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Electrical Engineering and Systems Science > Image and Video Processing

arXiv:1911.01249 (eess)
[Submitted on 4 Nov 2019 ]

Title: AIM 2019 Challenge on Constrained Super-Resolution: Methods and Results

Title: AIM 2019 非受限超分辨率挑战赛:方法和结果

Authors:Kai Zhang, Shuhang Gu, Radu Timofte, Zheng Hui, Xiumei Wang, Xinbo Gao, Dongliang Xiong, Shuai Liu, Ruipeng Gang, Nan Nan, Chenghua Li, Xueyi Zou, Ning Kang, Zhan Wang, Hang Xu, Chaofeng Wang, Zheng Li, Linlin Wang, Jun Shi, Wenyu Sun, Zhiqiang Lang, Jiangtao Nie, Wei Wei, Lei Zhang, Yazhe Niu, Peijin Zhuo, Xiangzhen Kong, Long Sun, Wenhao Wang
Abstract: This paper reviews the AIM 2019 challenge on constrained example-based single image super-resolution with focus on proposed solutions and results. The challenge had 3 tracks. Taking the three main aspects (i.e., number of parameters, inference/running time, fidelity (PSNR)) of MSRResNet as the baseline, Track 1 aims to reduce the amount of parameters while being constrained to maintain or improve the running time and the PSNR result, Tracks 2 and 3 aim to optimize running time and PSNR result with constrain of the other two aspects, respectively. Each track had an average of 64 registered participants, and 12 teams submitted the final results. They gauge the state-of-the-art in single image super-resolution.
Abstract: 本文回顾了2019年AIM关于约束性基于示例的单图像超分辨率挑战,重点关注提出的解决方案和结果。 该挑战有3个赛道。 以MSRResNet的三个主要方面(即参数数量、推理/运行时间、保真度(PSNR))作为基准,Track 1旨在减少参数数量,同时受到保持或提高运行时间和PSNR结果的约束,Tracks 2和3分别旨在优化运行时间和PSNR结果,受其他两个方面的约束。 每个赛道平均有64名注册参与者,12支团队提交了最终结果。 它们评估了单图像超分辨率的最先进技术。
Subjects: Image and Video Processing (eess.IV) ; Computer Vision and Pattern Recognition (cs.CV)
Cite as: arXiv:1911.01249 [eess.IV]
  (or arXiv:1911.01249v1 [eess.IV] for this version)
  https://doi.org/10.48550/arXiv.1911.01249
arXiv-issued DOI via DataCite

Submission history

From: Kai Zhang [view email]
[v1] Mon, 4 Nov 2019 14:39:51 UTC (2,756 KB)
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