stable video diffusion img2vid

    stableVideoDiffusion_v10.safetensors Checkpoint / Other

    Model Information
    Model Name
    stable video diffusion img2vid
    Version
    v1.0
    Size
    8.90 GB
    Downloads
    8,081
    Trigger
    video
    Torrent Details
    BTIH
    8EF4BACE2F2EE8DEF211BEA878FF030F62FA9041
    BTMH
    73556B3CAE0F9B7A373D843BD0CC9D179702DC80CAE80B0D5013D9A0391B3D26
    SHA256
    3E0994626DF395A3831DE024F11B2D9D241143BB6F16E2EFBACCED248AA18CE0
    Upload Date
    5 months ago
    Uploader
    CivitasBay.org
    Status
    2 Seeders
    0 Peers
    Info

    (((NOT MY MODEL))) Stable Video Diffusion (SVD) Image-to-Video is a diffusion model that takes in a still image as a conditioning frame, and generates a video from it. (SVD) Image-to-Video is a latent diffusion model trained to generate short video clips from an image conditioning. This model was trained to generate 25 frames at resolution 576x1024 given a context frame of the same size, finetuned from SVD Image-to-Video [14 frames]. We also finetune the widely used f8-decoder for temporal consistency. For convenience,

    real repo stabilityai/stable-video-diffusion-img2vid-xt at main (huggingface.co)

    a latent video diffusion model for high-resolution, state-of-the-art text-tovideo and image-to-video synthesis. To construct its pretraining dataset, we conduct a systematic data selection and scaling study, and propose a method to curate vast amounts of video data and turn large and noisy video collection into suitable datasets for generative video models. Furthermore, we introduce three distinct stages of video model training which we separately analyze to assess their impact on the final model performance. Stable Video Diffusion provides a powerful video representation from which we finetune video models for state-of-the-art image-to-video synthesis and other highly relevant applications such as LoRAs for camera control. Finally we provide a pioneering study on multi-view finetuning of video diffusion models and show that SVD constitutes a strong 3D prior, which obtains stateof-the-art results in multi-view synthesis while using only a 8 fraction of the compute of previous methods.

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