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Auto-Encoded Supervision for Perceptual Image Super-Resolution

About

This work tackles the fidelity objective in the perceptual super-resolution~(SR). Specifically, we address the shortcomings of pixel-level $L_\text{p}$ loss ($\mathcal{L}_\text{pix}$) in the GAN-based SR framework. Since $L_\text{pix}$ is known to have a trade-off relationship against perceptual quality, prior methods often multiply a small scale factor or utilize low-pass filters. However, this work shows that these circumventions fail to address the fundamental factor that induces blurring. Accordingly, we focus on two points: 1) precisely discriminating the subcomponent of $L_\text{pix}$ that contributes to blurring, and 2) only guiding based on the factor that is free from this trade-off relationship. We show that they can be achieved in a surprisingly simple manner, with an Auto-Encoder (AE) pretrained with $L_\text{pix}$. Accordingly, we propose the Auto-Encoded Supervision for Optimal Penalization loss ($L_\text{AESOP}$), a novel loss function that measures distance in the AE space, instead of the raw pixel space. Note that the AE space indicates the space after the decoder, not the bottleneck. By simply substituting $L_\text{pix}$ with $L_\text{AESOP}$, we can provide effective reconstruction guidance without compromising perceptual quality. Designed for simplicity, our method enables easy integration into existing SR frameworks. Experimental results verify that AESOP can lead to favorable results in the perceptual SR task.

MinKyu Lee, Sangeek Hyun, Woojin Jun, Jae-Pil Heo• 2024

Related benchmarks

TaskDatasetResultRank
Super-ResolutionManga109
PSNR30.398
298
Super-ResolutionBSD100
PSNR26.324
149
Image Super-resolutionDRealSR
MANIQA0.3917
78
Image Super-resolutionDIV2K (val)
LPIPS0.0893
59
Super-ResolutionGeneral100
LPIPS0.071
25
Super-ResolutionRealSR v3 (test)
MUSIQ63.6489
13
Super-ResolutionSet14
FID38.907
10
Super-ResolutionGeneral100
FID24.592
10
Super-ResolutionUrban100
FID15.547
10
Super-ResolutionManga109
FID9.23
10
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