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SVG: 3D Stereoscopic Video Generation via Denoising Frame Matrix

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Video generation models have demonstrated great capabilities of producing impressive monocular videos, however, the generation of 3D stereoscopic video remains under-explored. We propose a pose-free and training-free approach for generating 3D stereoscopic videos using an off-the-shelf monocular video generation model. Our method warps a generated monocular video into camera views on stereoscopic baseline using estimated video depth, and employs a novel frame matrix video inpainting framework. The framework leverages the video generation model to inpaint frames observed from different timestamps and views. This effective approach generates consistent and semantically coherent stereoscopic videos without scene optimization or model fine-tuning. Moreover, we develop a disocclusion boundary re-injection scheme that further improves the quality of video inpainting by alleviating the negative effects propagated from disoccluded areas in the latent space. We validate the efficacy of our proposed method by conducting experiments on videos from various generative models, including Sora [4 ], Lumiere [2], WALT [8 ], and Zeroscope [ 42]. The experiments demonstrate that our method has a significant improvement over previous methods. The code will be released at \url{https://daipengwa.github.io/SVG_ProjectPage}.

Peng Dai, Feitong Tan, Qiangeng Xu, David Futschik, Ruofei Du, Sean Fanello, Xiaojuan Qi, Yinda Zhang• 2024

Related benchmarks

TaskDatasetResultRank
Stereoscopic Video GenerationStereo4D (test)
iSQoE0.521
7
Stereo Video SynthesisStereo4D Parallel Format
MS-SSIM54.3
7
Stereoscopic Video GenerationAVP (test)
iSQoE0.519
6
Stereoscopic Video GenerationiPhone (test)
iSQoE0.508
6
Mono-to-stereo video conversionStereo4D (test)
PSNR22.9
6
Mono-to-stereo video conversionApple Vision Pro Spatial Video (out-of-distribution)
PSNR19.3
5
Mono-to-stereo video conversionEgo4D (test)
PSNR12.7
5
Monocular to Binocular Stereo Video ConversionSpatial Video dataset iPhone portion (test)
PSNR16.3
5
Stereo Video Synthesis3D Movie Converged Format
SSIM65.3
5
Monocular-to-Stereo Video GenerationHuman Evaluation 15 scenes 1.0
Stereo Effect (SE)4
4
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