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Medical Image Segmentation using Deep Learning: A Survey - 2022

Medical Image Segmentation Using Deep Learning: A Survey

Survey Paper on Medical Image Segmentation Using Deep Learning: A Survey

Research Area:  Machine Learning

Abstract:

Deep learning has been widely used for medical image segmentation and a large number of papers has been presented recording the success of deep learning in the field. A comprehensive thematic survey on medical image segmentation using deep learning techniques is presented. This paper makes two original contributions. Firstly, compared to traditional surveys that directly divide literatures of deep learning on medical image segmentation into many groups and introduce literatures in detail for each group, we classify currently popular literatures according to a multi-level structure from coarse to fine. Secondly, this paper focuses on supervised and weakly supervised learning approaches, without including unsupervised approaches since they have been introduced in many old surveys and they are not popular currently. For supervised learning approaches, we analyse literatures in three aspects: the selection of backbone networks, the design of network blocks, and the improvement of loss functions. For weakly supervised learning approaches, we investigate literature according to data augmentation, transfer learning, and interactive segmentation, separately. Compared to existing surveys, this survey classifies the literatures very differently from before and is more convenient for readers to understand the relevant rationale and will guide them to think of appropriate improvements in medical image segmentation based on deep learning approaches.

Keywords:  
Medical Image Segmentation
Deep Learning
weakly supervised learning
Machine Learning

Author(s) Name:  Risheng Wang,Tao Lei,Ruixia Cui,Bingtao Zhang,Hongying Meng,Asoke K. Nandi

Journal name:  IET Image Processing

Conferrence name:  

Publisher name:  Wiley

DOI:  10.1049/ipr2.12419

Volume Information:  Volume 16, Issue 5, April 2022, Pages 1243-1267