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MFSRNet: spatial-angular correlation retaining for light field super-resolution

delete2023-04-06
delete3
PRE
AI
S
Sizhe Wang
H
Hao Sheng *
D
Da Yang
Z
Zhenglong Cui
R
Ruixuan Cong
W
Wei Ke
DOI:10.1007/s10489-023-04558-9delete
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Abstract

Abstract

En 中文
Light field (LF) images acquired by hand-held devices suffer from a trade-off between spatial and angular resolutions. To solve this problem, super-resolution (SR) in the spatial and angular domains is studied separately in previous works. However, spatial-angular correlation can not be reconstructed effectively by the separate SR methods. In this paper, a multi-scale feature-assisted synchronous SR network (MFSRNet) is presented to retain spatial-angular correlation for spatial and angular super-resolution, which consists of four modules: multi-scale feature extraction (MFE), view relation reconstruction (VRR), SR information acquisition (SIA) and up-sampling. The MFE module is used to acquire multi-scale angular SR features from low-resolution LF. In the VRR module, these multi-scale features are concatenated with two original adjacent low-resolution view images to reconstruct the angular relation among original and new views. Then, a continuous fusion mechanism is proposed in the SIA module to obtain spatial SR information from four surrounding views and reconstruct the spatial-angular correlation in LF. Finally, super-resolved LF is generated by allocating the sub-pixel information in the up-sampling module. Furthermore, a combined loss is proposed to provide constraints on both angular feature extraction and spatial and angular synchronous SR, and train MFSRNet in an end-to-end fashion. On synthetic and real-world datasets, experimental results show that our algorithm outperforms other state-of-the-art methods in both visual and numerical evaluations. Especially, our method brings significant improvements for sparse LFs from the dataset STFgantry using MFSRNet. Our method improves PSNR/SSIM while preserving the inherent epipolar property in LF.
Keywords:
Light field super-resolution
Spatial-angular correlation retaining
Spatial and angular synchronous SR
Multi-scale features
MFSRNet

Journal

Applied Intelligence cover
Applied Intelligence
IF:
3.5
Papers:
7.5K
Citations:
1.7W

Organization

B
Beihang University
Scholars:
5.2W
Papers: 4.1W
Citations: 37