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Recent progress in semantic image segmentation
by
Yang, Yuhan
, Deng, Zhidong
, Liu, Xiaolong
in
Accuracy
/ Algorithms
/ Annotations
/ Artificial intelligence
/ Artificial neural networks
/ Classification
/ Computer vision
/ Convolution
/ Datasets
/ Image processing
/ Image processing systems
/ Image segmentation
/ Intelligence
/ Networks
/ Neural networks
/ R&D
/ Research & development
/ Segmentation
/ Semantic categories
/ Semantic segmentation
/ Semantics
2019
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Recent progress in semantic image segmentation
by
Yang, Yuhan
, Deng, Zhidong
, Liu, Xiaolong
in
Accuracy
/ Algorithms
/ Annotations
/ Artificial intelligence
/ Artificial neural networks
/ Classification
/ Computer vision
/ Convolution
/ Datasets
/ Image processing
/ Image processing systems
/ Image segmentation
/ Intelligence
/ Networks
/ Neural networks
/ R&D
/ Research & development
/ Segmentation
/ Semantic categories
/ Semantic segmentation
/ Semantics
2019
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Do you wish to request the book?
Recent progress in semantic image segmentation
by
Yang, Yuhan
, Deng, Zhidong
, Liu, Xiaolong
in
Accuracy
/ Algorithms
/ Annotations
/ Artificial intelligence
/ Artificial neural networks
/ Classification
/ Computer vision
/ Convolution
/ Datasets
/ Image processing
/ Image processing systems
/ Image segmentation
/ Intelligence
/ Networks
/ Neural networks
/ R&D
/ Research & development
/ Segmentation
/ Semantic categories
/ Semantic segmentation
/ Semantics
2019
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Journal Article
Recent progress in semantic image segmentation
2019
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Overview
Semantic image segmentation, which becomes one of the key applications in image processing and computer vision domain, has been used in multiple domains such as medical area and intelligent transportation. Lots of benchmark datasets are released for researchers to verify their algorithms. Semantic segmentation has been studied for many years. Since the emergence of Deep Neural Network (DNN), segmentation has made a tremendous progress. In this paper, we divide semantic image segmentation methods into two categories: traditional and recent DNN method. Firstly, we briefly summarize the traditional method as well as datasets released for segmentation, then we comprehensively investigate recent methods based on DNN which are described in the eight aspects: fully convolutional network, up-sample ways, FCN joint with CRF methods, dilated convolution approaches, progresses in backbone network, pyramid methods, Multi-level feature and multi-stage method, supervised, weakly-supervised and unsupervised methods. Finally, a conclusion in this area is drawn.
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