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Author:

Liu, Jirong (Liu, Jirong.) | Wang, Yousheng (Wang, Yousheng.) | Man, Kailiang (Man, Kailiang.) | Gao, Xue (Gao, Xue.)

Indexed by:

EI Scopus

Abstract:

For intravascular ultrasound (IVUS) images, the registration technology is used to calculate coronary arteries displacement to analyze vascular elasticity. It not only provides evidence for the prevention and treatment of cardiovascular diseases, but also has important significance for guiding interventional surgery and monitoring the placement of surgical stents. Aiming at the high computational cost of current traditional registration methods and the insufficient accuracy of common deep learning registration methods for IVUS images, this paper proposes a fast unsupervised registration of IVUS images combined with an attention mechanism. The proposed method directly learns to estimate a displacement vector field (DVF) from a pair of input images of the training set. The spatial transform network (STN) uses the DVF to transform the moving image into the fixed image. Finally, the model is trained by minimizing a similarity metric loss function between the deformed moving image and the fixed image. Compared with the previous deep learning method, the registration performance improved after implementing the proposed method. The proposed method can accurately register the inner and outer membranes of IVU S images and provide a reliable basis for vascular elasticity analysis. © Published under licence by IOP Publishing Ltd.

Keyword:

Transplantation (surgical) Ultrasonics Deep learning Image analysis Diseases Elasticity Learning systems Cardiovascular surgery

Author Community:

  • [ 1 ] [Liu, Jirong]Beijing University of Technology, Beijing, China
  • [ 2 ] [Wang, Yousheng]Beijing University of Technology, Beijing, China
  • [ 3 ] [Man, Kailiang]Beijing University of Technology, Beijing, China
  • [ 4 ] [Gao, Xue]Beijing University of Technology, Beijing, China

Reprint Author's Address:

  • [wang, yousheng]beijing university of technology, beijing, china

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Source :

ISSN: 1742-6588

Year: 2021

Issue: 1

Volume: 1873

Language: English

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count: 1

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 7

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