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from diffusion_webui.controlnet.controlnet_canny import stable_diffusion_controlnet_canny_app, stable_diffusion_controlnet_canny | |
from diffusion_webui.controlnet.controlnet_depth import stable_diffusion_controlnet_depth_app, stable_diffusion_controlnet_depth | |
from diffusion_webui.controlnet.controlnet_hed import stable_diffusion_controlnet_hed_app, stable_diffusion_controlnet_hed | |
from diffusion_webui.controlnet.controlnet_mlsd import stable_diffusion_controlnet_mlsd_app, stable_diffusion_controlnet_mlsd | |
from diffusion_webui.controlnet.controlnet_pose import stable_diffusion_controlnet_pose_app, stable_diffusion_controlnet_pose | |
from diffusion_webui.controlnet.controlnet_scribble import stable_diffusion_controlnet_scribble_app, stable_diffusion_controlnet_scribble | |
from diffusion_webui.controlnet.controlnet_seg import stable_diffusion_controlnet_seg_app, stable_diffusion_controlnet_seg | |
from diffusion_webui.stable_diffusion.text2img_app import stable_diffusion_text2img_app, stable_diffusion_text2img | |
from diffusion_webui.stable_diffusion.img2img_app import stable_diffusion_img2img_app, stable_diffusion_img2img | |
from diffusion_webui.stable_diffusion.inpaint_app import stable_diffusion_inpaint_app, stable_diffusion_inpaint | |
from diffusion_webui.stable_diffusion.keras_txt2img import keras_stable_diffusion, keras_stable_diffusion_app | |
import gradio as gr | |
app = gr.Blocks() | |
with app: | |
gr.HTML( | |
""" | |
<h1 style='text-align: center'> | |
Stable Diffusion + ControlNet WebUI | |
</h1> | |
""" | |
) | |
gr.Markdown( | |
""" | |
<h4 style='text-align: center'> | |
Follow me for more! | |
<a href='https://twitter.com/kadirnar_ai' target='_blank'>Twitter</a> | <a href='https://github.com/kadirnar' target='_blank'>Github</a> | <a href='https://www.linkedin.com/in/kadir-nar/' target='_blank'>Linkedin</a> | |
</h4> | |
""" | |
) | |
with gr.Row(): | |
with gr.Column(): | |
text2image_app = stable_diffusion_text2img_app() | |
img2img_app = stable_diffusion_img2img_app() | |
inpaint_app = stable_diffusion_inpaint_app() | |
with gr.Tab('ControlNet'): | |
controlnet_canny_app = stable_diffusion_controlnet_canny_app() | |
controlnet_hed_app = stable_diffusion_controlnet_hed_app() | |
controlnet_mlsd_app = stable_diffusion_controlnet_mlsd_app() | |
controlnet_depth_app = stable_diffusion_controlnet_depth_app() | |
controlnet_pose_app = stable_diffusion_controlnet_pose_app() | |
controlnet_scribble_app = stable_diffusion_controlnet_scribble_app() | |
controlnet_seg_app = stable_diffusion_controlnet_seg_app() | |
keras_diffusion_app = keras_stable_diffusion_app() | |
with gr.Tab('Output'): | |
with gr.Column(): | |
output_image = gr.Image(label='Image') | |
text2image_app['predict'].click( | |
fn = stable_diffusion_text2img, | |
inputs = [ | |
text2image_app['model_path'], | |
text2image_app['prompt'], | |
text2image_app['negative_prompt'], | |
text2image_app['guidance_scale'], | |
text2image_app['num_inference_step'], | |
text2image_app['height'], | |
text2image_app['width'], | |
], | |
outputs = [output_image], | |
) | |
img2img_app['predict'].click( | |
fn = stable_diffusion_img2img, | |
inputs = [ | |
img2img_app['image_path'], | |
img2img_app['model_path'], | |
img2img_app['prompt'], | |
img2img_app['negative_prompt'], | |
img2img_app['guidance_scale'], | |
img2img_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
inpaint_app['predict'].click( | |
fn = stable_diffusion_inpaint, | |
inputs = [ | |
inpaint_app['image_path'], | |
inpaint_app['model_path'], | |
inpaint_app['prompt'], | |
inpaint_app['negative_prompt'], | |
inpaint_app['guidance_scale'], | |
inpaint_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_canny_app['predict'].click( | |
fn = stable_diffusion_controlnet_canny, | |
inputs = [ | |
controlnet_canny_app['image_path'], | |
controlnet_canny_app['model_path'], | |
controlnet_canny_app['prompt'], | |
controlnet_canny_app['negative_prompt'], | |
controlnet_canny_app['guidance_scale'], | |
controlnet_canny_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_hed_app['predict'].click( | |
fn = stable_diffusion_controlnet_hed, | |
inputs = [ | |
controlnet_hed_app['image_path'], | |
controlnet_hed_app['model_path'], | |
controlnet_hed_app['prompt'], | |
controlnet_hed_app['negative_prompt'], | |
controlnet_hed_app['guidance_scale'], | |
controlnet_hed_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_mlsd_app['predict'].click( | |
fn = stable_diffusion_controlnet_mlsd, | |
inputs = [ | |
controlnet_mlsd_app['image_path'], | |
controlnet_mlsd_app['model_path'], | |
controlnet_mlsd_app['prompt'], | |
controlnet_mlsd_app['negative_prompt'], | |
controlnet_mlsd_app['guidance_scale'], | |
controlnet_mlsd_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_depth_app['predict'].click( | |
fn = stable_diffusion_controlnet_seg, | |
inputs = [ | |
controlnet_depth_app['image_path'], | |
controlnet_depth_app['model_path'], | |
controlnet_depth_app['prompt'], | |
controlnet_depth_app['negative_prompt'], | |
controlnet_depth_app['guidance_scale'], | |
controlnet_depth_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_pose_app['predict'].click( | |
fn = stable_diffusion_controlnet_depth, | |
inputs = [ | |
controlnet_pose_app['image_path'], | |
controlnet_pose_app['model_path'], | |
controlnet_pose_app['prompt'], | |
controlnet_pose_app['negative_prompt'], | |
controlnet_pose_app['guidance_scale'], | |
controlnet_pose_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_scribble_app['predict'].click( | |
fn = stable_diffusion_controlnet_scribble, | |
inputs = [ | |
controlnet_scribble_app['image_path'], | |
controlnet_scribble_app['model_path'], | |
controlnet_scribble_app['prompt'], | |
controlnet_scribble_app['negative_prompt'], | |
controlnet_scribble_app['guidance_scale'], | |
controlnet_scribble_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
controlnet_seg_app['predict'].click( | |
fn = stable_diffusion_controlnet_pose, | |
inputs = [ | |
controlnet_seg_app['image_path'], | |
controlnet_seg_app['model_path'], | |
controlnet_seg_app['prompt'], | |
controlnet_seg_app['negative_prompt'], | |
controlnet_seg_app['guidance_scale'], | |
controlnet_seg_app['num_inference_step'], | |
], | |
outputs = [output_image], | |
) | |
keras_diffusion_app['predict'].click( | |
fn = keras_stable_diffusion, | |
inputs = [ | |
keras_diffusion_app['model_path'], | |
keras_diffusion_app['prompt'], | |
keras_diffusion_app['negative_prompt'], | |
keras_diffusion_app['guidance_scale'], | |
keras_diffusion_app['num_inference_step'], | |
keras_diffusion_app['height'], | |
keras_diffusion_app['width'], | |
], | |
outputs = [output_image], | |
) | |
app.launch(debug=True) |