数字乳房x光片中质量分割初始质量位置的自动推荐

Bong-ryul Lee, Jong-doo Lee, Myeong-jin Lee
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引用次数: 7

摘要

质量的初始位置对质量分割的性能有很大影响。一些研究人员根据放射科医生给出的肿块初始位置进行了质量分割。我们研究的目的是找到肿块分割的初始位置,并将分割的肿块通知放射科医生,而不需要任何关于乳房x光片的额外信息。该系统包括通过区域生长和开放操作进行乳房分割,通过质量特征确定初始种子,以及通过水平集分割进行质量分割。基于基于块的方差和亚采样乳房x光片中的掩码信息计算的质量评分度量,设置了质量分割的种子。我们使用DDSM数据库对系统进行了评估,在4 FP/图像的灵敏度下,质量分割的准确率为78%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automated recommendation of initial mass positions for mass segmentation in digital mammograms
The performance of mass segmentation is greatly influenced by an initial position of a mass. Some researchers performed mass segmentation with the initial position of a mass given by radiologists. The purpose of our research is to find the initial position for mass segmentation and to notify the segmented mass to radiologists without any additional information on mammograms. The proposed system consists of breast segmentation by region growing and opening operations, decision of an initial seed with characteristics of masses, and mass segmentation by a level set segmentation. A seed for mass segmentation is set based on mass scoring measure calculated by block-based variances and masked information in a sub-sampled mammogram. We used a DDSM database to evaluate the system, and the accuracy of mass segmentation is 78% sensitivity at 4 FP/image.
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