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import os | |
import random | |
os.system("pip install gradio==2.9b23") | |
import gradio as gr | |
from PIL import Image | |
import torch | |
from subprocess import call | |
# Install necessary packages | |
os.system("pip install gradio==2.9b23") | |
os.system("pip install basicsr") | |
os.system("wget https://github.com/xinntao/Real-ESRGAN/releases/download/v0.1.0/RealESRGAN_x4plus.pth -P .") | |
os.system("wget https://github.com/xinntao/Real-ESRGAN/releases/download/v0.2.2.4/RealESRGAN_x4plus_anime_6B.pth -P .") | |
torch.hub.download_url_to_file('http://people.csail.mit.edu/billf/project%20pages/sresCode/Markov%20Random%20Fields%20for%20Super-Resolution_files/100075_lowres.jpg', 'bear.jpg') | |
def run_cmd(command): | |
try: | |
print(command) | |
call(command, shell=True) | |
except KeyboardInterrupt: | |
print("Process interrupted") | |
sys.exit(1) | |
def inference(img, mode): | |
_id = random.randint(1, 10000) | |
INPUT_DIR = "/tmp/input_image" + str(_id) + "/" | |
OUTPUT_DIR = "/tmp/output_image" + str(_id) + "/" | |
run_cmd("rm -rf " + INPUT_DIR) | |
run_cmd("rm -rf " + OUTPUT_DIR) | |
run_cmd("mkdir " + INPUT_DIR) | |
run_cmd("mkdir " + OUTPUT_DIR) | |
basewidth = 256 | |
wpercent = (basewidth / float(img.size[0])) | |
hsize = int((float(img.size[1]) * float(wpercent))) | |
img = img.resize((basewidth, hsize), Image.LANCZOS) | |
img.save(INPUT_DIR + "1.jpg", "JPEG") | |
if mode == "base": | |
run_cmd("python inference_realesrgan.py -n RealESRGAN_x4plus -i " + INPUT_DIR + " -o " + OUTPUT_DIR) | |
else: | |
run_cmd("python inference_realesrgan.py -n RealESRGAN_x4plus_anime_6B -i " + INPUT_DIR + " -o " + OUTPUT_DIR) | |
return os.path.join(OUTPUT_DIR, "1_out.jpg") | |
def main(): | |
with gr.Blocks() as demo: | |
gr.Markdown("# Real-ESRGAN") | |
gr.Markdown( | |
"Gradio demo for Real-ESRGAN. To use it, simply upload your image, or click one of the examples to load them. Read more at the links below. Please click submit only once." | |
"\n\n" | |
"<p style='text-align: center'><a href='https://arxiv.org/abs/2107.10833'>Real-ESRGAN: Training Real-World Blind Super-Resolution with Pure Synthetic Data</a> | <a href='https://github.com/xinntao/Real-ESRGAN'>Github Repo</a></p>" | |
) | |
with gr.Row(): | |
with gr.Column(): | |
input_image = gr.Image(type="pil", label="Input") | |
model_type = gr.Radio(["base", "anime"], type="value", default="base", label="Model type") | |
examples = gr.Examples(examples=[['bear.jpg', 'base'], ['anime.png', 'anime']], inputs=[input_image, model_type]) | |
submit_btn = gr.Button("Submit") | |
with gr.Column(): | |
output_image = gr.Image(type="file", label="Output") | |
submit_btn.click(fn=inference, inputs=[input_image, model_type], outputs=output_image) | |
demo.launch() | |