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| # face-parsing.PyTorch | |
| <p align="center"> | |
| <a href="https://github.com/zllrunning/face-parsing.PyTorch"> | |
| <img class="page-image" src="https://github.com/zllrunning/face-parsing.PyTorch/blob/master/6.jpg" > | |
| </a> | |
| </p> | |
| ### Contents | |
| - [Training](#training) | |
| - [Demo](#Demo) | |
| - [References](#references) | |
| ## Training | |
| 1. Prepare training data: | |
| -- download [CelebAMask-HQ dataset](https://github.com/switchablenorms/CelebAMask-HQ) | |
| -- change file path in the `prepropess_data.py` and run | |
| ```Shell | |
| python prepropess_data.py | |
| ``` | |
| 2. Train the model using CelebAMask-HQ dataset: | |
| Just run the train script: | |
| ``` | |
| $ CUDA_VISIBLE_DEVICES=0,1 python -m torch.distributed.launch --nproc_per_node=2 train.py | |
| ``` | |
| If you do not wish to train the model, you can download [our pre-trained model](https://drive.google.com/open?id=154JgKpzCPW82qINcVieuPH3fZ2e0P812) and save it in `res/cp`. | |
| ## Demo | |
| 1. Evaluate the trained model using: | |
| ```Shell | |
| # evaluate using GPU | |
| python test.py | |
| ``` | |
| ## Face makeup using parsing maps | |
| [**face-makeup.PyTorch**](https://github.com/zllrunning/face-makeup.PyTorch) | |
| <table> | |
| <tr> | |
| <th> </th> | |
| <th>Hair</th> | |
| <th>Lip</th> | |
| </tr> | |
| <!-- Line 1: Original Input --> | |
| <tr> | |
| <td><em>Original Input</em></td> | |
| <td><img src="makeup/116_ori.png" height="256" width="256" alt="Original Input"></td> | |
| <td><img src="makeup/116_lip_ori.png" height="256" width="256" alt="Original Input"></td> | |
| </tr> | |
| <!-- Line 3: Color --> | |
| <tr> | |
| <td>Color</td> | |
| <td><img src="makeup/116_1.png" height="256" width="256" alt="Color"></td> | |
| <td><img src="makeup/116_3.png" height="256" width="256" alt="Color"></td> | |
| </tr> | |
| </table> | |
| ## References | |
| - [BiSeNet](https://github.com/CoinCheung/BiSeNet) |