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import torch |
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from PIL import Image |
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import numpy as np |
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from realesrgan import RealESRGAN |
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import os |
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import gradio as gr |
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os.system("gdown https://drive.google.com/uc?id=1pG2S3sYvSaO0V0B8QPOl1RapPHpUGOaV -O RealESRGAN_x2.pth") |
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os.system("gdown https://drive.google.com/uc?id=1SGHdZAln4en65_NQeQY9UjchtkEF9f5F -O RealESRGAN_x4.pth") |
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os.system("gdown https://drive.google.com/uc?id=1mT9ewx86PSrc43b-ax47l1E2UzR7Ln4j -O RealESRGAN_x8.pth") |
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device = torch.device('cuda' if torch.cuda.is_available() else 'cpu') |
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model2 = RealESRGAN(device, scale=2) |
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model2.load_weights('RealESRGAN_x2.pth') |
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model4 = RealESRGAN(device, scale=4) |
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model4.load_weights('RealESRGAN_x4.pth') |
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model8 = RealESRGAN(device, scale=8) |
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model8.load_weights('RealESRGAN_x8.pth') |
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def inference(image: Image, size: str) -> Image: |
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if size == '2x': |
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result = model2.predict(image.convert('RGB')) |
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elif size == '4x': |
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result = model4.predict(image.convert('RGB')) |
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else: |
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result = model8.predict(image.convert('RGB')) |
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return result |
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title = "Face Real ESRGAN: 2x 4x 8x" |
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description = "This is an unofficial demo for Real-ESRGAN. Scales the resolution of a photo. This model shows better results on faces compared to the original version." |
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article = "<div style='text-align: center;'>Twitter <a href='https://twitter.com/DoEvent' target='_blank'>Max Skobeev</a> | <a href='https://huggingface.co/sberbank-ai/Real-ESRGAN' target='_blank'>Model card</a> <center><img src='https://visitor-badge.glitch.me/badge?page_id=max_skobeev_face_esrgan' alt='visitor badge'></center></div>" |
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gr.Interface(inference, |
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[gr.inputs.Image(type="pil"), |
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gr.inputs.Radio(['2x', '4x', '8x'], |
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type="value", |
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default='2x', |
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label='Resolution model')], |
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gr.outputs.Image(type="pil", label="Output"), |
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title=title, |
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description=description, |
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article=article, |
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examples=[['groot.jpeg', "2x"]], |
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allow_flagging='never', |
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theme="default", |
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).launch(enable_queue=True) |
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