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from huggingface_hub import from_pretrained_keras | |
from keras_cv import models | |
from tensorflow import keras | |
import tensorflow as tf | |
import gradio as gr | |
keras.mixed_precision.set_global_policy("mixed_float16") | |
keras_model_list = [ | |
"kadirnar/dreambooth_diffusion_model_v5", | |
"kadirnar/dreambooth_diffusion_model_v3" | |
] | |
stable_prompt_list = [ | |
"a photo of sks traditional furniture", | |
] | |
stable_negative_prompt_list = [ | |
"bad, ugly", | |
"deformed" | |
] | |
def keras_stable_diffusion( | |
model_path:str, | |
prompt:str, | |
negative_prompt:str, | |
guidance_scale:int, | |
num_inference_step:int, | |
height:int, | |
width:int, | |
): | |
sd_dreambooth_model = models.StableDiffusion( | |
img_width=height, | |
img_height=width | |
) | |
db_diffusion_model = from_pretrained_keras(model_path) | |
sd_dreambooth_model._diffusion_model = db_diffusion_model | |
generated_images = sd_dreambooth_model.text_to_image( | |
prompt=prompt, | |
negative_prompt=negative_prompt, | |
num_steps=num_inference_step, | |
unconditional_guidance_scale=guidance_scale | |
) | |
return generated_images | |
def keras_stable_diffusion_app(): | |
with gr.Blocks(): | |
with gr.Row(): | |
with gr.Column(): | |
keras_text2image_model_path = gr.Dropdown( | |
choices=keras_model_list, | |
value=keras_model_list[0], | |
label='Text-Image Model Id' | |
) | |
keras_text2image_prompt = gr.Textbox( | |
lines=1, | |
value=stable_prompt_list[0], | |
label='Prompt' | |
) | |
keras_text2image_negative_prompt = gr.Textbox( | |
lines=1, | |
value=stable_negative_prompt_list[0], | |
label='Negative Prompt' | |
) | |
with gr.Accordion("Advanced Options", open=False): | |
keras_text2image_guidance_scale = gr.Slider( | |
minimum=0.1, | |
maximum=15, | |
step=0.1, | |
value=7.5, | |
label='Guidance Scale' | |
) | |
keras_text2image_num_inference_step = gr.Slider( | |
minimum=1, | |
maximum=100, | |
step=1, | |
value=50, | |
label='Num Inference Step' | |
) | |
keras_text2image_height = gr.Slider( | |
minimum=128, | |
maximum=1280, | |
step=32, | |
value=512, | |
label='Image Height' | |
) | |
keras_text2image_width = gr.Slider( | |
minimum=128, | |
maximum=1280, | |
step=32, | |
value=512, | |
label='Image Height' | |
) | |
keras_text2image_predict = gr.Button(value='Generator') | |
with gr.Column(): | |
output_image = gr.Gallery(label='Output') | |
keras_text2image_predict.click( | |
fn=keras_stable_diffusion, | |
inputs=[ | |
keras_text2image_model_path, | |
keras_text2image_prompt, | |
keras_text2image_negative_prompt, | |
keras_text2image_guidance_scale, | |
keras_text2image_num_inference_step, | |
keras_text2image_height, | |
keras_text2image_width | |
], | |
outputs=output_image | |
) | |