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license: mit
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---
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license: mit
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language:
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- en
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tags:
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- material
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- pbr
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- svbrdf
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- texture
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- editing
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---
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# MatFuse: Controllable Material Generation with Diffusion Models
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## 🧩 Model Overview
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MatFuse leverages diffusion models to simplify the creation of Spatially-Varying Bidirectional Reflectance Distribution Function (SVBRDF) maps.
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It allows for fine-grained control over material synthesis through multiple conditioning sources like color palettes, sketches, text, and images.
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Additionally, it supports post-generation editing of materials.
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For more details, visit the [project page](https://gvecchio.com/matfuse/) or read the full paper on [arXiv](https://arxiv.org/abs/2308.11408).
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## 🧑💻 Usage
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### 💿 Installation
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1. Clone the repository:
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```bash
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git clone https://github.com/giuvecchio/matfuse-sd.git
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cd matfuse-sd
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```
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2. Set up the environment:
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```bash
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# create environment (can use venv instead of conda)
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conda create -n matfuse python==3.10.13
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conda activate matfuse
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# install required packages
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pip install -r requirements.txt
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```
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3. Download the checkpoint.
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### 🧪 Inference
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To run inference on a trained model:
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```bash
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python src/gradio_app.py --ckpt <path/to/checkpoint.ckpt> --config src/configs/diffusion/<config.yaml>
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```
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## 📜 Citation
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```bibtex
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@inproceedings{vecchio2024matfuse,
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author = {Vecchio, Giuseppe and Sortino, Renato and Palazzo, Simone and Spampinato, Concetto},
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title = {MatFuse: Controllable Material Generation with Diffusion Models},
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booktitle = {Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)},
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month = {June},
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year = {2024},
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pages = {4429-4438}
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}
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```
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## License
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This project is licensed under the MIT License.
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