Papers › Bringing Alive Blurred Moments

Bringing Alive Blurred Moments

9 Apr 2018CVPR 2019 6arXiv:1804.02913archive 2025-07-28

Kuldeep Purohit, Anshul Shah, A. N. Rajagopalan

We present a solution for the goal of extracting a video from a single motion blurred image to sequentially reconstruct the clear views of a scene as beheld by the camera during the time of exposure. We first learn motion representation from sharp videos in an unsupervised manner through training of a convolutional recurrent video autoencoder network that performs a surrogate task of video reconstruction. Once trained, it is employed for guided training of a motion encoder for blurred images. This network extracts embedded motion information from the blurred image to generate a sharp video in conjunction with the trained recurrent video decoder. As an intermediate step, we also design an efficient architecture that enables real-time single image deblurring and outperforms competing methods across all factors: accuracy, speed, and compactness. Experiments on real scenes and standard datasets demonstrate the superiority of our framework over the state-of-the-art and its ability to generate a plausible sequence of temporally consistent sharp frames.

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anshulbshah/Blurred-Image-to-Video officialmentioned on GitHub report

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Tasks

DeblurringDecoderImage DeblurringSingle Image DeblurringVideo Reconstruction

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Deblurring GoPro Blurred-Image-to-Video PSNR 30.58 #49 of 56 Archive leaderboard report
Deblurring GoPro Blurred-Image-to-Video SSIM 0.941 #49 of 56 Archive leaderboard report
Image Deblurring GoPro Blurred-Image-to-Video PSNR 30.58 #47 of 55 Archive leaderboard report
Image Deblurring GoPro Blurred-Image-to-Video SSIM 0.941 #47 of 55 Archive leaderboard report

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