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Automatic Breast Ultrasound Image Segmentation: A Survey
April 04, 2017 ยท The Cartographer ยท ๐ Pattern Recognition
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"Title-pattern auto-detect: Automatic Breast Ultrasound Image Segmentation: A Survey"
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Authors
Min Xian, Yingtao Zhang, H. D. Cheng, Fei Xu, Boyu Zhang, Jianrui Ding
arXiv ID
1704.01472
Category
cs.CV: Computer Vision
Cross-listed
cs.LG
Citations
242
Venue
Pattern Recognition
Last Checked
1 day ago
Abstract
Breast cancer is one of the leading causes of cancer death among women worldwide. In clinical routine, automatic breast ultrasound (BUS) image segmentation is very challenging and essential for cancer diagnosis and treatment planning. Many BUS segmentation approaches have been studied in the last two decades, and have been proved to be effective on private datasets. Currently, the advancement of BUS image segmentation seems to meet its bottleneck. The improvement of the performance is increasingly challenging, and only few new approaches were published in the last several years. It is the time to look at the field by reviewing previous approaches comprehensively and to investigate the future directions. In this paper, we study the basic ideas, theories, pros and cons of the approaches, group them into categories, and extensively review each category in depth by discussing the principles, application issues, and advantages/disadvantages.
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