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自动乳腺密度分割:不同方法的融合。

Automatic breast density segmentation: an integration of different approaches.

机构信息

Department of Radiology, Radboud University Nijmegen Medical Centre, Geert Grooteplein Zuid 18, 6525 GA Nijmegen, The Netherlands.

出版信息

Phys Med Biol. 2011 May 7;56(9):2715-29. doi: 10.1088/0031-9155/56/9/005. Epub 2011 Apr 5.

Abstract

Mammographic breast density has been found to be a strong risk factor for breast cancer. In most studies, it is assessed with a user-assisted threshold method, which is time consuming and subjective. In this study, we develop a breast density segmentation method that is fully automatic. The method is based on pixel classification in which different approaches known in the literature to segment breast density are integrated and extended. In addition, the method incorporates the knowledge of a trained observer, by using segmentations obtained by the user-assisted threshold method as training data. The method is trained and tested using 1300 digitized film mammographic images acquired with a variety of systems. Results show a high correspondence between the automated method and the user-assisted threshold method. Pearson's correlation coefficient between our method and the user-assisted method is R = 0.911 for percent density and R = 0.895 for dense area, which is substantially higher than the best correlation found in the literature (R = 0.70, R = 0.68). The area under the receiver operating characteristic curve obtained when discriminating between fatty and dense pixels is 0.987. A combination of segmentation strategies outperforms the application of single segmentation techniques.

摘要

乳腺密度被认为是乳腺癌的一个重要危险因素。在大多数研究中,它是通过用户辅助的阈值方法来评估的,这种方法既耗时又主观。在这项研究中,我们开发了一种完全自动化的乳腺密度分割方法。该方法基于像素分类,集成和扩展了文献中已知的各种分割乳腺密度的方法。此外,该方法还利用用户辅助的阈值方法获得的分割作为训练数据,纳入了训练观察者的知识。该方法使用从不同系统获取的 1300 张数字化胶片乳房 X 线照片进行训练和测试。结果表明,自动方法与用户辅助的阈值方法之间具有高度的一致性。我们的方法与用户辅助方法之间的 Pearson 相关系数为 0.911(用于表示密度百分比)和 0.895(用于表示致密区域),这明显高于文献中发现的最佳相关性(R = 0.70,R = 0.68)。在区分脂肪和致密像素时,接收者操作特征曲线下的面积为 0.987。分割策略的组合优于单一分割技术的应用。

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