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乳腺钼靶片中乳房边界和胸肌分割的最新进展综述。

Review of recent advances in segmentation of the breast boundary and the pectoral muscle in mammograms.

作者信息

Mustra Mario, Grgic Mislav, Rangayyan Rangaraj M

机构信息

Faculty of Electrical Engineering and Computing, University of Zagreb, Zagreb, Croatia.

Schulich School of Engineering, University of Calgary, Calgary, AB, Canada.

出版信息

Med Biol Eng Comput. 2016 Jul;54(7):1003-24. doi: 10.1007/s11517-015-1411-7. Epub 2015 Nov 6.

Abstract

This paper presents a review of recent advances in the development of methods for segmentation of the breast boundary and the pectoral muscle in mammograms. Regardless of improvement of imaging technology, accurate segmentation of the breast boundary and detection of the pectoral muscle are still challenging tasks for image processing algorithms. In this paper, we discuss problems related to mammographic image preprocessing and accurate segmentation. We review specific methods that were commonly used in most of the techniques proposed for segmentation of mammograms and discuss their advantages and disadvantages. Comparative analysis of the methods reported on is made difficult by variations in the datasets and procedures of evaluation used by the authors. We attempt to overcome some of these limitations by trying to compare methods which used the same dataset and have some similarities in approaches to the breast boundary segmentation and detection of the pectoral muscle. In this paper, we will address the most often used methods for segmentation such as thresholding, morphology, region growing, active contours, and wavelet filtering. These methods, or their combinations, are the ones most used in the last decade by the majority of work published in this image processing domain.

摘要

本文综述了乳腺钼靶图像中乳腺边界和胸肌分割方法的最新进展。尽管成像技术有所改进,但对于图像处理算法而言,准确分割乳腺边界和检测胸肌仍是具有挑战性的任务。在本文中,我们讨论了与乳腺钼靶图像预处理和精确分割相关的问题。我们回顾了大多数乳腺钼靶分割技术中常用的具体方法,并讨论了它们的优缺点。由于作者使用的数据集和评估程序存在差异,对所报道方法进行比较分析变得困难。我们试图通过比较使用相同数据集且在乳腺边界分割和胸肌检测方法上有一些相似之处的方法来克服其中一些限制。在本文中,我们将介绍最常用的分割方法,如阈值处理、形态学、区域生长、活动轮廓和小波滤波。这些方法或其组合是过去十年中该图像处理领域大多数发表的工作中最常用的方法。

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