{"id":24578411,"url":"https://github.com/ajhamdi/ges-splatting","last_synced_at":"2025-10-14T13:12:18.803Z","repository":{"id":222768125,"uuid":"757405426","full_name":"ajhamdi/ges-splatting","owner":"ajhamdi","description":"Original reference implementation of \"GES : Generalized Exponential Splatting for Efficient Radiance Field Rendering\" [CVPR 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GES: Generalized Exponential Splatting for Efficient Radiance Field Rendering [CVPR 2024]\n[webpage](https://abdullahamdi.com/ges/) | [arXiv](https://arxiv.org/abs/2402.10128) | [Video](https://youtu.be/edSvNy3roV8) \n\n\u003cimg src=\"assets/teaser.png\" width=\"430\" /\u003e \u003cimg src=\"assets/gef_eq.png\" width=\"360\" /\u003e\n\n[Abdullah Hamdi](https://abdullahamdi.com/) \u003csup\u003e1\u003c/sup\u003e, [Luke Melas-Kyriazi](https://lukemelas.github.io/) \u003csup\u003e1\u003c/sup\u003e, [Guocheng Qian](https://guochengqian.github.io/) \u003csup\u003e2,4\u003c/sup\u003e, [Jinjie Mai](https://cemse.kaust.edu.sa/people/person/jinjie-mai) \u003csup\u003e2\u003c/sup\u003e, [Ruoshi Liu](https://ruoshiliu.github.io/) \u003csup\u003e3\u003c/sup\u003e, [Carl Vondrick](https://www.cs.columbia.edu/~vondrick/) \u003csup\u003e3\u003c/sup\u003e, [Bernard Ghanem](https://www.bernardghanem.com/) \u003csup\u003e2\u003c/sup\u003e, [Andrea Vedaldi](https://www.robots.ox.ac.uk/~vedaldi/) \u003csup\u003e1\u003c/sup\u003e\n\n\u003csup\u003e1\u003c/sup\u003e [Visual Geometry Group, University of Oxford](http://www.robots.ox.ac.uk/~vgg/)\n\u003csup\u003e2\u003c/sup\u003e [KAUST](https://www.kaust.edu.sa/),\n\u003csup\u003e3\u003c/sup\u003e [Columbia University](https://www.columbia.edu/),\n\u003csup\u003e4\u003c/sup\u003e [Snap Inc.](https://www.snap.com/),\n\n\n## Overview\n\nWe provide a PyTorch implementation of our Generalized Exponential Splatting (GES) method, as well as the Gaussian Splatting method for comparison. We also provide the code to reproduce the results in our paper. The code is heavily based on [3D Gaussian Splatting for Real-Time Radiance Field Rendering](https://repo-sam.inria.fr/fungraph/3d-gaussian-splatting/). The `.ply` files output of the GES  are __exactly__ the same type as the Gaussian Splatting `.ply` files. You can use the __same rendering code and utilities__ to visualize the results or edit them. The extra parameter [`shape`](https://github.com/ajhamdi/ges-splatting/blob/f66ba3457f0bc15231e2009e219d34894130abac/scene/laplacian_model.py#L160) is fused with the other gaussian parameters before saving the `.ply` file.    \n\n### Colab Notebook\nA great way to get started with GES is to use the online [notebook](https://github.com/camenduru/ges-splatting-jupyter) produced by [camenduru](https://github.com/camenduru) with no requirments.\n\n\n### Hardware Requirements\n\n- CUDA-ready GPU with Compute Capability 7.0+\n- 24 GB VRAM (to train to paper evaluation quality)\n\n### Software Requirements\n- Conda (recommended for easy setup)\n- C++ Compiler for PyTorch extensions (we used Visual Studio 2019 for Windows)\n- CUDA SDK 11 for PyTorch extensions, install *after* Visual Studio (we used 11.8, **known issues with 11.6**)\n- C++ Compiler and CUDA SDK must be compatible\n\n### Setup\n\nOur default, provided install method is based on Conda package and environment management:\n```shell\nSET DISTUTILS_USE_SDK=1 # Windows only\nconda env create --file environment.yml\nconda activate ges\n```\nPlease note that this process assumes that you have CUDA SDK **11** installed, not **12**. For modifications, see below. You can also use the same conda environment of the [Gaussian Splatting repo](https://repo-sam.inria.fr/fungraph/3d-gaussian-splatting/).\n\n\n## Running\nDownload the datasets from the [original repository](https://repo-sam.inria.fr/fungraph/3d-gaussian-splatting/), and place them in the `tandt_db` and `nerf_360` directories.\n\n\nFor example, let's assume you download `tandt_db` dataset, please run following to reproduce Gaussian splatting results, but under the setup of GES.\n```\npython train_gaussian.py -s ./tandt_db/tandt/train -m ./outputs/train --eval \n```\n\nAnd run following to reproduce our main GES results with default settings.\n\n```\npython train_ges.py -s ./tandt_db/tandt/train -m ./outputs/train --eval \n```\n\n\n\nTo reproduce all the results in our paper, prepare your datasets according to the script, and then run it:\n\n```\nbash ges_full_eval.sh # for our GES implementation\n```\n\nThe detailed numerical results of GES (per scene) can be found in [here](https://github.com/ajhamdi/ges-splatting/blob/main/assets/GES_results_data.xlsx)\n\n\n## Numerical Simulation for Generlized Exponential Function (GEF)\n\nCheck the notebook `simulation.ipynb` [here](https://github.com/ajhamdi/ges-splatting/blob/main/simulation.ipynb) for the numerical simulation of the Generalized Exponential Function (GEF), that GES is based on, as well as additional visualizations from the paper.\n\n## Cite\nIf you find our work useful in your research, please consider citing:\n\n```bibtex\n@InProceedings{Hamdi_2024_CVPR,\n    author    = {Hamdi, Abdullah and Melas-Kyriazi, Luke and Mai, Jinjie and Qian, Guocheng and Liu, Ruoshi and Vondrick, Carl and Ghanem, Bernard and Vedaldi, Andrea},\n    title     = {GES : Generalized Exponential Splatting for Efficient Radiance Field Rendering},\n    booktitle = {Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)},\n    month     = {June},\n    year      = {2024},\n    pages     = {19812-19822}\n}\n}\n```\n","project_url":"https://awesome.ecosyste.ms/api/v1/projects/github.com%2Fajhamdi%2Fges-splatting","html_url":"https://awesome.ecosyste.ms/projects/github.com%2Fajhamdi%2Fges-splatting","lists_url":"https://awesome.ecosyste.ms/api/v1/projects/github.com%2Fajhamdi%2Fges-splatting/lists"}