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README.md
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library_name: hunyuan3d-1.0
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license: other
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license_name: tencent-hunyuan-community
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license_link: https://huggingface.co/tencent/Hunyuan3D-1/blob/main/LICENSE.txt
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language:
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---
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<!-- ## **Hunyuan3D-1.0** -->
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<p align="center">
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# Tencent Hunyuan3D-1.0: A Unified Framework for Text-to-3D and Image-to-3D Generation
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## 🔥🔥🔥 News!!
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We provide an env_install.sh script file for setting up environment.
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python3.9 and CUDA11.7+ (recommended)
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```
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conda
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bash env_install.sh
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```
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```
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```
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#### Download Pretrained Models
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The models are available at [https://huggingface.co/tencent/Hunyuan3D-1](https://huggingface.co/tencent/Hunyuan3D-1):
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|`--gen_seed` | 0 |The random seed for generating 3d generation |
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|`--gen_steps` | 50 |The number of steps for sampling of 3d generation |
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|`--max_faces_numm` | 90000 |The limit number of faces of 3d mesh |
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|`--save_memory` | False |
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|`--do_texture_mapping` | False |Change vertex shadding to texture shading |
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|`--do_render` | False |render gif |
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We have also prepared scripts with different configurations for reference
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```bash
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bash scripts/
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bash scripts/
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bash scripts/
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bash scripts/
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```
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#### Using Gradio
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We have prepared two versions of multi-view generation, std and lite.
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For better results, the std version of the running script is as follows
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```shell
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python3 app.py
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For faster speed, you can use the lite version by adding the --use_lite parameter.
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python3 app.py --use_lite
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```
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Then the demo can be accessed through http://0.0.0.0:8080. It should be noted that the 0.0.0.0 here needs to be X.X.X.X with your server IP.
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archivePrefix={arXiv},
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primaryClass={cs.CV}
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}
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```
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<!-- ## **Hunyuan3D-1.0** -->
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<p align="center">
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# Tencent Hunyuan3D-1.0: A Unified Framework for Text-to-3D and Image-to-3D Generation
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<div align="center">
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<a href="https://github.com/tencent/Hunyuan3D-1"><img src="https://img.shields.io/static/v1?label=Code&message=Github&color=blue&logo=github-pages"></a>  
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<a href="https://3d.hunyuan.tencent.com"><img src="https://img.shields.io/static/v1?label=Homepage&message=Tencent Hunyuan3D&color=blue&logo=github-pages"></a>  
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<a href="https://arxiv.org/pdf/2411.02293"><img src="https://img.shields.io/static/v1?label=Tech Report&message=Arxiv&color=red&logo=arxiv"></a>  
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<a href="https://huggingface.co/Tencent/Hunyuan3D-1"><img src="https://img.shields.io/static/v1?label=Checkpoints&message=HuggingFace&color=yellow"></a>  
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<a href="https://huggingface.co/spaces/Tencent/Hunyuan3D-1"><img src="https://img.shields.io/static/v1?label=Demo&message=HuggingFace&color=yellow"></a>  
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</div>
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## 🔥🔥🔥 News!!
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We provide an env_install.sh script file for setting up environment.
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```
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# step 1, create conda env
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conda create -n hunyuan3d-1 python=3.9 or 3.10 or 3.11 or 3.12
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conda activate hunyuan3d-1
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# step 2. install torch realated package
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which pip # check pip corresponds to python
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# modify the cuda version according to your machine (recommended)
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pip install torch torchvision --index-url https://download.pytorch.org/whl/cu121
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# step 3. install other packages
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bash env_install.sh
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```
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<details>
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<summary>💡Other tips for envrionment installation</summary>
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Optionally, you can install xformers or flash_attn to acclerate computation:
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```
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pip install xformers --index-url https://download.pytorch.org/whl/cu121
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```
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```
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pip install flash_attn
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```
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Most environment errors are caused by a mismatch between machine and packages. You can try manually specifying the version, as shown in the following successful cases:
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```
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# python3.9
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pip install torch==2.0.1 torchvision==0.15.2 --index-url https://download.pytorch.org/whl/cu118
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```
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when install pytorch3d, the gcc version is preferably greater than 9, and the gpu driver should not be too old.
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</details>
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#### Download Pretrained Models
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The models are available at [https://huggingface.co/tencent/Hunyuan3D-1](https://huggingface.co/tencent/Hunyuan3D-1):
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|`--gen_seed` | 0 |The random seed for generating 3d generation |
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|`--gen_steps` | 50 |The number of steps for sampling of 3d generation |
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|`--max_faces_numm` | 90000 |The limit number of faces of 3d mesh |
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|`--save_memory` | False |module will move to cpu automatically|
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|`--do_texture_mapping` | False |Change vertex shadding to texture shading |
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|`--do_render` | False |render gif |
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We have also prepared scripts with different configurations for reference
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- Inference Std-pipeline requires 30GB VRAM (24G VRAM with --save_memory).
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- Inference Lite-pipeline requires 22GB VRAM (18G VRAM with --save_memory).
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- Note: --save_memory will increase inference time
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```bash
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bash scripts/text_to_3d_std.sh
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bash scripts/text_to_3d_lite.sh
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bash scripts/image_to_3d_std.sh
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bash scripts/image_to_3d_lite.sh
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```
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If your gpu memory is 16G, you can try to run modules in pipeline seperately:
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```bash
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bash scripts/text_to_3d_std_separately.sh 'a lovely rabbit' ./outputs/test # >= 16G
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bash scripts/text_to_3d_lite_separately.sh 'a lovely rabbit' ./outputs/test # >= 14G
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bash scripts/image_to_3d_std_separately.sh ./demos/example_000.png ./outputs/test # >= 16G
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bash scripts/image_to_3d_lite_separately.sh ./demos/example_000.png ./outputs/test # >= 10G
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```
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#### Using Gradio
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We have prepared two versions of multi-view generation, std and lite.
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```shell
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# std
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python3 app.py
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python3 app.py --save_memory
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# lite
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python3 app.py --use_lite
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python3 app.py --use_lite --save_memory
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```
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Then the demo can be accessed through http://0.0.0.0:8080. It should be noted that the 0.0.0.0 here needs to be X.X.X.X with your server IP.
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archivePrefix={arXiv},
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primaryClass={cs.CV}
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}
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```
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