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add readme, requirements files. add inpaint radio
Browse files- README.MD +10 -0
- app.py +13 -7
- requirements.txt +5 -0
README.MD
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# **Stable Diffusion Pipeline Web UI**
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Stable Diffusion WebUI with first class support for HuggingFace Diffusers Pipelines and Diffusion Schedulers, made in the style of Automatic1111's WebUI and Evel_Space.
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Supports Huggingface `Text-to-Image`, `Image to Image`, and `Inpainting` pipelines, with fast switching between pipeline modes by reusing loaded model weights already in memory.
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Install requirements with `pip install -r requirements.txt`
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Run with `python app.py`
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app.py
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@@ -5,7 +5,7 @@ from inpaint_pipeline import SDInpaintPipeline as StableDiffusionInpaintPipeline
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from diffusers import (
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StableDiffusionPipeline,
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StableDiffusionImg2ImgPipeline,
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StableDiffusionInpaintPipelineLegacy # uncomment this line to use original inpaint pipeline
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)
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import diffusers.schedulers
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default_scheduler = scheduler_names[3] # expected to be DPM Multistep
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model_ids = [
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]
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loaded_model_id = ""
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strength=0.5,
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inpaint_image=None,
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inpaint_strength=0.5,
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neg_prompt="",
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pipe_class=StableDiffusionPipeline,
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pipe_kwargs="{}",
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init_image = inpaint_image["image"].resize((width, height))
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mask = inpaint_image["mask"].resize((width, height))
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result = pipe(
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prompt,
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negative_prompt=neg_prompt,
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mask_image=mask,
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num_inference_steps=int(steps),
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strength=inpaint_strength,
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guidance_scale=guidance,
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generator=generator,
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)
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step=0.02,
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value=0.8,
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)
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with gr.Row():
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batch_size = gr.Slider(
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strength,
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inpaint_image,
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inpaint_strength,
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neg_prompt,
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pipe_state,
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pipe_kwargs,
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from diffusers import (
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StableDiffusionPipeline,
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StableDiffusionImg2ImgPipeline,
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#StableDiffusionInpaintPipelineLegacy # uncomment this line to use original inpaint pipeline
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)
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import diffusers.schedulers
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default_scheduler = scheduler_names[3] # expected to be DPM Multistep
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model_ids = [
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"andite/anything-v4.0",
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"hakurei/waifu-diffusion",
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"prompthero/openjourney-v2",
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"runwayml/stable-diffusion-v1-5",
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"johnslegers/epic-diffusion",
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"stabilityai/stable-diffusion-2-1",
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]
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loaded_model_id = ""
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strength=0.5,
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inpaint_image=None,
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inpaint_strength=0.5,
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inpaint_radio='',
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neg_prompt="",
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pipe_class=StableDiffusionPipeline,
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pipe_kwargs="{}",
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init_image = inpaint_image["image"].resize((width, height))
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mask = inpaint_image["mask"].resize((width, height))
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result = pipe(
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prompt,
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negative_prompt=neg_prompt,
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mask_image=mask,
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num_inference_steps=int(steps),
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strength=inpaint_strength,
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preserve_unmasked_image=(inpaint_radio == inpaint_options[0]),
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guidance_scale=guidance,
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generator=generator,
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)
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step=0.02,
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value=0.8,
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)
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inpaint_options = ["preserve non-masked portions of image", "output entire inpainted image"]
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inpaint_radio = gr.Radio(inpaint_options, value=inpaint_options[0], show_label=False, interactive=True)
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with gr.Row():
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batch_size = gr.Slider(
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strength,
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inpaint_image,
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inpaint_strength,
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inpaint_radio,
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neg_prompt,
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pipe_state,
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pipe_kwargs,
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requirements.txt
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diffusers==0.11.1
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gradio==3.16.2
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numpy==1.24.1
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Pillow==9.4.0
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torch==1.12.1+cu113
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