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import os | |
import gradio as gr | |
from PIL import Image | |
os.system("git clone https://github.com/autonomousvision/projected_gan") | |
os.chdir("projected_gan") | |
os.mkdir("outputs") | |
os.system("gdown --id '1H-MYFZqngF1R0whm4bc3fEoX7VvOWaDl'") | |
def inference(truncation,seeds): | |
os.system("python gen_images.py --outdir=./outputs/ --trunc="+str(truncation)+" --seeds="+str(int(seeds))+" --network=network-snapshot-metfaces2.pkl") | |
seeds = int(seeds) | |
image = Image.open(f"./outputs/seed{seeds:04d}.png") | |
return image | |
title = "Projected GAN" | |
description = "Gradio demo for Projected GAN. To use it, add seed and truncation, or click one of the examples to load them. Read more at the links below." | |
article = "<p style='text-align: center'><a href='http://www.cvlibs.net/publications/Sauer2021NEURIPS.pdf' target='_blank'>Projected GANs Converge Faster</a> | <a href='https://github.com/autonomousvision/projected_gan'>Github Repo</p><center><img src='https://visitor-badge.glitch.me/badge?page_id=akhaliq_projected_gan' alt='visitor badge'></center>" | |
gr.Interface(inference,[gr.inputs.Slider(label="truncation",minimum=0, maximum=5, step=0.1, default=0.8),gr.inputs.Slider(label="Seed",minimum=0, maximum=1000, step=1, default=0)],"pil",title=title,description=description,article=article, examples=[ | |
[0.8,0] | |
]).launch(enable_queue=True,cache_examples=True) |