i.e., six marks per patient, the median detection sensitivity by cancer was 50.0% (16/32) ± 6% for patients with a screening mammogram-assigned BI-RADS category 1 or 2—similar to radiologists’ performance sensitivity (49.9%) for this dataset from a prior reader study—and 45.9% (28/61) ± 4% for all patients.>Conclusions: Promising detection sensitivity was obtained for the computer on a 3D ultrasound dataset of women with dense breasts at a rate of false-positive detections that may be acceptable for clinical implementation.
机译:>目的:开发一种计算机辅助检测方法,并研究其在乳房密实女性的自动3D超声图像中检测乳腺癌的可行性。>方法:符合HIPAA标准的研究涉及用自动U-Systems Somo•V ® ABUS系统获取的185例无症状乳房浓密妇女的超声图像数据的数据集(BI-RADS组成/密度3或4) 。对于每位患者,每个乳房获取三张全乳房视图(3D图像量)。总共52例乳腺癌患者(61例癌症)是在最初筛查的X光检查后最多365天通过任何随访诊断出来的。这些患者中有31名(32名癌症)接受了乳房X线筛查,并具有临床指定的BI-RADS评估类别1或2,即乳房X线检查阴性。用于分析的所有软件均是在内部开发的,涉及3个步骤:(1)检测初始肿瘤候选者,(2)表征候选者,以及(3)消除假阳性候选者。通过计算癌症检测灵敏度作为每个视图的“标记”(检测)数量的函数来评估性能。>结果:每个视图一个标记,即每个患者六个标记,中位数乳房X线检查分配的BI-RADS 1或2类患者的癌症检出灵敏度为50.0%(16/32)±6%,与放射科医生对先前读者研究中该数据集的表现敏感性(49.9%)相似-和所有患者的45.9%(28/61)±4%。>结论:在具有密集乳房的女性3D超声数据集上,计算机以假阳性检出率获得了有希望的检出灵敏度。对于临床实施可能是可以接受的。

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