This is the Linux app named VGGSfM whose latest release can be downloaded as vggsfmsourcecode.tar.gz. It can be run online in the free hosting provider OnWorks for workstations.
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VGGSfM
BESCHREIBUNG
VGGSfM is an advanced structure-from-motion (SfM) framework jointly developed by Meta AI Research (GenAI) and the University of Oxford’s Visual Geometry Group (VGG). It reconstructs 3D geometry, dense depth, and camera poses directly from unordered or sequential images and videos. The system combines learned feature matching and geometric optimization to generate high-quality camera calibrations, sparse/dense point clouds, and depth maps in standard COLMAP format. Version 2.0 adds support for dynamic scene handling, dense point cloud export, video-based reconstruction (1000+ frames), and integration with Gaussian Splatting pipelines. It leverages tools like PyCOLMAP, poselib, LightGlue, and PyTorch3D for feature matching, pose estimation, and visualization. With minimal configuration, users can process single scenes or full video sequences, apply motion masks to exclude moving objects, and train neural radiance or splatting models directly from reconstructed outputs.
Eigenschaften
- End-to-end 3D reconstruction from images or videos with automatic camera pose estimation
- Outputs in standard COLMAP format compatible with NeRF and Gaussian Splatting pipelines
- Supports over 1000 sequential frames with sliding-window video processing
- Handles dynamic/moving scenes via optional binary masks
- Exports dense point clouds and dense depth maps (beta)
- Easily integrates with gsplat for Gaussian Splat training
- Interactive visualization using Gradio or Visdom
- Pretrained model auto-downloaded from Hugging Face or Google Drive
Programmiersprache
Python, Unix-Shell
Kategorien
This is an application that can also be fetched from https://sourceforge.net/projects/vggsfm.mirror/. It has been hosted in OnWorks in order to be run online in an easiest way from one of our free Operative Systems.