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Browse files- diffusion_webui/stable_diffusion/__pycache__/__init__.cpython-38.pyc +0 -0
- diffusion_webui/stable_diffusion/__pycache__/img2img_app.cpython-38.pyc +0 -0
- diffusion_webui/stable_diffusion/__pycache__/inpaint_app.cpython-38.pyc +0 -0
- diffusion_webui/stable_diffusion/__pycache__/keras_txt2img.cpython-38.pyc +0 -0
- diffusion_webui/stable_diffusion/__pycache__/text2img_app.cpython-38.pyc +0 -0
- diffusion_webui/stable_diffusion/inpaint_app.py +0 -1
- diffusion_webui/stable_diffusion/keras_txt2img.py +48 -65
diffusion_webui/stable_diffusion/__pycache__/__init__.cpython-38.pyc
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diffusion_webui/stable_diffusion/__pycache__/img2img_app.cpython-38.pyc
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diffusion_webui/stable_diffusion/__pycache__/inpaint_app.cpython-38.pyc
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diffusion_webui/stable_diffusion/__pycache__/keras_txt2img.cpython-38.pyc
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diffusion_webui/stable_diffusion/__pycache__/text2img_app.cpython-38.pyc
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diffusion_webui/stable_diffusion/inpaint_app.py
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@@ -8,7 +8,6 @@ stable_inpiant_model_list = [
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]
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stable_prompt_list = ["a photo of a man.", "a photo of a girl."]
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-
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stable_negative_prompt_list = ["bad, ugly", "deformed"]
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]
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stable_prompt_list = ["a photo of a man.", "a photo of a girl."]
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stable_negative_prompt_list = ["bad, ugly", "deformed"]
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diffusion_webui/stable_diffusion/keras_txt2img.py
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import gradio as gr
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import tensorflow as tf
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from huggingface_hub import from_pretrained_keras
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from keras_cv import models
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from tensorflow import keras
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keras_model_list = [
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"keras-dreambooth/keras_diffusion_lowpoly_world",
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"keras-dreambooth/
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"keras-dreambooth/dreambooth_diffusion_model",
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]
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stable_prompt_list = [
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"
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"
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]
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stable_negative_prompt_list = ["bad, ugly", "deformed"]
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def keras_stable_diffusion(
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model_path: str,
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prompt: str,
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negative_prompt: str,
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-
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height: int,
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width: int,
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):
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def keras_stable_diffusion_app():
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label="Negative Prompt",
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)
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)
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keras_text2image_height = gr.Slider(
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minimum=128,
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maximum=1280,
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step=32,
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value=512,
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label="Image Height",
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)
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keras_text2image_width = gr.Slider(
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minimum=128,
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maximum=1280,
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step=32,
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value=512,
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label="Image Height",
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)
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keras_text2image_predict = gr.Button(value="Generator")
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with gr.Column():
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output_image = gr.Gallery(label="
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gr.Examples(
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fn=keras_stable_diffusion,
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keras_text2image_negative_prompt,
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keras_text2image_guidance_scale,
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keras_text2image_num_inference_step,
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keras_text2image_height,
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keras_text2image_width,
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],
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outputs=[output_image],
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examples=[
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keras_text2image_negative_prompt,
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keras_text2image_guidance_scale,
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keras_text2image_num_inference_step,
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keras_text2image_height,
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keras_text2image_width,
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],
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outputs=output_image,
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)
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import gradio as gr
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from huggingface_hub import from_pretrained_keras
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from keras_cv import models
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from tensorflow import keras
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keras_model_list = [
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"keras-dreambooth/keras_diffusion_lowpoly_world",
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"keras-dreambooth/keras-diffusion-traditional-furniture",
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]
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stable_prompt_list = [
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"photo of lowpoly_world",
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"photo of traditional_furniture",
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]
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stable_negative_prompt_list = ["bad, ugly", "deformed"]
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keras.mixed_precision.set_global_policy("mixed_float16")
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dreambooth_model = models.StableDiffusion(
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img_width=512,
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img_height=512,
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jit_compile=True,
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)
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def keras_stable_diffusion(
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model_path: str,
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prompt: str,
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negative_prompt: str,
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num_imgs_to_gen: int,
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num_steps: int,
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):
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"""
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This function is used to generate images using our fine-tuned keras dreambooth stable diffusion model.
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Args:
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prompt (str): The text input given by the user based on which images will be generated.
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num_imgs_to_gen (int): The number of images to be generated using given prompt.
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num_steps (int): The number of denoising steps
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Returns:
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generated_img (List): List of images that were generated using the model
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"""
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loaded_diffusion_model = from_pretrained_keras(model_path)
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dreambooth_model._diffusion_model = loaded_diffusion_model
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generated_img = dreambooth_model.text_to_image(
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prompt,
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negative_prompt=negative_prompt,
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batch_size=num_imgs_to_gen,
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num_steps=num_steps,
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)
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return generated_img
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def keras_stable_diffusion_app():
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label="Negative Prompt",
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)
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keras_text2image_guidance_scale = gr.Slider(
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minimum=0.1,
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maximum=15,
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step=0.1,
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value=7.5,
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label="Guidance Scale",
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)
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keras_text2image_num_inference_step = gr.Slider(
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minimum=1,
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maximum=100,
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step=1,
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value=50,
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label="Num Inference Step",
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)
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keras_text2image_predict = gr.Button(value="Generator")
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with gr.Column():
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output_image = gr.Gallery(label="Outputs").style(grid=(1, 2))
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gr.Examples(
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fn=keras_stable_diffusion,
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keras_text2image_negative_prompt,
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keras_text2image_guidance_scale,
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keras_text2image_num_inference_step,
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],
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outputs=[output_image],
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examples=[
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keras_text2image_negative_prompt,
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keras_text2image_guidance_scale,
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keras_text2image_num_inference_step,
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],
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outputs=output_image,
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)
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