Style_Transfer / app.py
Ahsen Khaliq
Update app.py
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import os
os.system("hub install stylepro_artistic==1.0.1")
import gradio as gr
import paddlehub as hub
import numpy as np
from PIL import Image
import cv2
stylepro_artistic = hub.Module(name="stylepro_artistic")
def inference(content,style):
result = stylepro_artistic.style_transfer(
images=[{
'content': cv2.imread(content.name),
'styles': [cv2.imread(style.name)]
}])
return Image.fromarray(np.uint8(result[0]['data'])[:,:,::-1]).convert('RGB')
title = " StyleProNet"
description = "Gradio demo for Parameter-Free Style Projection for Arbitrary Style Transfer. To use it, simply upload your image, or click one of the examples to load them. Read more at the links below."
article = "<p style='text-align: center'><a href='https://arxiv.org/abs/2003.07694'target='_blank'>Parameter-Free Style Projection for Arbitrary Style Transfer</a> | <a href='https://github.com/PaddlePaddle/PaddleHub' target='_blank'>Github Repo</a></p>"
examples=[['people.jpeg']]
iface = gr.Interface(inference, inputs=[gr.inputs.Image(type="file",label='content'),gr.inputs.Image(type="file",label='style')], outputs=gr.outputs.Image(type="pil"),enable_queue=True,title=title,article=article,description=description,examples=examples)
iface.launch()