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Author:

Zhang, Cheng (Zhang, Cheng.) | He, Jian (He, Jian.) | Wang, Weidong (Wang, Weidong.) | Yang, Shengqi (Yang, Shengqi.) | Zhang, Yuqing (Zhang, Yuqing.)

Indexed by:

EI Scopus

Abstract:

Atherosclerotic plaques, the leading cause of heart attack, can be characterized from intravascular optical coherence tomography (IV-OCT) images by doctors. Since lipid accumulation is an important indication of atherosclerotic plaque, we introduced a new convolutional neural network, called Single Shot Plaque Marking Network (SSPM), to develop an automated method that highlights the extent of lipid plaques from IV-OCT images at real-time, which then would help doctors easily find the vulnerable plaque. Compared with previous available methods, our method is capable of marking the suspicious lipid plaque areas in real-time with better time-efficiency and competitive accuracy during the diagnosis. SSPM is tested on IV-OCT human coronary artery imaging dataset, and the result shows that our method is able to mark suspicious lipid-plaque areas at 91 fps on GPU, or 16 fps on CPU, with an accuracy of 87%. 2019, Springer Nature Singapore Pte Ltd.

Keyword:

Cognitive systems Convolutional neural networks Computational efficiency Optical tomography Biology Efficiency Neural networks Signal processing

Author Community:

  • [ 1 ] [Zhang, Cheng]Beijing University of Technology, Beijing; 100124, China
  • [ 2 ] [He, Jian]Beijing University of Technology, Beijing; 100124, China
  • [ 3 ] [Wang, Weidong]Beijing University of Technology, Beijing; 100124, China
  • [ 4 ] [Yang, Shengqi]Beijing University of Technology, Beijing; 100124, China
  • [ 5 ] [Zhang, Yuqing]National Center for Cardiovascular Diseases, Beijing; 100037, China

Reprint Author's Address:

  • [he, jian]beijing university of technology, beijing; 100124, china

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Source :

ISSN: 1865-0929

Year: 2019

Volume: 1005

Page: 99-111

Language: English

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count:

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 2

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