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A Statistical Approach for Breast Density Segmentation

机译:乳房密度分割的统计方法

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摘要

Studies reported in the literature indicate that the increase in the breast density is one of the strongest indicators of developing breast cancer. In this paper, we present an approach to automatically evaluate the density of a breast by segmenting its internal parenchyma in either fatty or dense class. Our approach is based on a statistical analysis of each pixel neighbourhood for modelling both tissue types. Therefore, we provide connected density clusters taking the spatial information of the breast into account. With the aim of showing the robustness of our approach, the experiments are performed using two different databases: the well-known Mammographic Image Analysis Society digitised database and a new full-field digital database of mammograms from which we have annotations provided by radiologists. Quantitative and qualitative results show that our approach is able to correctly detect dense breasts, segmenting the tissue type accordingly.
机译:文献报道的研究表明,乳房密度的增加是发生乳腺癌的最强指标之一。在本文中,我们提出了一种通过对脂肪或致密类的内部实质进行分割来自动评估乳房密度的方法。我们的方法基于对每个像素邻域的统计分析,以对两种组织类型进行建模。因此,我们提供考虑乳房空间信息的连通密度簇。为了显示我们方法的鲁棒性,使用两个不同的数据库进行了实验:著名的乳房X线图像分析协会数字化数据库和一个全新的X射线全视野数字化数据库,放射科医生提供了注释。定量和定性的结果表明,我们的方法能够正确检测出密集的乳房,并相应地对组织类型进行分割。

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