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CAT4D: Create Anything in 4D with Multi-View Video Diffusion Models

About

We present CAT4D, a method for creating 4D (dynamic 3D) scenes from monocular video. CAT4D leverages a multi-view video diffusion model trained on a diverse combination of datasets to enable novel view synthesis at any specified camera poses and timestamps. Combined with a novel sampling approach, this model can transform a single monocular video into a multi-view video, enabling robust 4D reconstruction via optimization of a deformable 3D Gaussian representation. We demonstrate competitive performance on novel view synthesis and dynamic scene reconstruction benchmarks, and highlight the creative capabilities for 4D scene generation from real or generated videos. See our project page for results and interactive demos: https://cat-4d.github.io/.

Rundi Wu, Ruiqi Gao, Ben Poole, Alex Trevithick, Changxi Zheng, Jonathan T. Barron, Aleksander Holynski• 2024

Related benchmarks

TaskDatasetResultRank
Novel View SynthesisiPhone dataset
SSIM0.666
23
4D ReconstructionDyCheck (test)
mPSNR18.24
21
Sparse-view bullet-time 3D reconstructionNSFF (test)
PSNR20.79
3
4D Scene SynthesisNSFF Fixed Viewpoint, Varying Time
PSNR21.97
2
4D Scene SynthesisNSFF Varying Viewpoint, Fixed Time
PSNR21.68
2
4D Scene SynthesisNSFF Varying Viewpoint, Varying Time
PSNR19.73
2
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