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Accurate Image Super-Resolution Using Very Deep Convolutional Networks

Jiwon Kim; Jung Kwon Lee; Kyoung Mu Lee · OpenAlex · 2016

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We present a highly accurate single-image superresolution (SR) method. Our method uses a very deep convolutional network inspired by VGG-net used for ImageNet classification [19]. We find increasing our network depth shows a significant improvement in accuracy. Our final model uses 20 weight layers. By cascading small filters many times in a deep network structure, contextual information over large image regions is exploited in an efficient way. With very deep networks, however, convergence speed becomes a critical issue during training. We propose a simple yet effective training procedure. We learn residuals only and use extremely high learning rates (104 times higher than SRCNN [6]) enabled by adjustable gradient clipping. Our proposed method performs better than existing methods in accuracy and visual improvements in our results are easily noticeable.

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APA 7

Kim, J, Lee, J. K, & Lee, K. M. (2016). Accurate Image Super-Resolution Using Very Deep Convolutional Networks. https://doi.org/10.1109/cvpr.2016.182

MLA

Kim, Jiwon, et al. "Accurate Image Super-Resolution Using Very Deep Convolutional Networks." 2016. https://doi.org/10.1109/cvpr.2016.182.

Chicago

Kim, Jiwon, Jung Kwon Lee, and Kyoung Mu Lee. 2016. "Accurate Image Super-Resolution Using Very Deep Convolutional Networks.". https://doi.org/10.1109/cvpr.2016.182.

Harvard

Kim, J, Lee, J. K. and Lee, K. M. 2016, Accurate Image Super-Resolution Using Very Deep Convolutional Networks, OpenAlex, available at: https://doi.org/10.1109/cvpr.2016.182 [Accessed 7 Aug. 2026].

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Title
Accurate Image Super-Resolution Using Very Deep Convolutional Networks
Author / contributors
Jiwon Kim; Jung Kwon Lee; Kyoung Mu Lee
Publisher
OpenAlex
Publication year
2016
Language
English

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