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End-To-End Trainable Video Super-Resolution Based...
Conference

End-To-End Trainable Video Super-Resolution Based on a New Mechanism for Implicit Motion Estimation and Compensation

Abstract

Video super-resolution aims at generating a high-resolution video from its low-resolution counterpart. With the rapid rise of deep learning, many recently proposed video super-resolution methods use convolutional neural networks in conjunction with explicit motion compensation to capitalize on statistical dependencies within and across low-resolution frames. Two common issues of such methods are noteworthy. Firstly, the quality of the final …

Authors

Liu X; Kong L; Zhou Y; Zhao J; Chen J

Volume

00

Pagination

pp. 2405-2414

Publisher

Institute of Electrical and Electronics Engineers (IEEE)

Publication Date

March 5, 2020

DOI

10.1109/wacv45572.2020.9093552

Name of conference

2020 IEEE Winter Conference on Applications of Computer Vision (WACV)