JOURNAL ARTICLE

MSU-Net: Multi-Scale U-Net for 2D Medical Image Segmentation

Run SuDeyun ZhangJinhuai LiuChuandong Cheng

Year: 2021 Journal:   Frontiers in Genetics Vol: 12 Pages: 639930-639930   Publisher: Frontiers Media

Abstract

Aiming at the limitation of the convolution kernel with a fixed receptive field and unknown prior to optimal network width in U-Net, multi-scale U-Net (MSU-Net) is proposed by us for medical image segmentation. First, multiple convolution sequence is used to extract more semantic features from the images. Second, the convolution kernel with different receptive fields is used to make features more diverse. The problem of unknown network width is alleviated by efficient integration of convolution kernel with different receptive fields. In addition, the multi-scale block is extended to other variants of the original U-Net to verify its universality. Five different medical image segmentation datasets are used to evaluate MSU-Net. A variety of imaging modalities are included in these datasets, such as electron microscopy, dermoscope, ultrasound, etc. Intersection over Union (IoU) of MSU-Net on each dataset are 0.771, 0.867, 0.708, 0.900, and 0.702, respectively. Experimental results show that MSU-Net achieves the best performance on different datasets. Our implementation is available at https://github.com/CN-zdy/MSU_Net .

Keywords:
Computer science Segmentation Kernel (algebra) Artificial intelligence Net (polyhedron) Convolution (computer science) Block (permutation group theory) Pattern recognition (psychology) Image segmentation Scale (ratio) Computer vision Mathematics Artificial neural network Cartography Geography Combinatorics

Metrics

150
Cited By
11.65
FWCI (Field Weighted Citation Impact)
61
Refs
0.99
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Neural Network Applications
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
AI in cancer detection
Physical Sciences →  Computer Science →  Artificial Intelligence
Medical Image Segmentation Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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