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import gradio as gr | |
import inspect | |
import warnings | |
import numpy as np | |
from typing import List, Optional, Union | |
import requests | |
from io import BytesIO | |
from PIL import Image | |
import torch | |
from torch import autocast | |
from tqdm.auto import tqdm | |
from diffusers import StableDiffusionImg2ImgPipeline | |
from huggingface_hub import notebook_login | |
notebook_login() | |
device = "cuda" | |
model_path = "CompVis/stable-diffusion-v1-4" | |
access_token = "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" | |
pipe = StableDiffusionImg2ImgPipeline.from_pretrained( | |
model_path, | |
revision="fp16", | |
torch_dtype=torch.float16, | |
use_auth_token=access_token | |
) | |
pipe = pipe.to(device) | |
def predict(img, strength, seed, prompt): | |
seed = int(seed) | |
img1 = np.asarray(img) | |
img2 = Image.fromarray(img1) | |
init_image = img2.resize((768, 512)) | |
generator = torch.Generator(device=device).manual_seed(seed) | |
with autocast("cuda"): | |
image = pipe(prompt=prompt, init_image=init_image, strength=strength, guidance_scale=5, generator=generator).images[0] | |
return image | |
gr.Interface( | |
predict, | |
title = 'Image to Image using Diffusers', | |
inputs=[ | |
gr.Image(), | |
gr.Slider(0, 1, value=0.05, label ="strength (keep it close to 0 to make minimal changes to image (such as 0.1, 0.2, 0.3)"), | |
gr.Number(label = "seed (any number, generally 1024. But it's totally random. Change it and see different outputs)"), | |
gr.Textbox(label="Prompt, empty by default") | |
], | |
outputs = [ | |
gr.Image() | |
] | |
).launch() |