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Lightweight Bimodal Network for Single-Image Super-Resolution via Symmetric CNN and Recursive Transformer (2204.13286v1)

Published 28 Apr 2022 in cs.CV

Abstract: Single-image super-resolution (SISR) has achieved significant breakthroughs with the development of deep learning. However, these methods are difficult to be applied in real-world scenarios since they are inevitably accompanied by the problems of computational and memory costs caused by the complex operations. To solve this issue, we propose a Lightweight Bimodal Network (LBNet) for SISR. Specifically, an effective Symmetric CNN is designed for local feature extraction and coarse image reconstruction. Meanwhile, we propose a Recursive Transformer to fully learn the long-term dependence of images thus the global information can be fully used to further refine texture details. Studies show that the hybrid of CNN and Transformer can build a more efficient model. Extensive experiments have proved that our LBNet achieves more prominent performance than other state-of-the-art methods with a relatively low computational cost and memory consumption. The code is available at https://github.com/IVIPLab/LBNet.

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Authors (6)
  1. Guangwei Gao (40 papers)
  2. Zhengxue Wang (9 papers)
  3. Juncheng Li (121 papers)
  4. Wenjie Li (183 papers)
  5. Yi Yu (223 papers)
  6. Tieyong Zeng (71 papers)
Citations (86)