An Omnidirectional Image Super-Resolution Method Based on Enhanced SwinIR

Author:

Yao Xiang12,Pan Yun12,Wang Jingtao12

Affiliation:

1. State Key Laboratory of Media Convergence and Communication, Communication University of China, Beijing 100024, China

2. School of Computer and Cyberspace Security, Communication University of China, Beijing 100024, China

Abstract

For the significant distortion problem caused by the special projection method of equi-rectangular projection (ERP) images, this paper proposes an omnidirectional image super-resolution algorithm model based on position information transformation, taking SwinIR as the base. By introducing a space position transformation module that supports deformable convolution, the image preprocessing process is optimized to reduce the distortion effects in the polar regions of the ERP image. Meanwhile, by introducing deformable convolution in the deep feature extraction process, the model’s adaptability to local deformations of images is enhanced. Experimental results on publicly available datasets have shown that our method outperforms SwinIR, with an average improvement of over 0.2 dB in WS-PSNR and over 0.030 in WS-SSIM for ×4 pixel upscaling.

Funder

National Natural Science Foundation of China

Research on the strategic project of the Science and Technology Commission of the Ministry of Education of China

Publisher

MDPI AG

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