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题名

Detecting Carotid Intima-Media From Small-Sample Ultrasound Images

作者
DOI
发表日期
2020
ISSN
2375-7477
ISBN
978-1-7281-1991-5
会议录名称
页码
2129-2132
会议日期
20-24 July 2020
会议地点
Montreal, QC, Canada
摘要
Cardiovascular diseases are the biggest threat to human being's health all over the world, and carotid atherosclerotic plaque is the leading cause of ischemic cardiovascular diseases. To determine the location and shape of the plaque, it is of great significance to detect the intima-media (IM). In this paper, a new IM detection method based on convolution neural network (IMD-CNN) is proposed for the detection of IM of blood vessels in longitudinal ultrasonic images. In IMD-CNN, firstly the region of interest (ROI) is automatically extracted by morphological processing, then the patch-wise training data are constructed, and finally a simple CNN is trained to detect the IM. The experimental results obtained on 23 images show that the test accuracy of IMD-CNN is over 86% and the performance of IMD-CNN is also visually proved to be effective.
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IEEE
全文链接https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=9176282
引用统计
被引频次[WOS]:0
成果类型会议论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/347992
专题南方科技大学第一附属医院
作者单位
1.Tsinghua University,Shenzhen Key Lab. of Info. Sci & Tech / Shenzhen Engineering Lab. of IS & DCP, Shenzhen International Graduate School,China
2.The First Affiliated Hospital of Southern University of Science and Technology,Department of Ultrasound,Shenzhen,China,518020
推荐引用方式
GB/T 7714
Shiyu Mi,Zhanghong Wei,Jinfeng Xu,et al. Detecting Carotid Intima-Media From Small-Sample Ultrasound Images[C],2020:2129-2132.
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