Update app.py
Browse files
app.py
CHANGED
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@@ -23,17 +23,17 @@ if not os.path.exists('CodeFormer.pth'):
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os.system("wget https://github.com/TencentARC/GFPGAN/releases/download/v1.3.4/CodeFormer.pth -P .")
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torch.hub.download_url_to_file(
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'https://
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'
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torch.hub.download_url_to_file(
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'https://
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'
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torch.hub.download_url_to_file(
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'https://
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'
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torch.hub.download_url_to_file(
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'https://
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'
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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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@@ -48,8 +48,6 @@ os.makedirs('output', exist_ok=True)
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def inference(img, version, scale):
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# weight /= 100
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print(img, version, scale)
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if scale > 100:
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scale = 100 # avoid too large scale value
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try:
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extension = os.path.splitext(os.path.basename(str(img)))[1]
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img = cv2.imread(img, cv2.IMREAD_UNCHANGED)
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@@ -62,10 +60,6 @@ def inference(img, version, scale):
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img_mode = None
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h, w = img.shape[0:2]
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if h > 3500 or w > 3500:
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print('too large size')
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return None, None
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if h < 300:
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img = cv2.resize(img, (w * 2, h * 2), interpolation=cv2.INTER_LANCZOS4)
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@@ -81,9 +75,12 @@ def inference(img, version, scale):
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elif version == 'RestoreFormer':
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face_enhancer = GFPGANer(
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model_path='RestoreFormer.pth', upscale=2, arch='RestoreFormer', channel_multiplier=2, bg_upsampler=upsampler)
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try:
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# _, _, output = face_enhancer.enhance(img, has_aligned=False, only_center_face=False, paste_back=True, weight=weight)
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@@ -101,7 +98,7 @@ def inference(img, version, scale):
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if img_mode == 'RGBA': # RGBA images should be saved in png format
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extension = 'png'
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else:
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extension = '
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save_path = f'output/out.{extension}'
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cv2.imwrite(save_path, output)
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@@ -112,39 +109,34 @@ def inference(img, version, scale):
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return None, None
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title = "
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description = r"""Gradio demo for <a href='https://github.com/TencentARC/GFPGAN' target='_blank'><b>GFPGAN: Towards Real-World Blind Face Restoration with Generative Facial Prior</b></a>.<br>
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To use it, simply upload
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If GFPGAN is helpful, please help to ⭐ the <a href='https://github.com/TencentARC/GFPGAN' target='_blank'>Github Repo</a> and recommend it to your friends 😊
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"""
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article = r"""
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[](https://github.com/TencentARC/GFPGAN/releases)
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[](https://github.com/TencentARC/GFPGAN)
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[](https://arxiv.org/abs/2101.04061)
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If you have any question, please email 📧 `xintao.wang@outlook.com` or `xintaowang@tencent.com`.
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<center><img src='https://visitor-badge.glitch.me/badge?page_id=akhaliq_GFPGAN' alt='visitor badge'></center>
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<center><img src='https://visitor-badge.glitch.me/badge?page_id=Gradio_Xintao_GFPGAN' alt='visitor badge'></center>
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"""
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demo = gr.Interface(
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inference, [
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gr.Image(type="filepath", label="Input"),
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# gr.Radio(['v1.2', 'v1.3', 'v1.4', 'RestoreFormer', 'CodeFormer'], type="value",
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gr.Radio(['v1.2', 'v1.3', 'v1.4', 'RestoreFormer'], type="value",
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gr.Number(label="Rescaling factor",
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# gr.Slider(0, 100, label='Weight, only for CodeFormer. 0 for better quality, 100 for better identity',
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], [
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gr.Image(type="numpy", label="Output (The whole image)"),
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gr.File(label="Download the output image")
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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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# examples=[['AI-generate.jpg', 'v1.4', 2, 50], ['lincoln.jpg', 'v1.4', 2, 50], ['Blake_Lively.jpg', 'v1.4', 2, 50],
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# ['10045.png', 'v1.4', 2, 50]]).launch()
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examples=[['
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demo.queue()
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os.system("wget https://github.com/TencentARC/GFPGAN/releases/download/v1.3.4/CodeFormer.pth -P .")
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torch.hub.download_url_to_file(
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'https://thumbs.dreamstime.com/b/tower-bridge-traditional-red-bus-black-white-colors-view-to-tower-bridge-london-black-white-colors-108478942.jpg',
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'a1.jpg')
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torch.hub.download_url_to_file(
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'https://media.istockphoto.com/id/523514029/photo/london-skyline-b-w.jpg?s=612x612&w=0&k=20&c=kJS1BAtfqYeUDaORupj0sBPc1hpzJhBUUqEFfRnHzZ0=',
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'a2.jpg')
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torch.hub.download_url_to_file(
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'https://i.guim.co.uk/img/media/06f614065ed82ca0e917b149a32493c791619854/0_0_3648_2789/master/3648.jpg?width=700&quality=85&auto=format&fit=max&s=05764b507c18a38590090d987c8b6202',
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'a3.jpg')
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torch.hub.download_url_to_file(
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'https://i.pinimg.com/736x/46/96/9e/46969eb94aec2437323464804d27706d--victorian-london-victorian-era.jpg',
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'a4.jpg')
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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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def inference(img, version, scale):
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# weight /= 100
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print(img, version, scale)
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try:
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extension = os.path.splitext(os.path.basename(str(img)))[1]
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img = cv2.imread(img, cv2.IMREAD_UNCHANGED)
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img_mode = None
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h, w = img.shape[0:2]
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if h < 300:
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img = cv2.resize(img, (w * 2, h * 2), interpolation=cv2.INTER_LANCZOS4)
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elif version == 'RestoreFormer':
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face_enhancer = GFPGANer(
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model_path='RestoreFormer.pth', upscale=2, arch='RestoreFormer', channel_multiplier=2, bg_upsampler=upsampler)
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elif version == 'CodeFormer':
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face_enhancer = GFPGANer(
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model_path='CodeFormer.pth', upscale=2, arch='CodeFormer', channel_multiplier=2, bg_upsampler=upsampler)
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elif version == 'RealESR-General-x4v3':
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face_enhancer = GFPGANer(
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model_path='realesr-general-x4v3.pth', upscale=2, arch='realesr-general', channel_multiplier=2, bg_upsampler=upsampler)
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try:
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# _, _, output = face_enhancer.enhance(img, has_aligned=False, only_center_face=False, paste_back=True, weight=weight)
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if img_mode == 'RGBA': # RGBA images should be saved in png format
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extension = 'png'
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else:
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extension = 'jpg'
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save_path = f'output/out.{extension}'
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cv2.imwrite(save_path, output)
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return None, None
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title = "Image Upscaling & Restoration(esp. Face) using GFPGAN Algorithm"
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description = r"""Gradio demo for <a href='https://github.com/TencentARC/GFPGAN' target='_blank'><b>GFPGAN: Towards Real-World Blind Face Restoration and Upscalling of the image with a Generative Facial Prior</b></a>.<br>
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Practically the algorithm is used to restore your **old photos** or improve **AI-generated faces**.<br>
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To use it, simply just upload the concerned image.<br>
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"""
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article = r"""
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[](https://github.com/TencentARC/GFPGAN/releases)
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[](https://github.com/TencentARC/GFPGAN)
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[](https://arxiv.org/abs/2101.04061)
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<center><img src='https://visitor-badge.glitch.me/badge?page_id=dj_face_restoration_GFPGAN' alt='visitor badge'></center>
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"""
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demo = gr.Interface(
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inference, [
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gr.inputs.Image(type="filepath", label="Input"),
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# gr.inputs.Radio(['v1.2', 'v1.3', 'v1.4', 'RestoreFormer', 'CodeFormer'], type="value", default='v1.4', label='version'),
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gr.inputs.Radio(['v1.2', 'v1.3', 'v1.4', 'RestoreFormer','CodeFormer','RealESR-General-x4v3'], type="value", default='v1.4', label='version'),
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gr.inputs.Number(label="Rescaling factor", default=2),
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# gr.Slider(0, 100, label='Weight, only for CodeFormer. 0 for better quality, 100 for better identity', default=50)
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], [
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gr.outputs.Image(type="numpy", label="Output (The whole image)"),
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gr.outputs.File(label="Download the output image")
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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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# examples=[['AI-generate.jpg', 'v1.4', 2, 50], ['lincoln.jpg', 'v1.4', 2, 50], ['Blake_Lively.jpg', 'v1.4', 2, 50],
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# ['10045.png', 'v1.4', 2, 50]]).launch()
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examples=[['a1.jpg', 'v1.4', 2], ['a2.jpg', 'v1.4', 2], ['a3.jpg', 'v1.4', 2],['a4.jpg', 'v1.4', 2]])
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demo.queue(concurrency_count=4)
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demo.launch()
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