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Progressive Downsampling and Adaptive Guidance Networks for Dynamic Scene Deblurring

Pattern recognition(2022)

引用 3|浏览16
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摘要
•We propose a novel progressive downsampling and adaptive guidance network for retaining more the strong edges and other high-frequency information of the blurry images, so as to make the network model learn a more effective dynamic scene deblurring mapping.•In the proposed network, we design a multiscale blended activation residual block to learn the nonlinear characteristics of dynamic scene blur, which can alleviate the performance saturation problem caused by a single activation function and improve multiscale feature extraction ability.•We propose a multisupervision strategy for making the proposed network learn more robust and effective features and making the network possess more stable training and faster convergence.
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关键词
Progressive downsampling,Adaptive guidance,Blended activation,Multisupervision,Dynamic scene deblurring
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