| | --- |
| | license: apache-2.0 |
| | language: |
| | - en |
| | pipeline_tag: image-to-3d |
| | --- |
| | <div align="center"> |
| | <h1>LHM: Large Animatable Human Reconstruction Model for Single Image to 3D in Seconds</h1> |
| |
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| | <div align="center" style="display: flex; justify-content: center; flex-wrap: wrap;"> |
| | <!-- <a href='LICENSE'><img src='https://img.shields.io/badge/license-MIT-yellow'></a> --> |
| | <a href='https://arxiv.org/pdf/2503.10625'><img src='https://img.shields.io/badge/π-arXiv:2503-10625'></a> |
| | <a href='https://aigc3d.github.io/projects/LHM/'><img src='https://img.shields.io/badge/π-Project_Website-blueviolet'></a> |
| | <a href='https://huggingface.co/spaces/3DAIGC/LHM'><img src='https://img.shields.io/badge/π€-HuggingFace_Space-blue'></a> |
| | <a href="https://www.apache.org/licenses/LICENSE-2.0"><img src="https://img.shields.io/badge/π-Apache--2.0-929292"></a> |
| | </div> |
| | </div> |
| |
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| |
|
| | ## Overview |
| |
|
| | This repository contains the models of the paper [LHM: Large Animatable Human Reconstruction Model |
| | for Single Image to 3D in Seconds](https://huggingface.co/papers/2503.10625). |
| |
|
| | LHM is a feed-forward model for animatable 3D human reconstruction from a single image in seconds. Trained on a large-scale video |
| | dataset with an image reconstruction loss, our model exhibits strong generalization ability to diverse real-world scenarios |
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| |
|
| | ## Quick Start |
| |
|
| | Please refer to our [Github Repo](https://github.com/aigc3d/LHM/tree/main) |
| |
|
| | ### Download Model |
| | ```python |
| | from huggingface_hub import snapshot_download |
| | # 1B-HF Model |
| | model_dir = snapshot_download(repo_id='3DAIGC/LHM-1B-HF', cache_dir='./pretrained_models/huggingface') |
| | ``` |
| |
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| |
|
| | ## Citation |
| | ``` |
| | @inproceedings{qiu2025LHM, |
| | title={LHM: Large Animatable Human Reconstruction Model from a Single Image in Seconds}, |
| | author={Lingteng Qiu and Xiaodong Gu and Peihao Li and Qi Zuo |
| | and Weichao Shen and Junfei Zhang and Kejie Qiu and Weihao Yuan |
| | and Guanying Chen and Zilong Dong and Liefeng Bo |
| | }, |
| | booktitle={arXiv preprint arXiv:2503.10625}, |
| | year={2025} |
| | } |
| | ``` |