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Update app.py
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app.py
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import gradio as gr
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from PIL import Image
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import torch
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from torch import autocast
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from diffusers import StableDiffusionImg2ImgPipeline
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from torch import autocast
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from tqdm.auto import tqdm
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import requests
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from io import BytesIO
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from PIL import Image
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from typing import List, Optional, Union
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import inspect
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import warnings
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import sentence_transformers
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modelid = "CompVis/stable-diffusion-v1-4"
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device = "cuda" if torch.cuda.is_available() else "cpu"
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pipe = StableDiffusionImg2ImgPipeline.from_pretrained(modelid, revision="fp16", torch_dtype=torch.float16)
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pipe.to(device)
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url = "https://raw.githubusercontent.com/CompVis/stable-diffusion/main/assets/stable-samples/img2img/sketch-mountains-input.jpg"
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# Load the Sentence-BERT model for text embeddings
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text_embedding_model = sentence_transformers.SentenceTransformer("paraphrase-MiniLM-L6-v2")
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def generate_image(prompt):
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response = requests.get(url)
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init_img = Image.open(BytesIO(response.content)).convert("RGB")
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init_img = init_img.resize((768, 512))
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generator = torch.Generator(device=device).manual_seed(1024)
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with autocast("cuda"):
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prompt_embedding = text_embedding_model.encode([str(prompt)])[0]
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prompt_tensor = torch.tensor(prompt_embedding, device=device).half()
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image = pipe(prompt=prompt_tensor, init_image=init_img, strength=0.75, guidance_scale=7.5, generator=generator).images[0]
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return image
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# Define the input and output components
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input_text = gr.inputs.Textbox(lines=10, label="Enter a prompt")
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output_image = gr.outputs.Image(type="pil", label="Generated Image")
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# Create the Gradio interface
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iface = gr.Interface(
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fn=generate_image,
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inputs=input_text,
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outputs=output_image,
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title="Stable Bud",
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description="Generate images using Stable Diffusion",
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layout="vertical",
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)
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if __name__ == "__main__":
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iface.launch()
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import gradio as gr
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gr.Interface.load("models/CompVis/stable-diffusion-v1-4").launch()
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