Deep Convolutional-Neural-Network-Based Channel Attention for Single Image Dynamic Scene Blind Deblurring

被引:23
|
作者
Wan, Shengdao [1 ]
Tang, Shu [1 ]
Xie, Xianzhong [1 ]
Gu, Jia [1 ]
Huang, Rong [1 ]
Ma, Bin [1 ]
Luo, Lei [1 ]
机构
[1] Chongqing Univ Posts & Telecommun, Chongqing Key Lab Comp Network & Commun Technol, Chongqing 400065, Peoples R China
基金
中国国家自然科学基金;
关键词
Cameras; Kernel; Feature extraction; Image restoration; Estimation; Learning systems; Image edge detection; Convolutional neural network; dynamic scene blind deblurring; multi-scale model; channel attention; spatial pyramid pooling; REMOVAL; BLUR;
D O I
10.1109/TCSVT.2020.3035664
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The success of convolutional neural network (CNN) based single image dynamic scene blind deblurring (SIDSBD) methods mainly stems from the multi-scale/multi-patch model and the designs of the encoder-decoder architecture, and the residual block structure, which make different contributions to SIDSBD. In this paper, we further exploit the advantages of the multi-scale model, the encoder-decoder module, and the residual block structure, respectively, and propose a novel multi-scale channel attention network (MSCAN) for effective single image dynamic scene blind deblurring. Different from existing multi-scale models, in our proposed network, each scale consists of multiple levels, in which a novel spatial pyramid pooling channel attention (SPPCA) strategy is proposed to adaptively rescale the channel-wise features by using both the global and local feature statistics for more powerful network representation. Extensive experiments on both the synthetic benchmark datasets and the real blurred images show that our method can produce better deblurring results than the state-of-the-art SIDSBD methods in terms of both qualitative evaluation and quantitative metrics.
引用
收藏
页码:2994 / 3009
页数:16
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