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import torch
from diffusers import StableDiffusionPipeline
import gradio as gr
model_base = "Krebzonide/LazyMixPlus"
lora_model_path = "Krebzonide/94g1-jemz-41r2-0"
pipe = StableDiffusionPipeline.from_pretrained(model_base, torch_dtype=torch.float16, use_safetensors=True)
pipe.unet.load_attn_procs(lora_model_path) #working, commented to test stuff------------------------------------------
#pipe.unet.load_attn_procs(lora_model_path, use_auth_token=True) #test accessing a private model----------------------
pipe.to("cuda")
css = """
.btn-green {
background-image: linear-gradient(to bottom right, #86efac, #22c55e) !important;
border-color: #22c55e !important;
color: #166534 !important;
}
.btn-green:hover {
background-image: linear-gradient(to bottom right, #86efac, #86efac) !important;
}
.btn-red {
background: linear-gradient(to bottom right, #fda4af, #fb7185) !important;
border-color: #fb7185 !important;
color: #9f1239 !important;
}
.btn-red:hover {background: linear-gradient(to bottom right, #fda4af, #fda4af) !important;}
/*****/
.dark .btn-green {
background-image: linear-gradient(to bottom right, #047857, #065f46) !important;
border-color: #047857 !important;
color: #ffffff !important;
}
.dark .btn-green:hover {
background-image: linear-gradient(to bottom right, #047857, #047857) !important;
}
.dark .btn-red {
background: linear-gradient(to bottom right, #be123c, #9f1239) !important;
border-color: #be123c !important;
color: #ffffff !important;
}
.dark .btn-red:hover {background: linear-gradient(to bottom right, #be123c, #be123c) !important;}
"""
def generate(prompt, neg_prompt, samp_steps, guide_scale, lora_scale):
images = pipe(
prompt,
negative_prompt=neg_prompt,
num_inference_steps=samp_steps,
guidance_scale=guide_scale,
cross_attention_kwargs={"scale": lora_scale},
num_images_per_prompt=4
).images
return [(img, f"Image {i+1}") for i, img in enumerate(images)]
with gr.Blocks(css=css) as demo:
with gr.Column():
prompt = gr.Textbox(label="Prompt")
negative_prompt = gr.Textbox(label="Negative Prompt", value="lowres, bad anatomy, bad hands, cropped, worst quality, disfigured, deformed, extra limbs, asian, filter, render")
submit_btn = gr.Button("Generate", variant="primary", min_width="96px")
gallery = gr.Gallery(label="Generated images")
with gr.Row():
samp_steps = gr.Slider(1, 100, value=30, step=1, label="Sampling steps")
guide_scale = gr.Slider(1, 10, value=6, step=0.5, label="Guidance scale")
lora_scale = gr.Slider(0, 1, value=0.5, step=0.01, label="LoRA power")
submit_btn.click(generate, [prompt, negative_prompt, samp_steps, guide_scale, lora_scale], [gallery], queue=True)
demo.queue(1)
demo.launch(debug=True)