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Papers/Cascaded Deep Video Deblurring Using Temporal Sharpness Pr...

Cascaded Deep Video Deblurring Using Temporal Sharpness Prior

Jinshan Pan, Haoran Bai, Jinhui Tang

2020-04-06CVPR 2020 6DeblurringOptical Flow EstimationVideo Deblurring
PaperPDFCode(official)

Abstract

We present a simple and effective deep convolutional neural network (CNN) model for video deblurring. The proposed algorithm mainly consists of optical flow estimation from intermediate latent frames and latent frame restoration steps. It first develops a deep CNN model to estimate optical flow from intermediate latent frames and then restores the latent frames based on the estimated optical flow. To better explore the temporal information from videos, we develop a temporal sharpness prior to constrain the deep CNN model to help the latent frame restoration. We develop an effective cascaded training approach and jointly train the proposed CNN model in an end-to-end manner. We show that exploring the domain knowledge of video deblurring is able to make the deep CNN model more compact and efficient. Extensive experimental results show that the proposed algorithm performs favorably against state-of-the-art methods on the benchmark datasets as well as real-world videos.

Results

TaskDatasetMetricValueModel
DeblurringDVD PSNR32.13CDVD-TSP
DeblurringGoProPSNR31.67CDVD-TSP
DeblurringGoProSSIM0.9279CDVD-TSP
DeblurringBeam-Splitter Deblurring (BSD)PSNR31.58CDVD-TSP
2D ClassificationDVD PSNR32.13CDVD-TSP
2D ClassificationGoProPSNR31.67CDVD-TSP
2D ClassificationGoProSSIM0.9279CDVD-TSP
2D ClassificationBeam-Splitter Deblurring (BSD)PSNR31.58CDVD-TSP
10-shot image generationDVD PSNR32.13CDVD-TSP
10-shot image generationGoProPSNR31.67CDVD-TSP
10-shot image generationGoProSSIM0.9279CDVD-TSP
10-shot image generationBeam-Splitter Deblurring (BSD)PSNR31.58CDVD-TSP
Blind Image DeblurringDVD PSNR32.13CDVD-TSP
Blind Image DeblurringGoProPSNR31.67CDVD-TSP
Blind Image DeblurringGoProSSIM0.9279CDVD-TSP
Blind Image DeblurringBeam-Splitter Deblurring (BSD)PSNR31.58CDVD-TSP

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