init app
Browse files- .gitignore +8 -0
- app.py +74 -0
- packages.txt +3 -0
- requirements.txt +13 -0
.gitignore
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*.png
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*.jpg
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.idea/
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__pycache__/
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flagged
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gfpgan
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output
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app.py
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import os
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import gradio as gr
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import torch
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from basicsr.archs.srvgg_arch import SRVGGNetCompact
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from gfpgan.utils import GFPGANer
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from huggingface_hub import hf_hub_download
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from realesrgan.utils import RealESRGANer
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REALESRGAN_REPO_ID = 'leonelhs/realesrgan'
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GFPGAN_REPO_ID = 'leonelhs/gfpgan'
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os.system("pip freeze")
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# background enhancer with RealESRGAN
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model = SRVGGNetCompact(num_in_ch=3, num_out_ch=3, num_feat=64, num_conv=32, upscale=4, act_type='prelu')
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model_path = hf_hub_download(repo_id=REALESRGAN_REPO_ID, filename='realesr-general-x4v3.pth')
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half = True if torch.cuda.is_available() else False
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upsampler = RealESRGANer(scale=4, model_path=model_path, model=model, tile=0, tile_pad=10, pre_pad=0, half=half)
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def download_model(file):
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return hf_hub_download(repo_id=GFPGAN_REPO_ID, filename=file)
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def predict(image, version, scale):
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scale = int(scale)
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face_enhancer = None
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if version == 'v1.2':
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path = download_model('GFPGANv1.2.pth')
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face_enhancer = GFPGANer(
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model_path=path, upscale=scale, arch='clean', channel_multiplier=2, bg_upsampler=upsampler)
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elif version == 'v1.3':
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path = download_model('GFPGANv1.3.pth')
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face_enhancer = GFPGANer(
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model_path=path, upscale=scale, arch='clean', channel_multiplier=2, bg_upsampler=upsampler)
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elif version == 'v1.4':
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path = download_model('GFPGANv1.4.pth')
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face_enhancer = GFPGANer(
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model_path=path, upscale=scale, arch='clean', channel_multiplier=2, bg_upsampler=upsampler)
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elif version == 'RestoreFormer':
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path = download_model('RestoreFormer.pth')
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face_enhancer = GFPGANer(
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model_path=path, upscale=scale, arch='RestoreFormer', channel_multiplier=2, bg_upsampler=upsampler)
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_, _, output = face_enhancer.enhance(image, has_aligned=False, only_center_face=False, paste_back=True)
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return output
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title = "GFPGAN"
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description = r"""
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<b>Practical Face Restoration Algorithm</b>
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"""
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article = r"""
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<center><span>[email protected] or [email protected]</span></center>
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</br>
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<center><a href='https://github.com/TencentARC/GFPGAN' target='_blank'>Github Repo ⭐ </a> are welcome</center>
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"""
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demo = gr.Interface(
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predict, [
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gr.Image(type="numpy", label="Input"),
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gr.Radio(['v1.2', 'v1.3', 'v1.4', 'RestoreFormer'], type="value", value='v1.4', label='version'),
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gr.Dropdown(["1", "2", "3", "4"], value="2", label="Rescaling factor")
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], [
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gr.Image(type="numpy", label="Output", interactive=False)
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],
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title=title,
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description=description,
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article=article)
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demo.queue().launch()
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packages.txt
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ffmpeg
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libsm6
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libxext6
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requirements.txt
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torch>=2.0.1
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basicsr>=1.4.2
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facexlib>=0.3.0
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gfpgan>=1.3.8
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realesrgan>=0.3.0
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numpy
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opencv-python
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torchvision
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scipy
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tqdm
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lmdb
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pyyaml
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yapf
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