Spaces:
Running
on
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Running
on
Zero
Update app.py
Browse files
app.py
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import gradio as gr
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import torch
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import spaces
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from diffusers import StableDiffusionXLPipeline, EulerDiscreteScheduler
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from huggingface_hub import hf_hub_download
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from safetensors.torch import load_file
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device = "cuda" if torch.cuda.is_available() else "cpu"
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base = "stabilityai/stable-diffusion-xl-base-1.0"
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repo = "ByteDance/SDXL-Lightning"
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opts = {
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"1 Step" : ["sdxl_lightning_1step_unet_x0.safetensors", 1],
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"2 Steps" : ["sdxl_lightning_2step_unet.safetensors", 2],
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"4 Steps" : ["sdxl_lightning_4step_unet.safetensors", 4],
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"8 Steps" : ["sdxl_lightning_8step_unet.safetensors", 8],
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}
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pipe = StableDiffusionXLPipeline.from_pretrained(base, torch_dtype=torch.float16, variant="fp16").to(device)
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# Function
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@spaces.GPU(enable_queue=True)
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def generate_image(prompt, option):
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ckpt, step = opts[option]
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pipe.scheduler = EulerDiscreteScheduler.from_config(pipe.scheduler.config, timestep_spacing="trailing", prediction_type="sample" if step == 1 else "epsilon")
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pipe.unet.load_state_dict(load_file(hf_hub_download(repo, ckpt), device=device))
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image = pipe(prompt, num_inference_steps=step, guidance_scale=0).images[0]
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return image
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with gr.Blocks() as demo:
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gr.HTML("<h1><center>SDXL-Lightning ⚡</center></h1>")
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gr.Markdown("Lightning-fast text-to-image generation! https://huggingface.co/ByteDance/SDXL-Lightning")
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with gr.Group():
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with gr.Row():
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prompt = gr.Textbox(
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label="Text prompt",
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scale=8
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)
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option = gr.Dropdown(
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label="Inference steps",
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choices=["1 Step", "2 Steps", "4 Steps", "8 Steps"],
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value="4-Step",
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interactive=True
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)
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submit = gr.Button(
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scale=1,
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variant="primary"
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)
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img = gr.Image(label="SDXL-Lightening Generated Image")
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prompt.submit(
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fn=generate_image,
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inputs=[prompt, option],
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outputs=img,
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)
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submit.click(
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fn=generate_image,
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inputs=[prompt, option],
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outputs=img,
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)
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demo.queue().launch()
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