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DiT4SR: Taming Diffusion Transformer for Real-World Image Super-Resolution

About

Large-scale pre-trained diffusion models are becoming increasingly popular in solving the Real-World Image Super-Resolution (Real-ISR) problem because of their rich generative priors. The recent development of diffusion transformer (DiT) has witnessed overwhelming performance over the traditional UNet-based architecture in image generation, which also raises the question: Can we adopt the advanced DiT-based diffusion model for Real-ISR? To this end, we propose our DiT4SR, one of the pioneering works to tame the large-scale DiT model for Real-ISR. Instead of directly injecting embeddings extracted from low-resolution (LR) images like ControlNet, we integrate the LR embeddings into the original attention mechanism of DiT, allowing for the bidirectional flow of information between the LR latent and the generated latent. The sufficient interaction of these two streams allows the LR stream to evolve with the diffusion process, producing progressively refined guidance that better aligns with the generated latent at each diffusion step. Additionally, the LR guidance is injected into the generated latent via a cross-stream convolution layer, compensating for DiT's limited ability to capture local information. These simple but effective designs endow the DiT model with superior performance in Real-ISR, which is demonstrated by extensive experiments. Project Page: https://adam-duan.github.io/projects/dit4sr/.

Zheng-Peng Duan, Jiawei Zhang, Xin Jin, Ziheng Zhang, Zheng Xiong, Dongqing Zou, Jimmy S. Ren, Chun-Le Guo, Chongyi Li• 2025

Related benchmarks

TaskDatasetResultRank
Image Super-resolutionRealSR
PSNR23.5397
190
Image Super-resolutionDIV2K (val)
LPIPS0.3299
189
Image Super-resolutionDRealSR
MUSIQ64.95
149
Real-world Image Super-ResolutionDRealSR
LPIPS0.365
62
Real-world Image Super-ResolutionRealLQ250
MUSIQ0.7183
59
Blind Face RestorationLFW (test)--
52
Super-ResolutionRealLQ250
MUSIQ71.8311
49
Blind Face RestorationWebPhoto (test)--
35
Real-world Image Super-ResolutionRealLR200
MUSIQ70.469
34
Real-world Image Super-ResolutionRealSR
LPIPS0.319
31
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