Residential College | false |
Status | 已發表Published |
NTIRE 2022 Challenge on High Dynamic Range Imaging: Methods and Results | |
Perez-Pellitero, Eduardo1; Catley-Chandar, Sibi1; Shaw, Richard1; Leonardis, Ales1; Timofte, Radu2,3; Zhang, Zexin4; Liu, Cen4; Peng, Yunbo4; Lin, Yue4; Yu, Gaocheng5; Zhang, Jin5; Ma, Zhe5; Wang, Hongbin5; Chen, Xiangyu6,7; Wang, Xintao6,8; Wu, Haiwei6; Liu, Lin9; Dong, Chao7; Zhou, Jiantao6; Yan, Qingsen10; Zhang, Song11; Chen, Weiye11; Liu, Yuhang10; Zhang, Zhen10; Zhang, Yanning12; Shi, Javen Qinfeng10; Gong, Dong13; Zhu, Dan14; Sun, Mengdi14; Chen, Guannan14; Hu, Yang15; Li, Haowei15; Zou, Baozhu15; Liu, Zhen16; Lin, Wenjie16; Jiang, Ting16; Jiang, Chengzhi16; Li, Xinpeng16; Han, Mingyan16; Fan, Haoqiang16; Sun, Jian16; Liu, Shuaicheng16; Marin-Vega, Juan17,18; Sloth, Michael18; Schneider-Kamp, Peter17; Rottger, Richard17; Li, Chunyang19; Bao, Long19; He, Gang11; Xu, Ziyao11; Xu, Li11; Zhan, Gen20; Sun, Ming21; Wen, Xing21; Li, Junlin20; Li, Jinjing22; Li, Chenghua23; Gang, Ruipeng24,32; Li, Fangya22,23; Liu, Chenming24,32; Feng, Shuang22,23; Lei, Fei25; Liu, Rui25; Ruan, Junxiang25; Dai, Tianhong26; Li, Wei27; Lu, Zhan27; Liu, Hengyan28; Huang, Peian28; Ren, Guangyu26; Luo, Yonglin29; Liu, Chang30; Tu, Qiang31; Ma, Sai32; Cao, Yizhen22; Tel, Steven33; Heyrman, Barthelemy33; Ginhac, Dominique33; Lee, Chul34; Kim, Gahyeon34; Park, Seonghyun34; An Gia Vien34; Truong Thanh Nhat Mai34; Yoon, Howoon35; Tu Vo36; Holston, Alexander36; Zaheer, Sheir36; Park, Chan Y.36 | |
2022 | |
Conference Name | IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR) |
Source Publication | IEEE Computer Society Conference on Computer Vision and Pattern Recognition Workshops |
Volume | 2022-June |
Pages | 1008-1022 |
Conference Date | 19-20 June 2022 |
Conference Place | New Orleans, LA |
Abstract | This paper reviews the challenge on constrained high dynamic range (HDR) imaging that was part of the New Trends in Image Restoration and Enhancement (NTIRE) workshop, held in conjunction with CVPR 2022. This manuscript focuses on the competition set-up, datasets, the proposed methods and their results. The challenge aims at estimating an HDR image from multiple respective low dynamic range (LDR) observations, which might suffer from under-or over-exposed regions and different sources of noise. The challenge is composed of two tracks with an emphasis on fidelity and complexity constraints: In Track 1, participants are asked to optimize objective fidelity scores while imposing a low-complexity constraint (i.e. solutions can not exceed a given number of operations). In Track 2, participants are asked to minimize the complexity of their solutions while imposing a constraint on fidelity scores (i.e. solutions are required to obtain a higher fidelity score than the prescribed baseline). Both tracks use the same data and metrics: Fidelity is measured by means of PSNR with respect to a ground-truth HDR image (computed both directly and with a canonical tonemapping operation), while complexity metrics include the number of Multiply-Accumulate (MAC) operations and runtime (in seconds). |
DOI | 10.1109/CVPRW56347.2022.00114 |
URL | View the original |
Indexed By | CPCI-S |
Language | 英語English |
WOS Research Area | Computer Science |
WOS Subject | Computer Science, Artificial Intelligence ; Computer Science, Theory & Methods |
WOS ID | WOS:000861612701009 |
Scopus ID | 2-s2.0-85129495382 |
Fulltext Access | |
Citation statistics | |
Document Type | Conference paper |
Collection | Faculty of Science and Technology |
Corresponding Author | Perez-Pellitero, Eduardo |
Affiliation | 1.Huawei Noahs Ark Lab, Hong Kong, Peoples R China 2.Univ Wurzburg, Wurzburg, Germany 3.Swiss Fed Inst Technol, Zurich, Switzerland 4.Netease Games AI Lab, Shanghai, Peoples R China 5.AntGroup, Hangzhou, Peoples R China 6.Univ Macau, Macau, Peoples R China 7.Chinese Acad Sci, Shenzhen Inst Adv Technol, Shenzhen, Peoples R China 8.Tencent PCG, Shenzhen, Peoples R China 9.Univ Sci & Technol China, Hefei, Peoples R China 10.Univ Adelaide, Adelaide, SA, Australia 11.Xidian Univ, Xian, Peoples R China 12.Northwestern Polytech Univ, Xian, Peoples R China 13.Univ New South Wales, Sydney, NSW, Australia 14.BOE Technol Grp Co Ltd, Beijing, Peoples R China 15.CZUR Technol Grp Co Ltd, Liaoning, Peoples R China 16.Megvii Technol, Beijing, Peoples R China 17.Univ Southern Denmark, Dept Math & Comp Sci IMADA, Aarhus, Denmark 18.Esoft Syst, Odense, Denmark 19.Xiaomi, Beijing, Peoples R China 20.ByteDance, Beijing, Peoples R China 21.Kuaishou Technol, Beijing, Peoples R China 22.Commun Univ China, Beijing, Peoples R China 23.Chinese Acad Sci, Inst Automat, Beijing, Peoples R China 24.NRTA, Acad Broadcasting Sci, Beijing, Peoples R China 25.Tetras AI Technol, Hangzhou, Peoples R China 26.Imperial Coll London, London, England 27.Tsinghua Univ, Beijing, Peoples R China 28.Univ Edinburgh, Edinburgh, Midlothian, Scotland 29.Sun Yat Sen Univ, Guangzhou, Peoples R China 30.Shanghai Jiao Tong Univ, Shanghai, Peoples R China 31.Beijing Inst Technol, Beijing, Peoples R China 32.NRTA, Acad Broadcasting Sciencience, Beijing, Peoples R China 33.Univ Burgundy, ImViA Lab, Dijon, France 34.Dongguk Univ, Dept Multimedia Engn, Seoul, South Korea 35.Gachon Univ, Seongnam, South Korea 36.KC Machine Learning Lab, Seoul, South Korea |
Recommended Citation GB/T 7714 | Perez-Pellitero, Eduardo,Catley-Chandar, Sibi,Shaw, Richard,et al. NTIRE 2022 Challenge on High Dynamic Range Imaging: Methods and Results[C], 2022, 1008-1022. |
APA | Perez-Pellitero, Eduardo., Catley-Chandar, Sibi., Shaw, Richard., Leonardis, Ales., Timofte, Radu., Zhang, Zexin., Liu, Cen., Peng, Yunbo., Lin, Yue., Yu, Gaocheng., Zhang, Jin., Ma, Zhe., Wang, Hongbin., Chen, Xiangyu., Wang, Xintao., Wu, Haiwei., Liu, Lin., Dong, Chao., Zhou, Jiantao., ...& Park, Chan Y. (2022). NTIRE 2022 Challenge on High Dynamic Range Imaging: Methods and Results. IEEE Computer Society Conference on Computer Vision and Pattern Recognition Workshops, 2022-June, 1008-1022. |
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