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Reference-based Video Super-Resolution Using Multi-Camera Video Triplets
Junyong Lee; Myeonghee Lee; Sunghyun Cho; Seungyong Lee

Abstract
We propose the first reference-based video super-resolution (RefVSR) approach that utilizes reference videos for high-fidelity results. We focus on RefVSR in a triple-camera setting, where we aim at super-resolving a low-resolution ultra-wide video utilizing wide-angle and telephoto videos. We introduce the first RefVSR network that recurrently aligns and propagates temporal reference features fused with features extracted from low-resolution frames. To facilitate the fusion and propagation of temporal reference features, we propose a propagative temporal fusion module. For learning and evaluation of our network, we present the first RefVSR dataset consisting of triplets of ultra-wide, wide-angle, and telephoto videos concurrently taken from triple cameras of a smartphone. We also propose a two-stage training strategy fully utilizing video triplets in the proposed dataset for real-world 4x video super-resolution. We extensively evaluate our method, and the result shows the state-of-the-art performance in 4x super-resolution.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| reference-based-video-super-resolution-on | RCAN-ℓ1 [zhang2018rcan] | PSNR: 31.07 |
| reference-based-video-super-resolution-on | DCSR-ℓ1 [wang2021DCSR] | PSNR: 32.43 |
| reference-based-video-super-resolution-on | RefVSR-ℓ1 | PSNR: 34.74 |
| reference-based-video-super-resolution-on | RefVSR-small-ℓ1 | PSNR: 33.88 |
| reference-based-video-super-resolution-on | EDVR-ℓch [wang2019edvr] | PSNR: 33.47 |
| reference-based-video-super-resolution-on | RefVSR-IR-ℓ1 | PSNR: 34.86 |
| reference-based-video-super-resolution-on | TTSR-ℓ1 [yang2020TTSR] | PSNR: 30.83 |
| reference-based-video-super-resolution-on | IconVSR-ℓch [chan2021basicvsr] | PSNR: 33.80 |
| reference-based-video-super-resolution-on | BasicVSR-ℓch [chan2021basicvsr] | PSNR: 33.66 |
| reference-based-video-super-resolution-on | EDVR-M-ℓch [wang2019edvr] | PSNR: 33.26 |
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