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Suhwan Cho; Seoung Wug Oh; Sangyoun Lee; Joon-Young Lee

Abstract
Video inpainting (VI) is a challenging task that requires effective propagation of observable content across frames while simultaneously generating new content not present in the original video. In this study, we propose a robust and practical VI framework that leverages a large generative model for reference generation in combination with an advanced pixel propagation algorithm. Powered by a strong generative model, our method not only significantly enhances frame-level quality for object removal but also synthesizes new content in the missing areas based on user-provided text prompts. For pixel propagation, we introduce a one-shot pixel pulling method that effectively avoids error accumulation from repeated sampling while maintaining sub-pixel precision. To evaluate various VI methods in realistic scenarios, we also propose a high-quality VI benchmark, HQVI, comprising carefully generated videos using alpha matte composition. On public benchmarks and the HQVI dataset, our method demonstrates significantly higher visual quality and metric scores compared to existing solutions. Furthermore, it can process high-resolution videos exceeding 2K resolution with ease, underscoring its superiority for real-world applications.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| video-inpainting-on-hqvi-240p | RGVI w/o Ref. | LPIPS: 0.0390 PSNR: 31.60 SSIM: 0.9559 VFID: 0.1868 |
| video-inpainting-on-hqvi-240p | RGVI | LPIPS: 0.0335 PSNR: 30.66 SSIM: 0.9527 VFID: 0.1825 |
| video-inpainting-on-hqvi-2k | RGVI | LPIPS: 0.0357 PSNR: 30.10 SSIM: 0.9489 VFID: 0.0058 |
| video-inpainting-on-hqvi-2k | RGVI w/o Ref. | LPIPS: 0.0403 PSNR: 29.81 SSIM: 0.9501 VFID: 0.0101 |
| video-inpainting-on-hqvi-480p | RGVI w/o Ref. | LPIPS: 0.0403 PSNR: 31.19 SSIM: 0.9534 VFID: 0.0404 |
| video-inpainting-on-hqvi-480p | RGVI | LPIPS: 0.0342 PSNR: 30.90 SSIM: 0.9513 VFID: 0.0311 |
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