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from huggingface_hub import from_pretrained_keras | |
from keras_cv import models | |
import gradio as gr | |
sd_dreambooth_model = models.StableDiffusion( | |
img_width=512, img_height=512 | |
) | |
db_diffusion_model = from_pretrained_keras("danwaldie/dreambooth_teddy") | |
sd_dreambooth_model._diffusion_model = db_diffusion_model | |
# generate images | |
def infer(prompt, negative_prompt, num_imgs_to_gen, num_steps, guidance_scale): | |
generated_images = sd_dreambooth_model.text_to_image( | |
prompt, | |
negative_prompt=negative_prompt, | |
batch_size=num_imgs_to_gen, | |
num_steps=num_steps, | |
unconditional_guidance_scale=guidance_scale | |
) | |
return generated_images | |
# output = gr.Gallery(label="Outputs").style(grid=(2,2)) | |
# pass function, input type for prompt, the output for multiple images | |
gr.Interface( | |
infer, [ | |
gr.Textbox(label="Positive Prompt", value="a teddy_holmes dog astronaut in space"), | |
gr.Textbox(label="Negative Prompt", value="bad anatomy, blurry"), | |
gr.Slider(label='Number of gen image', minimum=1, maximum=4, value=2, step=1), | |
gr.Slider(label="Inference Steps",value=50), | |
gr.Number(label='Guidance scale', value=7.5), | |
], [ | |
gr.Gallery(show_label=False), | |
], | |
title="Dreambooth Teddy", | |
description = "This is a dreambooth model fine-tuned on images of my dog, Teddy. Teddy is a Mini Double Doodle, whose mom was a mini golden doodle, and his dad was a labradoodle. To try it, input the concept with {teddy_holmes dog}.", | |
examples = [["a pencil drawing of a teddy_holmes dog as a knight in armor", "", 2, 50, 7.5]], | |
).launch() |