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Create app.py
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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 FluxPipeline
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from safetensors.torch import load_file
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# Load the Flux Dev model
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model_id = "black-forest-labs/FLUX.1-dev"
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pipe = FluxPipeline.from_pretrained(model_id, torch_dtype=torch.float16)
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pipe.to("cuda")
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# Load the LoRA weights
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lora_path = "MegaTronX/SuicideGirl-FLUX"
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lora_weights = load_file(lora_path)
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# Apply LoRA weights to the model
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pipe.unet.load_attn_procs(lora_weights)
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@spaces.GPU
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def generate_image(prompt, negative_prompt, guidance_scale, num_inference_steps, lora_scale):
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with torch.inference_mode():
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image = pipe(
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prompt=prompt,
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negative_prompt=negative_prompt,
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num_inference_steps=num_inference_steps,
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guidance_scale=guidance_scale,
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cross_attention_kwargs={"scale": lora_scale},
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).images[0]
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return 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=[
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gr.Textbox(label="Prompt"),
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gr.Textbox(label="Negative Prompt"),
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gr.Slider(1, 20, value=7.5, label="Guidance Scale"),
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gr.Slider(1, 100, value=50, step=1, label="Number of Inference Steps"),
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gr.Slider(0, 1, value=0.75, label="LoRA Scale"),
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],
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outputs=gr.Image(type="pil"),
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title="Flux Dev with Custom LoRA Image Generator",
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description="Generate images using Flux Dev model with a custom LoRA trained on Civitai",
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)
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iface.launch()
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