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Deep Learning in Medical Image Registration: A Review

Image and Video Processing 2020-12-02 v1 Computer Vision and Pattern Recognition Machine Learning Medical Physics Machine Learning

Abstract

This paper presents a review of deep learning (DL) based medical image registration methods. We summarized the latest developments and applications of DL-based registration methods in the medical field. These methods were classified into seven categories according to their methods, functions and popularity. A detailed review of each category was presented, highlighting important contributions and identifying specific challenges. A short assessment was presented following the detailed review of each category to summarize its achievements and future potentials. We provided a comprehensive comparison among DL-based methods for lung and brain deformable registration using benchmark datasets. Lastly, we analyzed the statistics of all the cited works from various aspects, revealing the popularity and future trend of development in medical image registration using deep learning.

Keywords

Cite

@article{arxiv.1912.12318,
  title  = {Deep Learning in Medical Image Registration: A Review},
  author = {Yabo Fu and Yang Lei and Tonghe Wang and Walter J. Curran and Tian Liu and Xiaofeng Yang},
  journal= {arXiv preprint arXiv:1912.12318},
  year   = {2020}
}

Comments

32 pages, 4 figures, 9 tables