Stereoscopic Image Super-Resolution with Stereo Consistent Feature
Wonil Song, Sungil Choi, Somi Jeong, Kwanghoon Sohn
摘要
We present a first attempt for stereoscopic image super-resolution (SR) for recovering high-resolution details while preserving stereo-consistency between stereoscopic image pair. The most challenging issue in the stereoscopic SR is that the texture details should be consistent for corresponding pixels in stereoscopic SR image pair. However, existing stereo SR methods cannot maintain the stereo-consistency, thus causing 3D fatigue to the viewers. To address this issue, in this paper, we propose a self and parallax attention mechanism (SPAM) to aggregate the information from its own image and the counterpart stereo image simultaneously, thus reconstructing high-quality stereoscopic SR image pairs. Moreover, we design an efficient network architecture and effective loss functions to enforce stereo-consistency constraint. Finally, experimental results demonstrate the superiority of our method over state-of-the-art SR methods in terms of both quantitative metrics and qualitative visual quality while maintaining stereo-consistency between stereoscopic image pair.
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- Feedback Network for Mutually Boosted Stereo Image Super-Resolution and Disparity EstimationQinyan Dai, Juncheng Li, Qiaosi Yi, Faming Fang 等ACM MM 2021 · 被引用 68 次
- Learning Parallax Transformer Network for Stereo Image JPEG Artifacts RemovalXuhao Jiang, Weimin Tan, Ri Cheng, Shili Zhou 等ACM MM 2022 · 被引用 7 次
- StereoINR: Cross-View Geometry Consistent Stereo Super Resolution with Implicit Neural RepresentationYi Liu, Xinyi Liu, Yi Wan, Panwang Xia 等ACM MM 2025
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