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Sehwan Ki
Sehwan Ki
kaist.ac.kr의 이메일 확인됨 - 홈페이지
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Ntire 2018 challenge on image dehazing: Methods and results
C Ancuti, CO Ancuti, R Timofte
Proceedings of the IEEE Conference on Computer Vision and Pattern …, 2018
1682018
Learning-Based Just-Noticeable-Quantization-Distortion Modeling for Perceptual Video Coding
S Ki, SH Bae, M Kim, H Ko
IEEE Transactions on Image Processing 27 (7), 3178-3193, 2018
672018
A novel just-noticeable-difference-based saliency-channel attention residual network for full-reference image quality predictions
S Seo, S Ki, M Kim
IEEE Transactions on Circuits and Systems for Video Technology 31 (7), 2602-2616, 2020
54*2020
Fully end-to-end learning based conditional boundary equilibrium GAN with receptive field sizes enlarged for single ultra-high resolution image dehazing
S Ki, H Sim, JS Choi, S Kim, M Kim
Proceedings of the IEEE Conference on Computer Vision and Pattern …, 2018
332018
High-resolution image dehazing with respect to training losses and receptive field sizes
H Sim, S Ki, JS Choi, S Seo, S Kim, M Kim
Proceedings of the IEEE Conference on Computer Vision and Pattern …, 2018
252018
Learning-Based JND-Directed HDR Video Preprocessing for Perceptually Lossless Compression With HEVC
S Ki, J Do, M Kim
IEEE Access 8, 228605-228618, 2020
122020
Just-noticeable-quantization-distortion based preprocessing for perceptual video coding
S Ki, M Kim, H Ko
2017 IEEE Visual Communications and Image Processing (VCIP), 1-4, 2017
82017
Just noticeable quantization blur model based on the DCT complexity feature of the image
S Ki, M Kim
Proceedings of the Korean Society of Broadcast Engineers Conference, 70-72, 2016
2016
JND based Video Pre-processing Adaptive to Quantization Step sizes for Perceptual Redundancy Reduction
S Ki, M Kim
Proceedings of the Korean Society of Broadcast Engineers Conference, 100-102, 2016
2016
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