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import requests | |
from PIL import Image | |
from io import BytesIO | |
from diffusers import StableDiffusionUpscalePipeline | |
import torch | |
device = "cuda" if torch.cuda.is_available() else "cpu" | |
print('f{device} is available') | |
model_id = "stabilityai/stable-diffusion-x4-upscaler" | |
upscale_pipe = StableDiffusionUpscalePipeline.from_pretrained(model_id, torch_dtype=torch.float16) | |
upscale_pipe = upscale_pipe.to(device) | |
DEFAULT_SRC_PROMPT = "a person with pefect face" | |
def create_demo() -> gr.Blocks: | |
from inversion_run_base import run as base_run | |
def upscale_image( | |
input_image: Image, | |
prompt: str, | |
): | |
upscaled_image = upscale_pipe(prompt=prompt, image=input_image).images[0] | |
extension = 'png' | |
path = f"output/{uuid.uuid4()}.{extension}" | |
upscaled_image.save(path, quality=100) | |
return upscaled_image, path, time_cost_str | |
def get_time_cost(run_task_time, time_cost_str): | |
now_time = int(time.time()*1000) | |
if run_task_time == 0: | |
time_cost_str = 'start' | |
else: | |
if time_cost_str != '': | |
time_cost_str += f'-->' | |
time_cost_str += f'{now_time - run_task_time}' | |
run_task_time = now_time | |
return run_task_time, time_cost_str | |
with gr.Blocks() as demo: | |
croper = gr.State() | |
with gr.Row(): | |
with gr.Column(): | |
input_image_prompt = gr.Textbox(lines=1, label="Input Image Prompt", value=DEFAULT_SRC_PROMPT) | |
with gr.Column(): | |
g_btn = gr.Button("Upscale Image") | |
with gr.Row(): | |
with gr.Column(): | |
input_image = gr.Image(label="Input Image", type="pil") | |
with gr.Column(): | |
upscaled_image = gr.Image(label="Upscaled Image", format="png", type="pil", interactive=False) | |
download_path = gr.File(label="Download the output image", interactive=False) | |
generated_cost = gr.Textbox(label="Time cost by step (ms):", visible=True, interactive=False) | |
g_btn.click( | |
fn=upscale_image, | |
inputs=[input_image, input_image_prompt], | |
outputs=[upscaled_image, download_path, generated_cost], | |
) | |
return demo | |