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Runtime error
Runtime error
Update app.py
Browse files
app.py
CHANGED
@@ -1,28 +1,3 @@
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task_stablepy = {
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'txt2img': 'txt2img',
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'img2img': 'img2img',
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'inpaint': 'inpaint',
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'sdxl_canny T2I Adapter': 'sdxl_canny',
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'sdxl_sketch T2I Adapter': 'sdxl_sketch',
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'sdxl_lineart T2I Adapter': 'sdxl_lineart',
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'sdxl_depth-midas T2I Adapter': 'sdxl_depth-midas',
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'sdxl_openpose T2I Adapter': 'sdxl_openpose',
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'sd_openpose ControlNet': 'openpose',
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'sd_canny ControlNet': 'canny',
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'sd_mlsd ControlNet': 'mlsd',
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'sd_scribble ControlNet': 'scribble',
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'sd_softedge ControlNet': 'softedge',
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'sd_segmentation ControlNet': 'segmentation',
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'sd_depth ControlNet': 'depth',
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'sd_normalbae ControlNet': 'normalbae',
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'sd_lineart ControlNet': 'lineart',
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'sd_lineart_anime ControlNet': 'lineart_anime',
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'sd_shuffle ControlNet': 'shuffle',
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'sd_ip2p ControlNet': 'ip2p',
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}
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task_model_list = list(task_stablepy.keys())
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#######################
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# UTILS
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#######################
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@@ -34,7 +9,22 @@ from stablepy.diffusers_vanilla.style_prompt_config import STYLE_NAMES
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import torch
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import re
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import shutil
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preprocessor_controlnet = {
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"openpose": [
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]
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}
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def download_things(directory, url, hf_token="", civitai_api_key=""):
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url = url.strip()
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@@ -154,9 +171,9 @@ os.makedirs(directory_vaes, exist_ok=True)
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# - **Download SD 1.5 Models**
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download_model = "https://huggingface.co/frankjoshua/toonyou_beta6/resolve/main/toonyou_beta6.safetensors"
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# - **Download VAEs**
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download_vae = "https://huggingface.co/madebyollin/sdxl-vae-fp16-fix/resolve/main/sdxl.vae.safetensors?download=true, https://huggingface.co/nubby/blessed-sdxl-vae-fp16-fix/resolve/main/sdxl_vae-fp16fix-c-1.1-b-0.5.safetensors?download=true, https://huggingface.co/nubby/blessed-sdxl-vae-fp16-fix/resolve/main/sdxl_vae-fp16fix-blessed.safetensors?download=true, https://huggingface.co/digiplay/VAE/resolve/main/vividReal_v20.safetensors?download=true, https://huggingface.co/fp16-guy/anything_kl-f8-anime2_vae-ft-mse-840000-ema-pruned_blessed_clearvae_fp16_cleaned/resolve/main/
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# - **Download LoRAs**
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download_lora = "https://civitai.com/api/download/models/135867, https://civitai.com/api/download/models/135931, https://civitai.com/api/download/models/177492, https://civitai.com/api/download/models/145907, https://huggingface.co/Linaqruf/anime-detailer-xl-lora/resolve/main/anime-detailer-xl.safetensors?download=true, https://huggingface.co/Linaqruf/style-enhancer-xl-lora/resolve/main/style-enhancer-xl.safetensors?download=true, https://civitai.com/api/download/models/28609"
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load_diffusers_format_model = [
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'stabilityai/stable-diffusion-xl-base-1.0',
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'misri/epicrealismXL_v7FinalDestination',
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'cagliostrolab/animagine-xl-3.1',
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'misri/kohakuXLEpsilon_rev1',
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'kitty7779/ponyDiffusionV6XL',
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'runwayml/stable-diffusion-v1-5',
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'digiplay/majicMIX_realistic_v6',
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'digiplay/majicMIX_realistic_v7',
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'digiplay/DreamShaper_8',
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directory_embeds = 'embedings'
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os.makedirs(directory_embeds, exist_ok=True)
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download_embeds = [
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'https://huggingface.co/datasets/Nerfgun3/bad_prompt/resolve/main/bad_prompt.pt',
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'https://huggingface.co/datasets/Nerfgun3/bad_prompt/blob/main/bad_prompt_version2.pt',
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'https://huggingface.co/embed/EasyNegative/resolve/main/EasyNegative.safetensors',
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'https://huggingface.co/embed/negative/resolve/main/EasyNegativeV2.safetensors',
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'https://huggingface.co/embed/negative/resolve/main/bad-hands-5.pt',
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'https://huggingface.co/embed/negative/resolve/main/bad-artist.pt',
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'https://huggingface.co/embed/negative/resolve/main/ng_deepnegative_v1_75t.pt',
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'https://huggingface.co/embed/negative/resolve/main/bad-artist-anime.pt',
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'https://huggingface.co/embed/negative/resolve/main/bad-image-v2-39000.pt',
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'https://huggingface.co/embed/negative/resolve/main/verybadimagenegative_v1.3.pt',
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]
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for url_embed in download_embeds:
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@@ -299,21 +308,51 @@ warnings.filterwarnings(action="ignore", category=FutureWarning, module="transfo
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from stablepy import logger
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logger.setLevel(logging.DEBUG)
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class GuiSD:
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def __init__(self):
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self.model = None
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@spaces.GPU(duration=120)
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def infer(self, model, pipe_params):
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images, image_list = model(**pipe_params)
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return images
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def generate_pipeline(
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self,
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prompt,
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mask_dilation_b,
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mask_blur_b,
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mask_padding_b,
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):
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vae_model = vae_model if vae_model != "None" else None
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loras_list = [lora1, lora2, lora3, lora4, lora5]
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for la in loras_list:
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if la is not None and la != "None":
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if (model_is_xl and lora_type) or (not model_is_xl and not lora_type):
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gr.Info(f"The LoRA {la} is for { 'SD 1.5' if model_is_xl else 'SDXL' }, but you are using { model_type }.")
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task = task_stablepy[task]
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# First load
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model_precision = torch.float16
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if not self.model:
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from
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print("Loading model...")
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self.model =
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base_model_id=model_name,
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task_name=task,
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vae_model=vae_model if vae_model != "None" else None,
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type_model_precision=model_precision
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)
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if task != "txt2img" and not image_control:
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model_name,
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task_name=task,
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vae_model=vae_model if vae_model != "None" else None,
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type_model_precision=model_precision
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)
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if textual_inversion and self.model.class_name == "StableDiffusionXLPipeline":
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"hires_negative_prompt": hires_negative_prompt,
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"hires_sampler": hires_sampler,
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"hires_before_adetailer": hires_before_adetailer,
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"hires_after_adetailer": hires_after_adetailer
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}
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# print(pipe_params)
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or (adetailer_active_a and adetailer_active_b)
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or (upscaler_model and upscaler_increases_size > 1.7)
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or (steps > 75)
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or (image_resolution > 1048)
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):
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print("Inference 2")
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return self.infer(self.model, pipe_params)
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print("Inference 1")
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sd_gen = GuiSD()
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#component-0 { height: 100%; }
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#gallery { flex-grow: 1; }
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"""
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sd_task = task_model_list[:3] + task_model_list[8:]
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def update_task_options(model_name, task_name):
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if model_name in model_list:
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if "xl" in model_name.lower():
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model_name_gui = gr.Dropdown(label="Model", choices=model_list, value=model_list[0], allow_custom_value=True)
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prompt_gui = gr.Textbox(lines=5, placeholder="Enter prompt", label="Prompt")
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neg_prompt_gui = gr.Textbox(lines=3, placeholder="Enter Neg prompt", label="Negative prompt")
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generate_button = gr.Button(value="GENERATE", variant="primary")
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model_name_gui.change(
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update_task_options,
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[model_name_gui, task_gui],
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[task_gui],
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)
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result_images = gr.Gallery(
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label="Generated images",
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show_label=False,
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selected_index=50,
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)
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with gr.Column(scale=1):
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steps_gui = gr.Slider(minimum=1, maximum=100, step=1, value=30, label="Steps")
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cfg_gui = gr.Slider(minimum=0, maximum=30, step=0.5, value=7.5, label="CFG")
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sampler_gui = gr.Dropdown(label="Sampler", choices=scheduler_names, value="Euler a")
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img_width_gui = gr.Slider(minimum=64, maximum=4096, step=8, value=1024, label="Img Width")
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img_height_gui = gr.Slider(minimum=64, maximum=4096, step=8, value=1024, label="Img Height")
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clip_skip_gui = gr.Checkbox(value=True, label="Layer 2 Clip Skip")
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free_u_gui = gr.Checkbox(value=True, label="FreeU")
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seed_gui = gr.Number(minimum=-1, maximum=9999999999, value=-1, label="Seed")
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num_images_gui = gr.Slider(minimum=1, maximum=4, step=1, value=1, label="Images")
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prompt_s_options = [
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prompt_syntax_gui = gr.Dropdown(label="Prompt Syntax", choices=prompt_s_options, value=prompt_s_options[0][1])
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vae_model_gui = gr.Dropdown(label="VAE Model", choices=vae_model_list)
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-
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with gr.Accordion("ControlNet / Img2img / Inpaint", open=False, visible=True):
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image_control = gr.Image(label="Image ControlNet/Inpaint/Img2img", type="filepath")
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image_mask_gui = gr.Image(label="Image Mask", type="filepath")
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)
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image_resolution_gui = gr.Slider(minimum=64, maximum=2048, step=64, value=1024, label="Image Resolution")
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preprocessor_name_gui = gr.Dropdown(label="Preprocessor Name", choices=preprocessor_controlnet["canny"])
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def change_preprocessor_choices(task):
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task = task_stablepy[task]
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if task in preprocessor_controlnet.keys():
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else:
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choices_task = preprocessor_controlnet["canny"]
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return gr.update(choices=choices_task, value=choices_task[0])
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task_gui.change(
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change_preprocessor_choices,
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[task_gui],
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adapter_conditioning_scale_gui = gr.Slider(minimum=0, maximum=5., step=0.1, value=1, label="Adapter Conditioning Scale")
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adapter_conditioning_factor_gui = gr.Slider(minimum=0, maximum=1., step=0.01, value=0.55, label="Adapter Conditioning Factor (%)")
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with gr.Accordion("LoRA", open=False, visible=True):
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lora1_gui = gr.Dropdown(label="Lora1", choices=lora_model_list)
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lora_scale_1_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 1")
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lora2_gui = gr.Dropdown(label="Lora2", choices=lora_model_list)
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lora_scale_2_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 2")
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lora3_gui = gr.Dropdown(label="Lora3", choices=lora_model_list)
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lora_scale_3_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 3")
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lora4_gui = gr.Dropdown(label="Lora4", choices=lora_model_list)
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lora_scale_4_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 4")
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lora5_gui = gr.Dropdown(label="Lora5", choices=lora_model_list)
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lora_scale_5_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 5")
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with gr.Accordion("Styles", open=False, visible=True):
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try:
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style_names_found = sd_gen.model.STYLE_NAMES
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except:
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style_names_found = STYLE_NAMES
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style_prompt_gui = gr.Dropdown(
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style_names_found,
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multiselect=True,
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if not sd_gen.model:
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gr.Info("First load the model")
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return gr.update(value=None, choices=STYLE_NAMES)
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-
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sd_gen.model.load_style_file(json)
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gr.Info(f"{len(sd_gen.model.STYLE_NAMES)} styles loaded")
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return gr.update(value=None, choices=sd_gen.model.STYLE_NAMES)
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style_button.click(load_json_style_file, [style_json_gui], [style_prompt_gui])
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with gr.Accordion("Textual inversion", open=False, visible=False):
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active_textual_inversion_gui = gr.Checkbox(value=False, label="Active Textual Inversion in prompt")
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with gr.Accordion("Hires fix", open=False, visible=True):
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upscaler_keys = list(upscaler_dict_gui.keys())
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upscaler_model_path_gui = gr.Dropdown(label="Upscaler", choices=upscaler_keys, value=upscaler_keys[0])
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764 |
-
upscaler_increases_size_gui = gr.Slider(minimum=1.1, maximum=6., step=0.1, value=1.5, label="Upscale by")
|
765 |
-
esrgan_tile_gui = gr.Slider(minimum=0, value=100, maximum=500, step=1, label="ESRGAN Tile")
|
766 |
-
esrgan_tile_overlap_gui = gr.Slider(minimum=1, maximum=200, step=1, value=10, label="ESRGAN Tile Overlap")
|
767 |
-
hires_steps_gui = gr.Slider(minimum=0, value=30, maximum=100, step=1, label="Hires Steps")
|
768 |
-
hires_denoising_strength_gui = gr.Slider(minimum=0.1, maximum=1.0, step=0.01, value=0.55, label="Hires Denoising Strength")
|
769 |
-
hires_sampler_gui = gr.Dropdown(label="Hires Sampler", choices=["Use same sampler"] + scheduler_names[:-1], value="Use same sampler")
|
770 |
-
hires_prompt_gui = gr.Textbox(label="Hires Prompt", placeholder="Main prompt will be use", lines=3)
|
771 |
-
hires_negative_prompt_gui = gr.Textbox(label="Hires Negative Prompt", placeholder="Main negative prompt will be use", lines=3)
|
772 |
-
|
773 |
with gr.Accordion("Detailfix", open=False, visible=True):
|
774 |
|
775 |
# Adetailer Inpaint Only
|
776 |
adetailer_inpaint_only_gui = gr.Checkbox(label="Inpaint only", value=True)
|
777 |
-
|
778 |
# Adetailer Verbose
|
779 |
adetailer_verbose_gui = gr.Checkbox(label="Verbose", value=False)
|
780 |
-
|
781 |
# Adetailer Sampler
|
782 |
adetailer_sampler_options = ["Use same sampler"] + scheduler_names[:-1]
|
783 |
adetailer_sampler_gui = gr.Dropdown(label="Adetailer sampler:", choices=adetailer_sampler_options, value="Use same sampler")
|
784 |
-
|
785 |
with gr.Accordion("Detailfix A", open=False, visible=True):
|
786 |
# Adetailer A
|
787 |
adetailer_active_a_gui = gr.Checkbox(label="Enable Adetailer A", value=False)
|
@@ -794,7 +978,7 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
794 |
mask_dilation_a_gui = gr.Number(label="Mask dilation:", value=4, minimum=1)
|
795 |
mask_blur_a_gui = gr.Number(label="Mask blur:", value=4, minimum=1)
|
796 |
mask_padding_a_gui = gr.Number(label="Mask padding:", value=32, minimum=1)
|
797 |
-
|
798 |
with gr.Accordion("Detailfix B", open=False, visible=True):
|
799 |
# Adetailer B
|
800 |
adetailer_active_b_gui = gr.Checkbox(label="Enable Adetailer B", value=False)
|
@@ -809,16 +993,17 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
809 |
mask_padding_b_gui = gr.Number(label="Mask padding:", value=32, minimum=1)
|
810 |
|
811 |
with gr.Accordion("Other settings", open=False, visible=True):
|
|
|
812 |
hires_before_adetailer_gui = gr.Checkbox(value=False, label="Hires Before Adetailer")
|
813 |
hires_after_adetailer_gui = gr.Checkbox(value=True, label="Hires After Adetailer")
|
814 |
generator_in_cpu_gui = gr.Checkbox(value=False, label="Generator in CPU")
|
815 |
|
816 |
with gr.Accordion("More settings", open=False, visible=False):
|
817 |
loop_generation_gui = gr.Slider(minimum=1, value=1, label="Loop Generation")
|
|
|
818 |
leave_progress_bar_gui = gr.Checkbox(value=True, label="Leave Progress Bar")
|
819 |
disable_progress_bar_gui = gr.Checkbox(value=False, label="Disable Progress Bar")
|
820 |
-
|
821 |
-
display_images_gui = gr.Checkbox(value=False, label="Display Images")
|
822 |
save_generated_images_gui = gr.Checkbox(value=False, label="Save Generated Images")
|
823 |
image_storage_location_gui = gr.Textbox(value="./images", label="Image Storage Location")
|
824 |
retain_compel_previous_load_gui = gr.Checkbox(value=False, label="Retain Compel Previous Load")
|
@@ -938,7 +1123,7 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
938 |
1024,
|
939 |
"misri/epicrealismXL_v7FinalDestination",
|
940 |
None, # vae
|
941 |
-
"
|
942 |
"image.webp", # img conttol
|
943 |
"Canny", # preprocessor
|
944 |
1024, # preproc resolution
|
@@ -1067,7 +1252,7 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
1067 |
512,
|
1068 |
"digiplay/majicMIX_realistic_v7",
|
1069 |
None, # vae
|
1070 |
-
"
|
1071 |
"image.webp", # img conttol
|
1072 |
"Canny", # preprocessor
|
1073 |
512, # preproc resolution
|
@@ -1176,7 +1361,7 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
1176 |
brush=gr.Brush(
|
1177 |
default_size="16", # or leave it as 'auto'
|
1178 |
color_mode="fixed", # 'fixed' hides the user swatches and colorpicker, 'defaults' shows it
|
1179 |
-
#default_color="black", # html names are supported
|
1180 |
colors=[
|
1181 |
"rgba(0, 0, 0, 1)", # rgb(a)
|
1182 |
"rgba(0, 0, 0, 0.1)",
|
@@ -1200,6 +1385,16 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
1200 |
btn_send.click(send_img, [img_source, img_result], [image_control, image_mask_gui])
|
1201 |
|
1202 |
generate_button.click(
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1203 |
fn=sd_gen.generate_pipeline,
|
1204 |
inputs=[
|
1205 |
prompt_gui,
|
@@ -1292,9 +1487,21 @@ with gr.Blocks(theme="NoCrypt/miku", css=CSS) as app:
|
|
1292 |
mask_dilation_b_gui,
|
1293 |
mask_blur_b_gui,
|
1294 |
mask_padding_b_gui,
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1295 |
],
|
1296 |
-
outputs=[result_images],
|
1297 |
queue=True,
|
|
|
1298 |
)
|
1299 |
|
1300 |
app.queue()
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
#######################
|
2 |
# UTILS
|
3 |
#######################
|
|
|
9 |
import torch
|
10 |
import re
|
11 |
import shutil
|
12 |
+
import random
|
13 |
+
from stablepy import (
|
14 |
+
CONTROLNET_MODEL_IDS,
|
15 |
+
VALID_TASKS,
|
16 |
+
T2I_PREPROCESSOR_NAME,
|
17 |
+
FLASH_LORA,
|
18 |
+
SCHEDULER_CONFIG_MAP,
|
19 |
+
scheduler_names,
|
20 |
+
IP_ADAPTER_MODELS,
|
21 |
+
IP_ADAPTERS_SD,
|
22 |
+
IP_ADAPTERS_SDXL,
|
23 |
+
REPO_IMAGE_ENCODER,
|
24 |
+
ALL_PROMPT_WEIGHT_OPTIONS,
|
25 |
+
SD15_TASKS,
|
26 |
+
SDXL_TASKS,
|
27 |
+
)
|
28 |
|
29 |
preprocessor_controlnet = {
|
30 |
"openpose": [
|
|
|
78 |
]
|
79 |
}
|
80 |
|
81 |
+
task_stablepy = {
|
82 |
+
'txt2img': 'txt2img',
|
83 |
+
'img2img': 'img2img',
|
84 |
+
'inpaint': 'inpaint',
|
85 |
+
# 'canny T2I Adapter': 'sdxl_canny_t2i', # NO HAVE STEP CALLBACK PARAMETERS SO NOT WORKS WITH DIFFUSERS 0.29.0
|
86 |
+
# 'sketch T2I Adapter': 'sdxl_sketch_t2i',
|
87 |
+
# 'lineart T2I Adapter': 'sdxl_lineart_t2i',
|
88 |
+
# 'depth-midas T2I Adapter': 'sdxl_depth-midas_t2i',
|
89 |
+
# 'openpose T2I Adapter': 'sdxl_openpose_t2i',
|
90 |
+
'openpose ControlNet': 'openpose',
|
91 |
+
'canny ControlNet': 'canny',
|
92 |
+
'mlsd ControlNet': 'mlsd',
|
93 |
+
'scribble ControlNet': 'scribble',
|
94 |
+
'softedge ControlNet': 'softedge',
|
95 |
+
'segmentation ControlNet': 'segmentation',
|
96 |
+
'depth ControlNet': 'depth',
|
97 |
+
'normalbae ControlNet': 'normalbae',
|
98 |
+
'lineart ControlNet': 'lineart',
|
99 |
+
'lineart_anime ControlNet': 'lineart_anime',
|
100 |
+
'shuffle ControlNet': 'shuffle',
|
101 |
+
'ip2p ControlNet': 'ip2p',
|
102 |
+
'optical pattern ControlNet': 'pattern',
|
103 |
+
'tile realistic': 'sdxl_tile_realistic',
|
104 |
+
}
|
105 |
+
|
106 |
+
task_model_list = list(task_stablepy.keys())
|
107 |
+
|
108 |
|
109 |
def download_things(directory, url, hf_token="", civitai_api_key=""):
|
110 |
url = url.strip()
|
|
|
171 |
# - **Download SD 1.5 Models**
|
172 |
download_model = "https://huggingface.co/frankjoshua/toonyou_beta6/resolve/main/toonyou_beta6.safetensors"
|
173 |
# - **Download VAEs**
|
174 |
+
download_vae = "https://huggingface.co/madebyollin/sdxl-vae-fp16-fix/resolve/main/sdxl.vae.safetensors?download=true, https://huggingface.co/nubby/blessed-sdxl-vae-fp16-fix/resolve/main/sdxl_vae-fp16fix-c-1.1-b-0.5.safetensors?download=true, https://huggingface.co/nubby/blessed-sdxl-vae-fp16-fix/resolve/main/sdxl_vae-fp16fix-blessed.safetensors?download=true, https://huggingface.co/digiplay/VAE/resolve/main/vividReal_v20.safetensors?download=true, https://huggingface.co/fp16-guy/anything_kl-f8-anime2_vae-ft-mse-840000-ema-pruned_blessed_clearvae_fp16_cleaned/resolve/main/vae-ft-mse-840000-ema-pruned_fp16.safetensors?download=true"
|
175 |
# - **Download LoRAs**
|
176 |
+
download_lora = "https://civitai.com/api/download/models/135867, https://civitai.com/api/download/models/135931, https://civitai.com/api/download/models/177492, https://civitai.com/api/download/models/145907, https://huggingface.co/Linaqruf/anime-detailer-xl-lora/resolve/main/anime-detailer-xl.safetensors?download=true, https://huggingface.co/Linaqruf/style-enhancer-xl-lora/resolve/main/style-enhancer-xl.safetensors?download=true, https://civitai.com/api/download/models/28609, https://huggingface.co/ByteDance/Hyper-SD/resolve/main/Hyper-SD15-8steps-CFG-lora.safetensors?download=true, https://huggingface.co/ByteDance/Hyper-SD/resolve/main/Hyper-SDXL-8steps-CFG-lora.safetensors?download=true"
|
177 |
load_diffusers_format_model = [
|
178 |
'stabilityai/stable-diffusion-xl-base-1.0',
|
179 |
'misri/epicrealismXL_v7FinalDestination',
|
|
|
182 |
'cagliostrolab/animagine-xl-3.1',
|
183 |
'misri/kohakuXLEpsilon_rev1',
|
184 |
'kitty7779/ponyDiffusionV6XL',
|
|
|
185 |
'digiplay/majicMIX_realistic_v6',
|
186 |
'digiplay/majicMIX_realistic_v7',
|
187 |
'digiplay/DreamShaper_8',
|
|
|
207 |
directory_embeds = 'embedings'
|
208 |
os.makedirs(directory_embeds, exist_ok=True)
|
209 |
download_embeds = [
|
|
|
210 |
'https://huggingface.co/datasets/Nerfgun3/bad_prompt/blob/main/bad_prompt_version2.pt',
|
|
|
211 |
'https://huggingface.co/embed/negative/resolve/main/EasyNegativeV2.safetensors',
|
212 |
'https://huggingface.co/embed/negative/resolve/main/bad-hands-5.pt',
|
|
|
|
|
|
|
|
|
|
|
213 |
]
|
214 |
|
215 |
for url_embed in download_embeds:
|
|
|
308 |
from stablepy import logger
|
309 |
logger.setLevel(logging.DEBUG)
|
310 |
|
|
|
311 |
class GuiSD:
|
312 |
+
def __init__(self, stream=True):
|
313 |
self.model = None
|
314 |
+
|
315 |
+
print("Loading model...")
|
316 |
+
self.model = Model_Diffusers(
|
317 |
+
base_model_id="cagliostrolab/animagine-xl-3.1",
|
318 |
+
task_name="txt2img",
|
319 |
+
vae_model=None,
|
320 |
+
type_model_precision=torch.float16,
|
321 |
+
retain_task_model_in_cache=False,
|
322 |
+
)
|
323 |
|
324 |
@spaces.GPU(duration=120)
|
325 |
def infer(self, model, pipe_params):
|
326 |
images, image_list = model(**pipe_params)
|
327 |
return images
|
328 |
|
329 |
+
def load_new_model(self, model_name, vae_model, task, progress=gr.Progress(track_tqdm=True)):
|
330 |
+
|
331 |
+
yield f"Loading model: {model_name}"
|
332 |
+
|
333 |
+
vae_model = vae_model if vae_model != "None" else None
|
334 |
+
|
335 |
+
|
336 |
+
if model_name in model_list:
|
337 |
+
model_is_xl = "xl" in model_name.lower()
|
338 |
+
sdxl_in_vae = vae_model and "sdxl" in vae_model.lower()
|
339 |
+
model_type = "SDXL" if model_is_xl else "SD 1.5"
|
340 |
+
incompatible_vae = (model_is_xl and vae_model and not sdxl_in_vae) or (not model_is_xl and sdxl_in_vae)
|
341 |
+
|
342 |
+
if incompatible_vae:
|
343 |
+
vae_model = None
|
344 |
+
|
345 |
+
|
346 |
+
self.model.load_pipe(
|
347 |
+
model_name,
|
348 |
+
task_name=task_stablepy[task],
|
349 |
+
vae_model=vae_model if vae_model != "None" else None,
|
350 |
+
type_model_precision=torch.float16,
|
351 |
+
retain_task_model_in_cache=False,
|
352 |
+
)
|
353 |
+
yield f"Model loaded: {model_name} {vae_model if vae_model else ''}"
|
354 |
+
|
355 |
+
@spaces.GPU
|
356 |
def generate_pipeline(
|
357 |
self,
|
358 |
prompt,
|
|
|
445 |
mask_dilation_b,
|
446 |
mask_blur_b,
|
447 |
mask_padding_b,
|
448 |
+
retain_task_cache_gui,
|
449 |
+
image_ip1,
|
450 |
+
mask_ip1,
|
451 |
+
model_ip1,
|
452 |
+
mode_ip1,
|
453 |
+
scale_ip1,
|
454 |
+
image_ip2,
|
455 |
+
mask_ip2,
|
456 |
+
model_ip2,
|
457 |
+
mode_ip2,
|
458 |
+
scale_ip2,
|
459 |
+
# progress=gr.Progress(track_tqdm=True),
|
460 |
+
# progress=gr.Progress()
|
461 |
):
|
462 |
|
463 |
+
# progress(0.01, desc="Loading model...")
|
464 |
+
|
465 |
vae_model = vae_model if vae_model != "None" else None
|
466 |
loras_list = [lora1, lora2, lora3, lora4, lora5]
|
467 |
|
|
|
481 |
|
482 |
for la in loras_list:
|
483 |
if la is not None and la != "None":
|
484 |
+
print(la)
|
485 |
+
lora_type = ("animetarot" in la.lower() or "Hyper-SD15-8steps".lower() in la.lower())
|
486 |
if (model_is_xl and lora_type) or (not model_is_xl and not lora_type):
|
487 |
gr.Info(f"The LoRA {la} is for { 'SD 1.5' if model_is_xl else 'SDXL' }, but you are using { model_type }.")
|
488 |
|
489 |
task = task_stablepy[task]
|
490 |
|
491 |
+
params_ip_img = []
|
492 |
+
params_ip_msk = []
|
493 |
+
params_ip_model = []
|
494 |
+
params_ip_mode = []
|
495 |
+
params_ip_scale = []
|
496 |
+
|
497 |
+
all_adapters = [
|
498 |
+
(image_ip1, mask_ip1, model_ip1, mode_ip1, scale_ip1),
|
499 |
+
(image_ip2, mask_ip2, model_ip2, mode_ip2, scale_ip2),
|
500 |
+
]
|
501 |
+
|
502 |
+
for imgip, mskip, modelip, modeip, scaleip in all_adapters:
|
503 |
+
if imgip:
|
504 |
+
params_ip_img.append(imgip)
|
505 |
+
if mskip:
|
506 |
+
params_ip_msk.append(mskip)
|
507 |
+
params_ip_model.append(modelip)
|
508 |
+
params_ip_mode.append(modeip)
|
509 |
+
params_ip_scale.append(scaleip)
|
510 |
+
|
511 |
# First load
|
512 |
model_precision = torch.float16
|
513 |
if not self.model:
|
514 |
+
from modelstream import Model_Diffusers2
|
515 |
|
516 |
print("Loading model...")
|
517 |
+
self.model = Model_Diffusers2(
|
518 |
base_model_id=model_name,
|
519 |
task_name=task,
|
520 |
vae_model=vae_model if vae_model != "None" else None,
|
521 |
+
type_model_precision=model_precision,
|
522 |
+
retain_task_model_in_cache=retain_task_cache_gui,
|
523 |
)
|
524 |
|
525 |
if task != "txt2img" and not image_control:
|
|
|
549 |
model_name,
|
550 |
task_name=task,
|
551 |
vae_model=vae_model if vae_model != "None" else None,
|
552 |
+
type_model_precision=model_precision,
|
553 |
+
retain_task_model_in_cache=retain_task_cache_gui,
|
554 |
)
|
555 |
|
556 |
if textual_inversion and self.model.class_name == "StableDiffusionXLPipeline":
|
|
|
652 |
"hires_negative_prompt": hires_negative_prompt,
|
653 |
"hires_sampler": hires_sampler,
|
654 |
"hires_before_adetailer": hires_before_adetailer,
|
655 |
+
"hires_after_adetailer": hires_after_adetailer,
|
656 |
+
"ip_adapter_image": params_ip_img,
|
657 |
+
"ip_adapter_mask": params_ip_msk,
|
658 |
+
"ip_adapter_model": params_ip_model,
|
659 |
+
"ip_adapter_mode": params_ip_mode,
|
660 |
+
"ip_adapter_scale": params_ip_scale,
|
661 |
}
|
662 |
|
663 |
# print(pipe_params)
|
664 |
|
665 |
+
random_number = random.randint(1, 100)
|
666 |
+
if random_number < 25 and num_images < 3:
|
667 |
+
if not upscaler_model and steps < 45 and task in ["txt2img", "img2img"] and not adetailer_active_a and not adetailer_active_b:
|
668 |
+
num_images *=2
|
669 |
+
pipe_params["num_images"] = num_images
|
670 |
+
gr.Info("Num images x 2 🎉")
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
671 |
|
672 |
+
# print("Inference 1")
|
673 |
+
# yield self.infer_short(self.model, pipe_params)
|
674 |
+
for img, seed, data in self.model(**pipe_params):
|
675 |
+
info_state = f"PROCESSING..."
|
676 |
+
if data:
|
677 |
+
info_state = f"COMPLETE: seeds={str(seed)}"
|
678 |
+
yield img, info_state
|
679 |
|
680 |
|
681 |
sd_gen = GuiSD()
|
|
|
685 |
#component-0 { height: 100%; }
|
686 |
#gallery { flex-grow: 1; }
|
687 |
"""
|
688 |
+
sdxl_task = [k for k, v in task_stablepy.items() if v in SDXL_TASKS ]
|
689 |
+
sd_task = [k for k, v in task_stablepy.items() if v in SD15_TASKS ]
|
|
|
|
|
|
|
690 |
def update_task_options(model_name, task_name):
|
691 |
if model_name in model_list:
|
692 |
if "xl" in model_name.lower():
|
|
|
718 |
model_name_gui = gr.Dropdown(label="Model", choices=model_list, value=model_list[0], allow_custom_value=True)
|
719 |
prompt_gui = gr.Textbox(lines=5, placeholder="Enter prompt", label="Prompt")
|
720 |
neg_prompt_gui = gr.Textbox(lines=3, placeholder="Enter Neg prompt", label="Negative prompt")
|
721 |
+
with gr.Row(equal_height=False):
|
722 |
+
set_params_gui = gr.Button(value="↙️")
|
723 |
+
clear_prompt_gui = gr.Button(value="🗑️")
|
724 |
+
set_random_seed = gr.Button(value="🎲")
|
725 |
generate_button = gr.Button(value="GENERATE", variant="primary")
|
726 |
+
|
727 |
model_name_gui.change(
|
728 |
update_task_options,
|
729 |
[model_name_gui, task_gui],
|
730 |
[task_gui],
|
731 |
)
|
732 |
|
733 |
+
load_model_gui = gr.HTML()
|
734 |
+
|
735 |
result_images = gr.Gallery(
|
736 |
label="Generated images",
|
737 |
show_label=False,
|
|
|
745 |
selected_index=50,
|
746 |
)
|
747 |
|
748 |
+
actual_task_info = gr.HTML()
|
749 |
+
|
750 |
with gr.Column(scale=1):
|
751 |
steps_gui = gr.Slider(minimum=1, maximum=100, step=1, value=30, label="Steps")
|
752 |
cfg_gui = gr.Slider(minimum=0, maximum=30, step=0.5, value=7.5, label="CFG")
|
753 |
sampler_gui = gr.Dropdown(label="Sampler", choices=scheduler_names, value="Euler a")
|
754 |
img_width_gui = gr.Slider(minimum=64, maximum=4096, step=8, value=1024, label="Img Width")
|
755 |
img_height_gui = gr.Slider(minimum=64, maximum=4096, step=8, value=1024, label="Img Height")
|
|
|
|
|
756 |
seed_gui = gr.Number(minimum=-1, maximum=9999999999, value=-1, label="Seed")
|
757 |
+
with gr.Row():
|
758 |
+
clip_skip_gui = gr.Checkbox(value=True, label="Layer 2 Clip Skip")
|
759 |
+
free_u_gui = gr.Checkbox(value=True, label="FreeU")
|
760 |
+
|
761 |
+
with gr.Row(equal_height=False):
|
762 |
+
|
763 |
+
|
764 |
+
|
765 |
+
def run_set_params_gui(base_prompt):
|
766 |
+
valid_receptors = { # default values
|
767 |
+
"prompt": gr.update(value=base_prompt),
|
768 |
+
"neg_prompt": gr.update(value=""),
|
769 |
+
"Steps": gr.update(value=30),
|
770 |
+
"width": gr.update(value=1024),
|
771 |
+
"height": gr.update(value=1024),
|
772 |
+
"Seed": gr.update(value=-1),
|
773 |
+
"Sampler": gr.update(value="Euler a"),
|
774 |
+
"scale": gr.update(value=7.5), # cfg
|
775 |
+
"skip": gr.update(value=True),
|
776 |
+
}
|
777 |
+
valid_keys = list(valid_receptors.keys())
|
778 |
+
|
779 |
+
parameters = extract_parameters(base_prompt)
|
780 |
+
for key, val in parameters.items():
|
781 |
+
# print(val)
|
782 |
+
if key in valid_keys:
|
783 |
+
if key == "Sampler":
|
784 |
+
if val not in scheduler_names:
|
785 |
+
continue
|
786 |
+
elif key == "skip":
|
787 |
+
if int(val) >= 2:
|
788 |
+
val = True
|
789 |
+
if key == "prompt":
|
790 |
+
if ">" in val and "<" in val:
|
791 |
+
val = re.sub(r'<[^>]+>', '', val)
|
792 |
+
print("Removed LoRA written in the prompt")
|
793 |
+
if key in ["prompt", "neg_prompt"]:
|
794 |
+
val = val.strip()
|
795 |
+
if key in ["Steps", "width", "height", "Seed"]:
|
796 |
+
val = int(val)
|
797 |
+
if key == "scale":
|
798 |
+
val = float(val)
|
799 |
+
if key == "Seed":
|
800 |
+
continue
|
801 |
+
valid_receptors[key] = gr.update(value=val)
|
802 |
+
# print(val, type(val))
|
803 |
+
# print(valid_receptors)
|
804 |
+
return [value for value in valid_receptors.values()]
|
805 |
+
|
806 |
+
set_params_gui.click(
|
807 |
+
run_set_params_gui, [prompt_gui],[
|
808 |
+
prompt_gui,
|
809 |
+
neg_prompt_gui,
|
810 |
+
steps_gui,
|
811 |
+
img_width_gui,
|
812 |
+
img_height_gui,
|
813 |
+
seed_gui,
|
814 |
+
sampler_gui,
|
815 |
+
cfg_gui,
|
816 |
+
clip_skip_gui,
|
817 |
+
],
|
818 |
+
)
|
819 |
+
|
820 |
+
|
821 |
+
def run_clear_prompt_gui():
|
822 |
+
return gr.update(value=""), gr.update(value="")
|
823 |
+
clear_prompt_gui.click(
|
824 |
+
run_clear_prompt_gui, [], [prompt_gui, neg_prompt_gui]
|
825 |
+
)
|
826 |
+
|
827 |
+
def run_set_random_seed():
|
828 |
+
return -1
|
829 |
+
set_random_seed.click(
|
830 |
+
run_set_random_seed, [], seed_gui
|
831 |
+
)
|
832 |
+
|
833 |
num_images_gui = gr.Slider(minimum=1, maximum=4, step=1, value=1, label="Images")
|
834 |
+
prompt_s_options = [
|
835 |
+
("Compel format: (word)weight", "Compel"),
|
836 |
+
("Classic format: (word:weight)", "Classic"),
|
837 |
+
("Classic-original format: (word:weight)", "Classic-original"),
|
838 |
+
("Classic-no_norm format: (word:weight)", "Classic-no_norm"),
|
839 |
+
("Classic-ignore", "Classic-ignore"),
|
840 |
+
("None", "None"),
|
841 |
+
]
|
842 |
prompt_syntax_gui = gr.Dropdown(label="Prompt Syntax", choices=prompt_s_options, value=prompt_s_options[0][1])
|
843 |
vae_model_gui = gr.Dropdown(label="VAE Model", choices=vae_model_list)
|
844 |
+
|
845 |
+
with gr.Accordion("Hires fix", open=False, visible=True):
|
846 |
+
|
847 |
+
upscaler_keys = list(upscaler_dict_gui.keys())
|
848 |
+
|
849 |
+
upscaler_model_path_gui = gr.Dropdown(label="Upscaler", choices=upscaler_keys, value=upscaler_keys[0])
|
850 |
+
upscaler_increases_size_gui = gr.Slider(minimum=1.1, maximum=6., step=0.1, value=1.4, label="Upscale by")
|
851 |
+
esrgan_tile_gui = gr.Slider(minimum=0, value=100, maximum=500, step=1, label="ESRGAN Tile")
|
852 |
+
esrgan_tile_overlap_gui = gr.Slider(minimum=1, maximum=200, step=1, value=10, label="ESRGAN Tile Overlap")
|
853 |
+
hires_steps_gui = gr.Slider(minimum=0, value=30, maximum=100, step=1, label="Hires Steps")
|
854 |
+
hires_denoising_strength_gui = gr.Slider(minimum=0.1, maximum=1.0, step=0.01, value=0.55, label="Hires Denoising Strength")
|
855 |
+
hires_sampler_gui = gr.Dropdown(label="Hires Sampler", choices=["Use same sampler"] + scheduler_names[:-1], value="Use same sampler")
|
856 |
+
hires_prompt_gui = gr.Textbox(label="Hires Prompt", placeholder="Main prompt will be use", lines=3)
|
857 |
+
hires_negative_prompt_gui = gr.Textbox(label="Hires Negative Prompt", placeholder="Main negative prompt will be use", lines=3)
|
858 |
+
|
859 |
+
with gr.Accordion("LoRA", open=False, visible=True):
|
860 |
+
lora1_gui = gr.Dropdown(label="Lora1", choices=lora_model_list)
|
861 |
+
lora_scale_1_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 1")
|
862 |
+
lora2_gui = gr.Dropdown(label="Lora2", choices=lora_model_list)
|
863 |
+
lora_scale_2_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 2")
|
864 |
+
lora3_gui = gr.Dropdown(label="Lora3", choices=lora_model_list)
|
865 |
+
lora_scale_3_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 3")
|
866 |
+
lora4_gui = gr.Dropdown(label="Lora4", choices=lora_model_list)
|
867 |
+
lora_scale_4_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 4")
|
868 |
+
lora5_gui = gr.Dropdown(label="Lora5", choices=lora_model_list)
|
869 |
+
lora_scale_5_gui = gr.Slider(minimum=-2, maximum=2, step=0.01, value=0.33, label="Lora Scale 5")
|
870 |
+
|
871 |
+
with gr.Accordion("IP-Adapter", open=False, visible=True):##############
|
872 |
+
|
873 |
+
IP_MODELS = sorted(list(set(IP_ADAPTERS_SD + IP_ADAPTERS_SDXL)))
|
874 |
+
MODE_IP_OPTIONS = ["original", "style", "layout", "style+layout"]
|
875 |
+
|
876 |
+
with gr.Accordion("IP-Adapter 1", open=False, visible=True):
|
877 |
+
image_ip1 = gr.Image(label="IP Image", type="filepath")
|
878 |
+
mask_ip1 = gr.Image(label="IP Mask", type="filepath")
|
879 |
+
model_ip1 = gr.Dropdown(value="plus_face", label="Model", choices=IP_MODELS)
|
880 |
+
mode_ip1 = gr.Dropdown(value="original", label="Mode", choices=MODE_IP_OPTIONS)
|
881 |
+
scale_ip1 = gr.Slider(minimum=0., maximum=2., step=0.01, value=0.7, label="Scale")
|
882 |
+
with gr.Accordion("IP-Adapter 2", open=False, visible=True):
|
883 |
+
image_ip2 = gr.Image(label="IP Image", type="filepath")
|
884 |
+
mask_ip2 = gr.Image(label="IP Mask (optional)", type="filepath")
|
885 |
+
model_ip2 = gr.Dropdown(value="base", label="Model", choices=IP_MODELS)
|
886 |
+
mode_ip2 = gr.Dropdown(value="style", label="Mode", choices=MODE_IP_OPTIONS)
|
887 |
+
scale_ip2 = gr.Slider(minimum=0., maximum=2., step=0.01, value=0.7, label="Scale")
|
888 |
+
|
889 |
with gr.Accordion("ControlNet / Img2img / Inpaint", open=False, visible=True):
|
890 |
image_control = gr.Image(label="Image ControlNet/Inpaint/Img2img", type="filepath")
|
891 |
image_mask_gui = gr.Image(label="Image Mask", type="filepath")
|
|
|
895 |
)
|
896 |
image_resolution_gui = gr.Slider(minimum=64, maximum=2048, step=64, value=1024, label="Image Resolution")
|
897 |
preprocessor_name_gui = gr.Dropdown(label="Preprocessor Name", choices=preprocessor_controlnet["canny"])
|
898 |
+
|
899 |
def change_preprocessor_choices(task):
|
900 |
task = task_stablepy[task]
|
901 |
if task in preprocessor_controlnet.keys():
|
|
|
903 |
else:
|
904 |
choices_task = preprocessor_controlnet["canny"]
|
905 |
return gr.update(choices=choices_task, value=choices_task[0])
|
906 |
+
|
907 |
task_gui.change(
|
908 |
change_preprocessor_choices,
|
909 |
[task_gui],
|
|
|
923 |
adapter_conditioning_scale_gui = gr.Slider(minimum=0, maximum=5., step=0.1, value=1, label="Adapter Conditioning Scale")
|
924 |
adapter_conditioning_factor_gui = gr.Slider(minimum=0, maximum=1., step=0.01, value=0.55, label="Adapter Conditioning Factor (%)")
|
925 |
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
926 |
with gr.Accordion("Styles", open=False, visible=True):
|
927 |
+
|
928 |
try:
|
929 |
style_names_found = sd_gen.model.STYLE_NAMES
|
930 |
except:
|
931 |
style_names_found = STYLE_NAMES
|
932 |
+
|
933 |
style_prompt_gui = gr.Dropdown(
|
934 |
style_names_found,
|
935 |
multiselect=True,
|
|
|
944 |
if not sd_gen.model:
|
945 |
gr.Info("First load the model")
|
946 |
return gr.update(value=None, choices=STYLE_NAMES)
|
947 |
+
|
948 |
sd_gen.model.load_style_file(json)
|
949 |
gr.Info(f"{len(sd_gen.model.STYLE_NAMES)} styles loaded")
|
950 |
return gr.update(value=None, choices=sd_gen.model.STYLE_NAMES)
|
951 |
|
952 |
style_button.click(load_json_style_file, [style_json_gui], [style_prompt_gui])
|
953 |
+
|
954 |
with gr.Accordion("Textual inversion", open=False, visible=False):
|
955 |
active_textual_inversion_gui = gr.Checkbox(value=False, label="Active Textual Inversion in prompt")
|
956 |
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
957 |
with gr.Accordion("Detailfix", open=False, visible=True):
|
958 |
|
959 |
# Adetailer Inpaint Only
|
960 |
adetailer_inpaint_only_gui = gr.Checkbox(label="Inpaint only", value=True)
|
961 |
+
|
962 |
# Adetailer Verbose
|
963 |
adetailer_verbose_gui = gr.Checkbox(label="Verbose", value=False)
|
964 |
+
|
965 |
# Adetailer Sampler
|
966 |
adetailer_sampler_options = ["Use same sampler"] + scheduler_names[:-1]
|
967 |
adetailer_sampler_gui = gr.Dropdown(label="Adetailer sampler:", choices=adetailer_sampler_options, value="Use same sampler")
|
968 |
+
|
969 |
with gr.Accordion("Detailfix A", open=False, visible=True):
|
970 |
# Adetailer A
|
971 |
adetailer_active_a_gui = gr.Checkbox(label="Enable Adetailer A", value=False)
|
|
|
978 |
mask_dilation_a_gui = gr.Number(label="Mask dilation:", value=4, minimum=1)
|
979 |
mask_blur_a_gui = gr.Number(label="Mask blur:", value=4, minimum=1)
|
980 |
mask_padding_a_gui = gr.Number(label="Mask padding:", value=32, minimum=1)
|
981 |
+
|
982 |
with gr.Accordion("Detailfix B", open=False, visible=True):
|
983 |
# Adetailer B
|
984 |
adetailer_active_b_gui = gr.Checkbox(label="Enable Adetailer B", value=False)
|
|
|
993 |
mask_padding_b_gui = gr.Number(label="Mask padding:", value=32, minimum=1)
|
994 |
|
995 |
with gr.Accordion("Other settings", open=False, visible=True):
|
996 |
+
image_previews_gui = gr.Checkbox(value=True, label="Image Previews")
|
997 |
hires_before_adetailer_gui = gr.Checkbox(value=False, label="Hires Before Adetailer")
|
998 |
hires_after_adetailer_gui = gr.Checkbox(value=True, label="Hires After Adetailer")
|
999 |
generator_in_cpu_gui = gr.Checkbox(value=False, label="Generator in CPU")
|
1000 |
|
1001 |
with gr.Accordion("More settings", open=False, visible=False):
|
1002 |
loop_generation_gui = gr.Slider(minimum=1, value=1, label="Loop Generation")
|
1003 |
+
retain_task_cache_gui = gr.Checkbox(value=False, label="Retain task model in cache")
|
1004 |
leave_progress_bar_gui = gr.Checkbox(value=True, label="Leave Progress Bar")
|
1005 |
disable_progress_bar_gui = gr.Checkbox(value=False, label="Disable Progress Bar")
|
1006 |
+
display_images_gui = gr.Checkbox(value=True, label="Display Images")
|
|
|
1007 |
save_generated_images_gui = gr.Checkbox(value=False, label="Save Generated Images")
|
1008 |
image_storage_location_gui = gr.Textbox(value="./images", label="Image Storage Location")
|
1009 |
retain_compel_previous_load_gui = gr.Checkbox(value=False, label="Retain Compel Previous Load")
|
|
|
1123 |
1024,
|
1124 |
"misri/epicrealismXL_v7FinalDestination",
|
1125 |
None, # vae
|
1126 |
+
"canny ControlNet",
|
1127 |
"image.webp", # img conttol
|
1128 |
"Canny", # preprocessor
|
1129 |
1024, # preproc resolution
|
|
|
1252 |
512,
|
1253 |
"digiplay/majicMIX_realistic_v7",
|
1254 |
None, # vae
|
1255 |
+
"openpose ControlNet",
|
1256 |
"image.webp", # img conttol
|
1257 |
"Canny", # preprocessor
|
1258 |
512, # preproc resolution
|
|
|
1361 |
brush=gr.Brush(
|
1362 |
default_size="16", # or leave it as 'auto'
|
1363 |
color_mode="fixed", # 'fixed' hides the user swatches and colorpicker, 'defaults' shows it
|
1364 |
+
# default_color="black", # html names are supported
|
1365 |
colors=[
|
1366 |
"rgba(0, 0, 0, 1)", # rgb(a)
|
1367 |
"rgba(0, 0, 0, 0.1)",
|
|
|
1385 |
btn_send.click(send_img, [img_source, img_result], [image_control, image_mask_gui])
|
1386 |
|
1387 |
generate_button.click(
|
1388 |
+
fn=sd_gen.load_new_model,
|
1389 |
+
inputs=[
|
1390 |
+
model_name_gui,
|
1391 |
+
vae_model_gui,
|
1392 |
+
task_gui
|
1393 |
+
],
|
1394 |
+
outputs=[load_model_gui],
|
1395 |
+
queue=True,
|
1396 |
+
show_progress="minimal",
|
1397 |
+
).success(
|
1398 |
fn=sd_gen.generate_pipeline,
|
1399 |
inputs=[
|
1400 |
prompt_gui,
|
|
|
1487 |
mask_dilation_b_gui,
|
1488 |
mask_blur_b_gui,
|
1489 |
mask_padding_b_gui,
|
1490 |
+
retain_task_cache_gui,
|
1491 |
+
image_ip1,
|
1492 |
+
mask_ip1,
|
1493 |
+
model_ip1,
|
1494 |
+
mode_ip1,
|
1495 |
+
scale_ip1,
|
1496 |
+
image_ip2,
|
1497 |
+
mask_ip2,
|
1498 |
+
model_ip2,
|
1499 |
+
mode_ip2,
|
1500 |
+
scale_ip2,
|
1501 |
],
|
1502 |
+
outputs=[result_images, actual_task_info],
|
1503 |
queue=True,
|
1504 |
+
show_progress="minimal",
|
1505 |
)
|
1506 |
|
1507 |
app.queue()
|