made deepdanbooru optional, added to readme, automatic download of deepbooru model
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@ -66,6 +66,7 @@ Check the [custom scripts](https://github.com/AUTOMATIC1111/stable-diffusion-web
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- separate prompts using uppercase `AND`
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- also supports weights for prompts: `a cat :1.2 AND a dog AND a penguin :2.2`
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- No token limit for prompts (original stable diffusion lets you use up to 75 tokens)
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- DeepDanbooru integration, creates danbooru style tags for anime prompts (add --deepdanbooru to commandline args)
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## Installation and Running
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Make sure the required [dependencies](https://github.com/AUTOMATIC1111/stable-diffusion-webui/wiki/Dependencies) are met and follow the instructions available for both [NVidia](https://github.com/AUTOMATIC1111/stable-diffusion-webui/wiki/Install-and-Run-on-NVidia-GPUs) (recommended) and [AMD](https://github.com/AUTOMATIC1111/stable-diffusion-webui/wiki/Install-and-Run-on-AMD-GPUs) GPUs.
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@ -123,4 +124,5 @@ The documentation was moved from this README over to the project's [wiki](https:
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- Noise generation for outpainting mk2 - https://github.com/parlance-zz/g-diffuser-bot
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- CLIP interrogator idea and borrowing some code - https://github.com/pharmapsychotic/clip-interrogator
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- Initial Gradio script - posted on 4chan by an Anonymous user. Thank you Anonymous user.
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- DeepDanbooru - interrogator for anime diffusors https://github.com/KichangKim/DeepDanbooru
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- (You)
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@ -33,6 +33,7 @@ def extract_arg(args, name):
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args, skip_torch_cuda_test = extract_arg(args, '--skip-torch-cuda-test')
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xformers = '--xformers' in args
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deepdanbooru = '--deepdanbooru' in args
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def repo_dir(name):
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@ -132,6 +133,9 @@ if not is_installed("xformers") and xformers:
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elif platform.system() == "Linux":
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run_pip("install xformers", "xformers")
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if not is_installed("deepdanbooru") and deepdanbooru:
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run_pip("install git+https://github.com/KichangKim/DeepDanbooru.git@edf73df4cdaeea2cf00e9ac08bd8a9026b7a7b26#egg=deepdanbooru[tensorflow] tensorflow==2.10.0 tensorflow-io==0.27.0", "deepdanbooru")
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os.makedirs(dir_repos, exist_ok=True)
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git_clone("https://github.com/CompVis/stable-diffusion.git", repo_dir('stable-diffusion'), "Stable Diffusion", stable_diffusion_commit_hash)
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@ -9,16 +9,16 @@ def _load_tf_and_return_tags(pil_image, threshold):
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import numpy as np
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this_folder = os.path.dirname(__file__)
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model_path = os.path.join(this_folder, '..', 'models', 'deepbooru', 'deepdanbooru-v3-20211112-sgd-e28')
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model_good = False
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for path_candidate in [model_path, os.path.dirname(model_path)]:
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if os.path.exists(os.path.join(path_candidate, 'project.json')):
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model_path = path_candidate
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model_good = True
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if not model_good:
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return ("Download https://github.com/KichangKim/DeepDanbooru/releases/download/v3-20211112-sgd-e28/"
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"deepdanbooru-v3-20211112-sgd-e28.zip unpack and put into models/deepbooru")
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model_path = os.path.abspath(os.path.join(this_folder, '..', 'models', 'deepbooru'))
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if not os.path.exists(os.path.join(model_path, 'project.json')):
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# there is no point importing these every time
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import zipfile
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from basicsr.utils.download_util import load_file_from_url
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load_file_from_url(r"https://github.com/KichangKim/DeepDanbooru/releases/download/v3-20211112-sgd-e28/deepdanbooru-v3-20211112-sgd-e28.zip",
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model_path)
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with zipfile.ZipFile(os.path.join(model_path, "deepdanbooru-v3-20211112-sgd-e28.zip"), "r") as zip_ref:
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zip_ref.extractall(model_path)
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os.remove(os.path.join(model_path, "deepdanbooru-v3-20211112-sgd-e28.zip"))
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tags = dd.project.load_tags_from_project(model_path)
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model = dd.project.load_model_from_project(
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@ -44,6 +44,7 @@ parser.add_argument("--scunet-models-path", type=str, help="Path to directory wi
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parser.add_argument("--swinir-models-path", type=str, help="Path to directory with SwinIR model file(s).", default=os.path.join(models_path, 'SwinIR'))
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parser.add_argument("--ldsr-models-path", type=str, help="Path to directory with LDSR model file(s).", default=os.path.join(models_path, 'LDSR'))
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parser.add_argument("--xformers", action='store_true', help="enable xformers for cross attention layers")
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parser.add_argument("--deepdanbooru", action='store_true', help="enable deepdanbooru interrogator")
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parser.add_argument("--opt-split-attention", action='store_true', help="force-enables cross-attention layer optimization. By default, it's on for torch.cuda and off for other torch devices.")
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parser.add_argument("--disable-opt-split-attention", action='store_true', help="force-disables cross-attention layer optimization")
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parser.add_argument("--opt-split-attention-v1", action='store_true', help="enable older version of split attention optimization that does not consume all the VRAM it can find")
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@ -23,9 +23,10 @@ import gradio.utils
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import gradio.routes
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from modules import sd_hijack
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from modules.deepbooru import get_deepbooru_tags
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from modules.paths import script_path
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from modules.shared import opts, cmd_opts
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if cmd_opts.deepdanbooru:
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from modules.deepbooru import get_deepbooru_tags
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import modules.shared as shared
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from modules.sd_samplers import samplers, samplers_for_img2img
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from modules.sd_hijack import model_hijack
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@ -437,7 +438,10 @@ def create_toprow(is_img2img):
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with gr.Row(scale=1):
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if is_img2img:
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interrogate = gr.Button('Interrogate\nCLIP', elem_id="interrogate")
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deepbooru = gr.Button('Interrogate\nDeepBooru', elem_id="deepbooru")
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if cmd_opts.deepdanbooru:
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deepbooru = gr.Button('Interrogate\nDeepBooru', elem_id="deepbooru")
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else:
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deepbooru = None
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else:
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interrogate = None
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deepbooru = None
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@ -782,11 +786,12 @@ def create_ui(wrap_gradio_gpu_call):
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outputs=[img2img_prompt],
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)
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img2img_deepbooru.click(
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fn=interrogate_deepbooru,
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inputs=[init_img],
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outputs=[img2img_prompt],
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)
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if cmd_opts.deepdanbooru:
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img2img_deepbooru.click(
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fn=interrogate_deepbooru,
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inputs=[init_img],
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outputs=[img2img_prompt],
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)
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save.click(
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fn=wrap_gradio_call(save_files),
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@ -23,7 +23,4 @@ resize-right
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torchdiffeq
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kornia
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lark
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deepdanbooru
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tensorflow
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tensorflow-io
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functorch
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@ -22,7 +22,4 @@ resize-right==0.0.2
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torchdiffeq==0.2.3
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kornia==0.6.7
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lark==1.1.2
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git+https://github.com/KichangKim/DeepDanbooru.git@edf73df4cdaeea2cf00e9ac08bd8a9026b7a7b26#egg=deepdanbooru[tensorflow]
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tensorflow==2.10.0
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tensorflow-io==0.27.0
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functorch==0.2.1
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