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VISION-XL: High Definition Video Inverse Problem Solver using Latent Image Diffusion Models

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In this paper, we propose a novel framework for solving high-definition video inverse problems using latent image diffusion models. Building on recent advancements in spatio-temporal optimization for video inverse problems using image diffusion models, our approach leverages latent-space diffusion models to achieve enhanced video quality and resolution. To address the high computational demands of processing high-resolution frames, we introduce a pseudo-batch consistent sampling strategy, allowing efficient operation on a single GPU. Additionally, to improve temporal consistency, we present pseudo-batch inversion, an initialization technique that incorporates informative latents from the measurement. By integrating with SDXL, our framework achieves state-of-the-art video reconstruction across a wide range of spatio-temporal inverse problems, including complex combinations of frame averaging and various spatial degradations, such as deblurring, super-resolution, and inpainting. Unlike previous methods, our approach supports multiple aspect ratios (landscape, vertical, and square) and delivers HD-resolution reconstructions (exceeding 1280x720) in under 6 seconds per frame on a single NVIDIA 4090 GPU.

Taesung Kwon, Jong Chul Ye• 2024

Related benchmarks

TaskDatasetResultRank
Video Super-ResolutionZeroDay (test)
PSNR25.84
22
Video Restoration (Problem B: Temporal blur + Spatial SRx8)Adobe240
FVMD82.92
5
Video Restoration Efficiency25-frame video clip 1280 x 768 resolution
Time (s)176
5
Video Restoration (Problem C: Temporal SRx8 + Spatial SRx8)Adobe240
FVMD1.60e+3
4
Video Restoration (Problem C: Temp. SRx8 + SRx8)GoPro 240
FVMD995.9
4
Video Restoration (Problem B: Temp. blur + SRx8)GoPro240
FVMD52.03
3
Video Restoration (Problem A: Temp. SRx4 + SRx4)GoPro240
FVMD282.2
3
Video Restoration (Problem A: Temporal SRx4 + Spatial SRx4)Adobe240
FVMD1.14e+3
3
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