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import argparse
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import datetime
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import json
import os
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import sys
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import time
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from PIL import Image
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import gradio as gr
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import tqdm
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import modules . interrogate
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import modules . memmon
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import modules . styles
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import modules . devices as devices
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from modules import localization , extensions , script_loading , errors , ui_components , shared_items
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from modules . paths import models_path , script_path , data_path
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demo = None
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sd_configs_path = os . path . join ( script_path , " configs " )
sd_default_config = os . path . join ( sd_configs_path , " v1-inference.yaml " )
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sd_model_file = os . path . join ( script_path , ' model.ckpt ' )
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default_sd_model_file = sd_model_file
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parser = argparse . ArgumentParser ( )
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parser . add_argument ( " --data-dir " , type = str , default = os . path . dirname ( os . path . dirname ( os . path . realpath ( __file__ ) ) ) , help = " base path where all user data is stored " , )
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parser . add_argument ( " --config " , type = str , default = sd_default_config , help = " path to config which constructs model " , )
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parser . add_argument ( " --ckpt " , type = str , default = sd_model_file , help = " path to checkpoint of stable diffusion model; if specified, this checkpoint will be added to the list of checkpoints and loaded " , )
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parser . add_argument ( " --ckpt-dir " , type = str , default = None , help = " Path to directory with stable diffusion checkpoints " )
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parser . add_argument ( " --vae-dir " , type = str , default = None , help = " Path to directory with VAE files " )
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parser . add_argument ( " --gfpgan-dir " , type = str , help = " GFPGAN directory " , default = ( ' ./src/gfpgan ' if os . path . exists ( ' ./src/gfpgan ' ) else ' ./GFPGAN ' ) )
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parser . add_argument ( " --gfpgan-model " , type = str , help = " GFPGAN model file name " , default = None )
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parser . add_argument ( " --no-half " , action = ' store_true ' , help = " do not switch the model to 16-bit floats " )
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parser . add_argument ( " --no-half-vae " , action = ' store_true ' , help = " do not switch the VAE model to 16-bit floats " )
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parser . add_argument ( " --no-progressbar-hiding " , action = ' store_true ' , help = " do not hide progressbar in gradio UI (we hide it because it slows down ML if you have hardware acceleration in browser) " )
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parser . add_argument ( " --max-batch-count " , type = int , default = 16 , help = " maximum batch count value for the UI " )
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parser . add_argument ( " --embeddings-dir " , type = str , default = os . path . join ( data_path , ' embeddings ' ) , help = " embeddings directory for textual inversion (default: embeddings) " )
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parser . add_argument ( " --textual-inversion-templates-dir " , type = str , default = os . path . join ( script_path , ' textual_inversion_templates ' ) , help = " directory with textual inversion templates " )
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parser . add_argument ( " --hypernetwork-dir " , type = str , default = os . path . join ( models_path , ' hypernetworks ' ) , help = " hypernetwork directory " )
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parser . add_argument ( " --localizations-dir " , type = str , default = os . path . join ( script_path , ' localizations ' ) , help = " localizations directory " )
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parser . add_argument ( " --allow-code " , action = ' store_true ' , help = " allow custom script execution from webui " )
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parser . add_argument ( " --medvram " , action = ' store_true ' , help = " enable stable diffusion model optimizations for sacrificing a little speed for low VRM usage " )
parser . add_argument ( " --lowvram " , action = ' store_true ' , help = " enable stable diffusion model optimizations for sacrificing a lot of speed for very low VRM usage " )
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parser . add_argument ( " --lowram " , action = ' store_true ' , help = " load stable diffusion checkpoint weights to VRAM instead of RAM " )
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parser . add_argument ( " --always-batch-cond-uncond " , action = ' store_true ' , help = " disables cond/uncond batching that is enabled to save memory with --medvram or --lowvram " )
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parser . add_argument ( " --unload-gfpgan " , action = ' store_true ' , help = " does not do anything. " )
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parser . add_argument ( " --precision " , type = str , help = " evaluate at this precision " , choices = [ " full " , " autocast " ] , default = " autocast " )
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parser . add_argument ( " --upcast-sampling " , action = ' store_true ' , help = " upcast sampling. No effect with --no-half. Usually produces similar results to --no-half with better performance while using less memory. " )
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parser . add_argument ( " --share " , action = ' store_true ' , help = " use share=True for gradio and make the UI accessible through their site " )
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parser . add_argument ( " --ngrok " , type = str , help = " ngrok authtoken, alternative to gradio --share " , default = None )
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parser . add_argument ( " --ngrok-region " , type = str , help = " The region in which ngrok should start. " , default = " us " )
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parser . add_argument ( " --enable-insecure-extension-access " , action = ' store_true ' , help = " enable extensions tab regardless of other options " )
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parser . add_argument ( " --codeformer-models-path " , type = str , help = " Path to directory with codeformer model file(s). " , default = os . path . join ( models_path , ' Codeformer ' ) )
parser . add_argument ( " --gfpgan-models-path " , type = str , help = " Path to directory with GFPGAN model file(s). " , default = os . path . join ( models_path , ' GFPGAN ' ) )
parser . add_argument ( " --esrgan-models-path " , type = str , help = " Path to directory with ESRGAN model file(s). " , default = os . path . join ( models_path , ' ESRGAN ' ) )
parser . add_argument ( " --bsrgan-models-path " , type = str , help = " Path to directory with BSRGAN model file(s). " , default = os . path . join ( models_path , ' BSRGAN ' ) )
parser . add_argument ( " --realesrgan-models-path " , type = str , help = " Path to directory with RealESRGAN model file(s). " , default = os . path . join ( models_path , ' RealESRGAN ' ) )
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parser . add_argument ( " --clip-models-path " , type = str , help = " Path to directory with CLIP model file(s). " , default = None )
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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 ( " --force-enable-xformers " , action = ' store_true ' , help = " enable xformers for cross attention layers regardless of whether the checking code thinks you can run it; do not make bug reports if this fails to work " )
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parser . add_argument ( " --xformers-flash-attention " , action = ' store_true ' , help = " enable xformers with Flash Attention to improve reproducibility (supported for SD2.x or variant only) " )
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parser . add_argument ( " --deepdanbooru " , action = ' store_true ' , help = " does not do anything " )
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parser . add_argument ( " --opt-split-attention " , action = ' store_true ' , help = " force-enables Doggettx ' s cross-attention layer optimization. By default, it ' s on for torch cuda. " )
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parser . add_argument ( " --opt-sub-quad-attention " , action = ' store_true ' , help = " enable memory efficient sub-quadratic cross-attention layer optimization " )
parser . add_argument ( " --sub-quad-q-chunk-size " , type = int , help = " query chunk size for the sub-quadratic cross-attention layer optimization to use " , default = 1024 )
parser . add_argument ( " --sub-quad-kv-chunk-size " , type = int , help = " kv chunk size for the sub-quadratic cross-attention layer optimization to use " , default = None )
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parser . add_argument ( " --sub-quad-chunk-threshold " , type = int , help = " the percentage of VRAM threshold for the sub-quadratic cross-attention layer optimization to use chunking " , default = None )
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parser . add_argument ( " --opt-split-attention-invokeai " , action = ' store_true ' , help = " force-enables InvokeAI ' s cross-attention layer optimization. By default, it ' s on when cuda is unavailable. " )
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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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parser . add_argument ( " --disable-opt-split-attention " , action = ' store_true ' , help = " force-disables cross-attention layer optimization " )
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parser . add_argument ( " --disable-nan-check " , action = ' store_true ' , help = " do not check if produced images/latent spaces have nans; useful for running without a checkpoint in CI " )
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parser . add_argument ( " --use-cpu " , nargs = ' + ' , help = " use CPU as torch device for specified modules " , default = [ ] , type = str . lower )
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parser . add_argument ( " --listen " , action = ' store_true ' , help = " launch gradio with 0.0.0.0 as server name, allowing to respond to network requests " )
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parser . add_argument ( " --port " , type = int , help = " launch gradio with given server port, you need root/admin rights for ports < 1024, defaults to 7860 if available " , default = None )
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parser . add_argument ( " --show-negative-prompt " , action = ' store_true ' , help = " does not do anything " , default = False )
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parser . add_argument ( " --ui-config-file " , type = str , help = " filename to use for ui configuration " , default = os . path . join ( data_path , ' ui-config.json ' ) )
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parser . add_argument ( " --hide-ui-dir-config " , action = ' store_true ' , help = " hide directory configuration from webui " , default = False )
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parser . add_argument ( " --freeze-settings " , action = ' store_true ' , help = " disable editing settings " , default = False )
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parser . add_argument ( " --ui-settings-file " , type = str , help = " filename to use for ui settings " , default = os . path . join ( data_path , ' config.json ' ) )
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parser . add_argument ( " --gradio-debug " , action = ' store_true ' , help = " launch gradio with --debug option " )
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parser . add_argument ( " --gradio-auth " , type = str , help = ' set gradio authentication like " username:password " ; or comma-delimit multiple like " u1:p1,u2:p2,u3:p3 " ' , default = None )
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parser . add_argument ( " --gradio-img2img-tool " , type = str , help = ' does not do anything ' )
parser . add_argument ( " --gradio-inpaint-tool " , type = str , help = " does not do anything " )
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parser . add_argument ( " --opt-channelslast " , action = ' store_true ' , help = " change memory type for stable diffusion to channels last " )
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parser . add_argument ( " --styles-file " , type = str , help = " filename to use for styles " , default = os . path . join ( data_path , ' styles.csv ' ) )
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parser . add_argument ( " --autolaunch " , action = ' store_true ' , help = " open the webui URL in the system ' s default browser upon launch " , default = False )
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parser . add_argument ( " --theme " , type = str , help = " launches the UI with light or dark theme " , default = None )
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parser . add_argument ( " --use-textbox-seed " , action = ' store_true ' , help = " use textbox for seeds in UI (no up/down, but possible to input long seeds) " , default = False )
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parser . add_argument ( " --disable-console-progressbars " , action = ' store_true ' , help = " do not output progressbars to console " , default = False )
parser . add_argument ( " --enable-console-prompts " , action = ' store_true ' , help = " print prompts to console when generating with txt2img and img2img " , default = False )
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parser . add_argument ( ' --vae-path ' , type = str , help = ' Checkpoint to use as VAE; setting this argument disables all settings related to VAE ' , default = None )
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parser . add_argument ( " --disable-safe-unpickle " , action = ' store_true ' , help = " disable checking pytorch models for malicious code " , default = False )
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parser . add_argument ( " --api " , action = ' store_true ' , help = " use api=True to launch the API together with the webui (use --nowebui instead for only the API) " )
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parser . add_argument ( " --api-auth " , type = str , help = ' Set authentication for API like " username:password " ; or comma-delimit multiple like " u1:p1,u2:p2,u3:p3 " ' , default = None )
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parser . add_argument ( " --api-log " , action = ' store_true ' , help = " use api-log=True to enable logging of all API requests " )
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parser . add_argument ( " --nowebui " , action = ' store_true ' , help = " use api=True to launch the API instead of the webui " )
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parser . add_argument ( " --ui-debug-mode " , action = ' store_true ' , help = " Don ' t load model to quickly launch UI " )
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parser . add_argument ( " --device-id " , type = str , help = " Select the default CUDA device to use (export CUDA_VISIBLE_DEVICES=0,1,etc might be needed before) " , default = None )
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parser . add_argument ( " --administrator " , action = ' store_true ' , help = " Administrator rights " , default = False )
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parser . add_argument ( " --cors-allow-origins " , type = str , help = " Allowed CORS origin(s) in the form of a comma-separated list (no spaces) " , default = None )
parser . add_argument ( " --cors-allow-origins-regex " , type = str , help = " Allowed CORS origin(s) in the form of a single regular expression " , default = None )
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parser . add_argument ( " --tls-keyfile " , type = str , help = " Partially enables TLS, requires --tls-certfile to fully function " , default = None )
parser . add_argument ( " --tls-certfile " , type = str , help = " Partially enables TLS, requires --tls-keyfile to fully function " , default = None )
parser . add_argument ( " --server-name " , type = str , help = " Sets hostname of server " , default = None )
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parser . add_argument ( " --gradio-queue " , action = ' store_true ' , help = " Uses gradio queue; experimental option; breaks restart UI button " )
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parser . add_argument ( " --skip-version-check " , action = ' store_true ' , help = " Do not check versions of torch and xformers " )
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parser . add_argument ( " --no-hashing " , action = ' store_true ' , help = " disable sha256 hashing of checkpoints to help loading performance " , default = False )
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script_loading . preload_extensions ( extensions . extensions_dir , parser )
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script_loading . preload_extensions ( extensions . extensions_builtin_dir , parser )
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cmd_opts = parser . parse_args ( )
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restricted_opts = {
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" samples_filename_pattern " ,
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" directories_filename_pattern " ,
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" outdir_samples " ,
" outdir_txt2img_samples " ,
" outdir_img2img_samples " ,
" outdir_extras_samples " ,
" outdir_grids " ,
" outdir_txt2img_grids " ,
" outdir_save " ,
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}
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ui_reorder_categories = [
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" inpaint " ,
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" sampler " ,
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" checkboxes " ,
" hires_fix " ,
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" dimensions " ,
" cfg " ,
" seed " ,
" batch " ,
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" override_settings " ,
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" scripts " ,
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]
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cmd_opts . disable_extension_access = ( cmd_opts . share or cmd_opts . listen or cmd_opts . server_name ) and not cmd_opts . enable_insecure_extension_access
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devices . device , devices . device_interrogate , devices . device_gfpgan , devices . device_esrgan , devices . device_codeformer = \
( devices . cpu if any ( y in cmd_opts . use_cpu for y in [ x , ' all ' ] ) else devices . get_optimal_device ( ) for x in [ ' sd ' , ' interrogate ' , ' gfpgan ' , ' esrgan ' , ' codeformer ' ] )
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device = devices . device
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weight_load_location = None if cmd_opts . lowram else " cpu "
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batch_cond_uncond = cmd_opts . always_batch_cond_uncond or not ( cmd_opts . lowvram or cmd_opts . medvram )
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parallel_processing_allowed = not cmd_opts . lowvram and not cmd_opts . medvram
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xformers_available = False
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config_filename = cmd_opts . ui_settings_file
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os . makedirs ( cmd_opts . hypernetwork_dir , exist_ok = True )
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hypernetworks = { }
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loaded_hypernetworks = [ ]
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def reload_hypernetworks ( ) :
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from modules . hypernetworks import hypernetwork
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global hypernetworks
hypernetworks = hypernetwork . list_hypernetworks ( cmd_opts . hypernetwork_dir )
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class State :
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skipped = False
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interrupted = False
job = " "
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job_no = 0
job_count = 0
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processing_has_refined_job_count = False
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job_timestamp = ' 0 '
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sampling_step = 0
sampling_steps = 0
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current_latent = None
current_image = None
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current_image_sampling_step = 0
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id_live_preview = 0
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textinfo = None
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time_start = None
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need_restart = False
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server_start = None
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def skip ( self ) :
self . skipped = True
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def interrupt ( self ) :
self . interrupted = True
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def nextjob ( self ) :
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if opts . live_previews_enable and opts . show_progress_every_n_steps == - 1 :
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self . do_set_current_image ( )
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self . job_no + = 1
self . sampling_step = 0
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self . current_image_sampling_step = 0
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def dict ( self ) :
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obj = {
" skipped " : self . skipped ,
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" interrupted " : self . interrupted ,
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" job " : self . job ,
" job_count " : self . job_count ,
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" job_timestamp " : self . job_timestamp ,
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" job_no " : self . job_no ,
" sampling_step " : self . sampling_step ,
" sampling_steps " : self . sampling_steps ,
}
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return obj
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def begin ( self ) :
self . sampling_step = 0
self . job_count = - 1
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self . processing_has_refined_job_count = False
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self . job_no = 0
self . job_timestamp = datetime . datetime . now ( ) . strftime ( " % Y % m %d % H % M % S " )
self . current_latent = None
self . current_image = None
self . current_image_sampling_step = 0
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self . id_live_preview = 0
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self . skipped = False
self . interrupted = False
self . textinfo = None
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self . time_start = time . time ( )
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devices . torch_gc ( )
def end ( self ) :
self . job = " "
self . job_count = 0
devices . torch_gc ( )
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def set_current_image ( self ) :
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""" sets self.current_image from self.current_latent if enough sampling steps have been made after the last call to this """
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if not parallel_processing_allowed :
return
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if self . sampling_step - self . current_image_sampling_step > = opts . show_progress_every_n_steps and opts . live_previews_enable and opts . show_progress_every_n_steps != - 1 :
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self . do_set_current_image ( )
def do_set_current_image ( self ) :
if self . current_latent is None :
return
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import modules . sd_samplers
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if opts . show_progress_grid :
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self . assign_current_image ( modules . sd_samplers . samples_to_image_grid ( self . current_latent ) )
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else :
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self . assign_current_image ( modules . sd_samplers . sample_to_image ( self . current_latent ) )
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self . current_image_sampling_step = self . sampling_step
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def assign_current_image ( self , image ) :
self . current_image = image
self . id_live_preview + = 1
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state = State ( )
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state . server_start = time . time ( )
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styles_filename = cmd_opts . styles_file
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prompt_styles = modules . styles . StyleDatabase ( styles_filename )
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interrogator = modules . interrogate . InterrogateModels ( " interrogate " )
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face_restorers = [ ]
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class OptionInfo :
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def __init__ ( self , default = None , label = " " , component = None , component_args = None , onchange = None , section = None , refresh = None ) :
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self . default = default
self . label = label
self . component = component
self . component_args = component_args
self . onchange = onchange
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self . section = section
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self . refresh = refresh
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def options_section ( section_identifier , options_dict ) :
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for k , v in options_dict . items ( ) :
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v . section = section_identifier
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return options_dict
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def list_checkpoint_tiles ( ) :
import modules . sd_models
return modules . sd_models . checkpoint_tiles ( )
def refresh_checkpoints ( ) :
import modules . sd_models
return modules . sd_models . list_models ( )
def list_samplers ( ) :
import modules . sd_samplers
return modules . sd_samplers . all_samplers
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hide_dirs = { " visible " : not cmd_opts . hide_ui_dir_config }
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options_templates = { }
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options_templates . update ( options_section ( ( ' saving-images ' , " Saving images/grids " ) , {
" samples_save " : OptionInfo ( True , " Always save all generated images " ) ,
" samples_format " : OptionInfo ( ' png ' , ' File format for images ' ) ,
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" samples_filename_pattern " : OptionInfo ( " " , " Images filename pattern " , component_args = hide_dirs ) ,
" save_images_add_number " : OptionInfo ( True , " Add number to filename when saving " , component_args = hide_dirs ) ,
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" grid_save " : OptionInfo ( True , " Always save all generated image grids " ) ,
" grid_format " : OptionInfo ( ' png ' , ' File format for grids ' ) ,
" grid_extended_filename " : OptionInfo ( False , " Add extended info (seed, prompt) to filename when saving grid " ) ,
" grid_only_if_multiple " : OptionInfo ( True , " Do not save grids consisting of one picture " ) ,
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" grid_prevent_empty_spots " : OptionInfo ( False , " Prevent empty spots in grid (when set to autodetect) " ) ,
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" n_rows " : OptionInfo ( - 1 , " Grid row count; use -1 for autodetect and 0 for it to be same as batch size " , gr . Slider , { " minimum " : - 1 , " maximum " : 16 , " step " : 1 } ) ,
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" enable_pnginfo " : OptionInfo ( True , " Save text information about generation parameters as chunks to png files " ) ,
" save_txt " : OptionInfo ( False , " Create a text file next to every image with generation parameters. " ) ,
" save_images_before_face_restoration " : OptionInfo ( False , " Save a copy of image before doing face restoration. " ) ,
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" save_images_before_highres_fix " : OptionInfo ( False , " Save a copy of image before applying highres fix. " ) ,
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" save_images_before_color_correction " : OptionInfo ( False , " Save a copy of image before applying color correction to img2img results " ) ,
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" jpeg_quality " : OptionInfo ( 80 , " Quality for saved jpeg images " , gr . Slider , { " minimum " : 1 , " maximum " : 100 , " step " : 1 } ) ,
" export_for_4chan " : OptionInfo ( True , " If PNG image is larger than 4MB or any dimension is larger than 4000, downscale and save copy as JPG " ) ,
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" use_original_name_batch " : OptionInfo ( True , " Use original name for output filename during batch process in extras tab " ) ,
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" use_upscaler_name_as_suffix " : OptionInfo ( False , " Use upscaler name as filename suffix in the extras tab " ) ,
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" save_selected_only " : OptionInfo ( True , " When using ' Save ' button, only save a single selected image " ) ,
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" do_not_add_watermark " : OptionInfo ( False , " Do not add watermark to images " ) ,
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" temp_dir " : OptionInfo ( " " , " Directory for temporary images; leave empty for default " ) ,
" clean_temp_dir_at_start " : OptionInfo ( False , " Cleanup non-default temporary directory when starting webui " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' saving-paths ' , " Paths for saving " ) , {
" outdir_samples " : OptionInfo ( " " , " Output directory for images; if empty, defaults to three directories below " , component_args = hide_dirs ) ,
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" outdir_txt2img_samples " : OptionInfo ( " outputs/txt2img-images " , ' Output directory for txt2img images ' , component_args = hide_dirs ) ,
" outdir_img2img_samples " : OptionInfo ( " outputs/img2img-images " , ' Output directory for img2img images ' , component_args = hide_dirs ) ,
" outdir_extras_samples " : OptionInfo ( " outputs/extras-images " , ' Output directory for images from extras tab ' , component_args = hide_dirs ) ,
" outdir_grids " : OptionInfo ( " " , " Output directory for grids; if empty, defaults to two directories below " , component_args = hide_dirs ) ,
" outdir_txt2img_grids " : OptionInfo ( " outputs/txt2img-grids " , ' Output directory for txt2img grids ' , component_args = hide_dirs ) ,
" outdir_img2img_grids " : OptionInfo ( " outputs/img2img-grids " , ' Output directory for img2img grids ' , component_args = hide_dirs ) ,
" outdir_save " : OptionInfo ( " log/images " , " Directory for saving images using the Save button " , component_args = hide_dirs ) ,
} ) )
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options_templates . update ( options_section ( ( ' saving-to-dirs ' , " Saving to a directory " ) , {
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" save_to_dirs " : OptionInfo ( True , " Save images to a subdirectory " ) ,
" grid_save_to_dirs " : OptionInfo ( True , " Save grids to a subdirectory " ) ,
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" use_save_to_dirs_for_ui " : OptionInfo ( False , " When using \" Save \" button, save images to a subdirectory " ) ,
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" directories_filename_pattern " : OptionInfo ( " [date] " , " Directory name pattern " , component_args = hide_dirs ) ,
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" directories_max_prompt_words " : OptionInfo ( 8 , " Max prompt words for [prompt_words] pattern " , gr . Slider , { " minimum " : 1 , " maximum " : 20 , " step " : 1 , * * hide_dirs } ) ,
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} ) )
options_templates . update ( options_section ( ( ' upscaling ' , " Upscaling " ) , {
" ESRGAN_tile " : OptionInfo ( 192 , " Tile size for ESRGAN upscalers. 0 = no tiling. " , gr . Slider , { " minimum " : 0 , " maximum " : 512 , " step " : 16 } ) ,
" ESRGAN_tile_overlap " : OptionInfo ( 8 , " Tile overlap, in pixels for ESRGAN upscalers. Low values = visible seam. " , gr . Slider , { " minimum " : 0 , " maximum " : 48 , " step " : 1 } ) ,
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" realesrgan_enabled_models " : OptionInfo ( [ " R-ESRGAN 4x+ " , " R-ESRGAN 4x+ Anime6B " ] , " Select which Real-ESRGAN models to show in the web UI. (Requires restart) " , gr . CheckboxGroup , lambda : { " choices " : shared_items . realesrgan_models_names ( ) } ) ,
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" upscaler_for_img2img " : OptionInfo ( None , " Upscaler for img2img " , gr . Dropdown , lambda : { " choices " : [ x . name for x in sd_upscalers ] } ) ,
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} ) )
options_templates . update ( options_section ( ( ' face-restoration ' , " Face restoration " ) , {
" face_restoration_model " : OptionInfo ( None , " Face restoration model " , gr . Radio , lambda : { " choices " : [ x . name ( ) for x in face_restorers ] } ) ,
" code_former_weight " : OptionInfo ( 0.5 , " CodeFormer weight parameter; 0 = maximum effect; 1 = minimum effect " , gr . Slider , { " minimum " : 0 , " maximum " : 1 , " step " : 0.01 } ) ,
" face_restoration_unload " : OptionInfo ( False , " Move face restoration model from VRAM into RAM after processing " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' system ' , " System " ) , {
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" show_warnings " : OptionInfo ( False , " Show warnings in console. " ) ,
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" memmon_poll_rate " : OptionInfo ( 8 , " VRAM usage polls per second during generation. Set to 0 to disable. " , gr . Slider , { " minimum " : 0 , " maximum " : 40 , " step " : 1 } ) ,
" samples_log_stdout " : OptionInfo ( False , " Always print all generation info to standard output " ) ,
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" multiple_tqdm " : OptionInfo ( True , " Add a second progress bar to the console that shows progress for an entire job. " ) ,
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" print_hypernet_extra " : OptionInfo ( False , " Print extra hypernetwork information to console. " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' training ' , " Training " ) , {
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" unload_models_when_training " : OptionInfo ( False , " Move VAE and CLIP to RAM when training if possible. Saves VRAM. " ) ,
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" pin_memory " : OptionInfo ( False , " Turn on pin_memory for DataLoader. Makes training slightly faster but can increase memory usage. " ) ,
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" save_optimizer_state " : OptionInfo ( False , " Saves Optimizer state as separate *.optim file. Training of embedding or HN can be resumed with the matching optim file. " ) ,
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" save_training_settings_to_txt " : OptionInfo ( True , " Save textual inversion and hypernet settings to a text file whenever training starts. " ) ,
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" dataset_filename_word_regex " : OptionInfo ( " " , " Filename word regex " ) ,
" dataset_filename_join_string " : OptionInfo ( " " , " Filename join string " ) ,
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" training_image_repeats_per_epoch " : OptionInfo ( 1 , " Number of repeats for a single input image per epoch; used only for displaying epoch number " , gr . Number , { " precision " : 0 } ) ,
" training_write_csv_every " : OptionInfo ( 500 , " Save an csv containing the loss to log directory every N steps, 0 to disable " ) ,
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" training_xattention_optimizations " : OptionInfo ( False , " Use cross attention optimizations while training " ) ,
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" training_enable_tensorboard " : OptionInfo ( False , " Enable tensorboard logging. " ) ,
" training_tensorboard_save_images " : OptionInfo ( False , " Save generated images within tensorboard. " ) ,
" training_tensorboard_flush_every " : OptionInfo ( 120 , " How often, in seconds, to flush the pending tensorboard events and summaries to disk. " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' sd ' , " Stable Diffusion " ) , {
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" sd_model_checkpoint " : OptionInfo ( None , " Stable Diffusion checkpoint " , gr . Dropdown , lambda : { " choices " : list_checkpoint_tiles ( ) } , refresh = refresh_checkpoints ) ,
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" sd_checkpoint_cache " : OptionInfo ( 0 , " Checkpoints to cache in RAM " , gr . Slider , { " minimum " : 0 , " maximum " : 10 , " step " : 1 } ) ,
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" sd_vae_checkpoint_cache " : OptionInfo ( 0 , " VAE Checkpoints to cache in RAM " , gr . Slider , { " minimum " : 0 , " maximum " : 10 , " step " : 1 } ) ,
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" sd_vae " : OptionInfo ( " Automatic " , " SD VAE " , gr . Dropdown , lambda : { " choices " : shared_items . sd_vae_items ( ) } , refresh = shared_items . refresh_vae_list ) ,
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" sd_vae_as_default " : OptionInfo ( True , " Ignore selected VAE for stable diffusion checkpoints that have their own .vae.pt next to them " ) ,
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" inpainting_mask_weight " : OptionInfo ( 1.0 , " Inpainting conditioning mask strength " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
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" initial_noise_multiplier " : OptionInfo ( 1.0 , " Noise multiplier for img2img " , gr . Slider , { " minimum " : 0.5 , " maximum " : 1.5 , " step " : 0.01 } ) ,
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" img2img_color_correction " : OptionInfo ( False , " Apply color correction to img2img results to match original colors. " ) ,
" img2img_fix_steps " : OptionInfo ( False , " With img2img, do exactly the amount of steps the slider specifies (normally you ' d do less with less denoising). " ) ,
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" img2img_background_color " : OptionInfo ( " #ffffff " , " With img2img, fill image ' s transparent parts with this color. " , ui_components . FormColorPicker , { } ) ,
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" enable_quantization " : OptionInfo ( False , " Enable quantization in K samplers for sharper and cleaner results. This may change existing seeds. Requires restart to apply. " ) ,
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" enable_emphasis " : OptionInfo ( True , " Emphasis: use (text) to make model pay more attention to text and [text] to make it pay less attention " ) ,
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" enable_batch_seeds " : OptionInfo ( True , " Make K-diffusion samplers produce same images in a batch as when making a single image " ) ,
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" comma_padding_backtrack " : OptionInfo ( 20 , " Increase coherency by padding from the last comma within n tokens when using more than 75 tokens " , gr . Slider , { " minimum " : 0 , " maximum " : 74 , " step " : 1 } ) ,
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" CLIP_stop_at_last_layers " : OptionInfo ( 1 , " Clip skip " , gr . Slider , { " minimum " : 1 , " maximum " : 12 , " step " : 1 } ) ,
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" upcast_attn " : OptionInfo ( False , " Upcast cross attention layer to float32 " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' compatibility ' , " Compatibility " ) , {
" use_old_emphasis_implementation " : OptionInfo ( False , " Use old emphasis implementation. Can be useful to reproduce old seeds. " ) ,
" use_old_karras_scheduler_sigmas " : OptionInfo ( False , " Use old karras scheduler sigmas (0.1 to 10). " ) ,
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" use_old_hires_fix_width_height " : OptionInfo ( False , " For hires fix, use width/height sliders to set final resolution rather than first pass (disables Upscale by, Resize width/height to). " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' interrogate ' , " Interrogate Options " ) , {
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" interrogate_keep_models_in_memory " : OptionInfo ( False , " Interrogate: keep models in VRAM " ) ,
Interrogate: add option to include ranks in output
Since the UI also allows users to specify ranks, it can be useful to show people what ranks are being returned by interrogate
This can also give much better results when feeding the interrogate results back into either img2img or txt2img, especially when trying to generate a specific character or scene for which you have a similar concept image
Testing Steps:
Launch Webui with command line arg: --deepdanbooru
Navigate to img2img tab, use interrogate DeepBooru, verify tags appears as before. Use "Interrogate CLIP", verify prompt appears as before
Navigate to Settings tab, enable new option, click "apply settings"
Navigate to img2img, Interrogate DeepBooru again, verify that weights appear and are properly formatted. Note that "Interrogate CLIP" prompt is still unchanged
In my testing, this change has no effect to "Interrogate CLIP", as it seems to generate a sentence-structured caption, and not a set of tags.
(reproduce changes from https://github.com/AUTOMATIC1111/stable-diffusion-webui/pull/2149/commits/6ed4faac46c45ca7353f228aca9b436bbaba7bc7)
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" interrogate_return_ranks " : OptionInfo ( False , " Interrogate: include ranks of model tags matches in results (Has no effect on caption-based interrogators). " ) ,
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" interrogate_clip_num_beams " : OptionInfo ( 1 , " Interrogate: num_beams for BLIP " , gr . Slider , { " minimum " : 1 , " maximum " : 16 , " step " : 1 } ) ,
" interrogate_clip_min_length " : OptionInfo ( 24 , " Interrogate: minimum description length (excluding artists, etc..) " , gr . Slider , { " minimum " : 1 , " maximum " : 128 , " step " : 1 } ) ,
" interrogate_clip_max_length " : OptionInfo ( 48 , " Interrogate: maximum description length " , gr . Slider , { " minimum " : 1 , " maximum " : 256 , " step " : 1 } ) ,
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" interrogate_clip_dict_limit " : OptionInfo ( 1500 , " CLIP: maximum number of lines in text file (0 = No limit) " ) ,
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" interrogate_clip_skip_categories " : OptionInfo ( [ ] , " CLIP: skip inquire categories " , gr . CheckboxGroup , lambda : { " choices " : modules . interrogate . category_types ( ) } , refresh = modules . interrogate . category_types ) ,
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" interrogate_deepbooru_score_threshold " : OptionInfo ( 0.5 , " Interrogate: deepbooru score threshold " , gr . Slider , { " minimum " : 0 , " maximum " : 1 , " step " : 0.01 } ) ,
" deepbooru_sort_alpha " : OptionInfo ( True , " Interrogate: deepbooru sort alphabetically " ) ,
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" deepbooru_use_spaces " : OptionInfo ( False , " use spaces for tags in deepbooru " ) ,
" deepbooru_escape " : OptionInfo ( True , " escape ( \\ ) brackets in deepbooru (so they are used as literal brackets and not for emphasis) " ) ,
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" deepbooru_filter_tags " : OptionInfo ( " " , " filter out those tags from deepbooru output (separated by comma) " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' extra_networks ' , " Extra Networks " ) , {
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" extra_networks_default_view " : OptionInfo ( " cards " , " Default view for Extra Networks " , gr . Dropdown , { " choices " : [ " cards " , " thumbs " ] } ) ,
" extra_networks_default_multiplier " : OptionInfo ( 1.0 , " Multiplier for extra networks " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
" sd_hypernetwork " : OptionInfo ( " None " , " Add hypernetwork to prompt " , gr . Dropdown , lambda : { " choices " : [ " " ] + [ x for x in hypernetworks . keys ( ) ] } , refresh = reload_hypernetworks ) ,
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} ) )
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options_templates . update ( options_section ( ( ' ui ' , " User interface " ) , {
" return_grid " : OptionInfo ( True , " Show grid in results for web " ) ,
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" do_not_show_images " : OptionInfo ( False , " Do not show any images in results for web " ) ,
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" add_model_hash_to_info " : OptionInfo ( True , " Add model hash to generation information " ) ,
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" add_model_name_to_info " : OptionInfo ( True , " Add model name to generation information " ) ,
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" disable_weights_auto_swap " : OptionInfo ( True , " When reading generation parameters from text into UI (from PNG info or pasted text), do not change the selected model/checkpoint. " ) ,
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" send_seed " : OptionInfo ( True , " Send seed when sending prompt or image to other interface " ) ,
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" send_size " : OptionInfo ( True , " Send size when sending prompt or image to another interface " ) ,
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" font " : OptionInfo ( " " , " Font for image grids that have text " ) ,
" js_modal_lightbox " : OptionInfo ( True , " Enable full page image viewer " ) ,
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" js_modal_lightbox_initially_zoomed " : OptionInfo ( True , " Show images zoomed in by default in full page image viewer " ) ,
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" show_progress_in_title " : OptionInfo ( True , " Show generation progress in window title. " ) ,
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" samplers_in_dropdown " : OptionInfo ( True , " Use dropdown for sampler selection instead of radio group " ) ,
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" dimensions_and_batch_together " : OptionInfo ( True , " Show Width/Height and Batch sliders in same row " ) ,
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" keyedit_precision_attention " : OptionInfo ( 0.1 , " Ctrl+up/down precision when editing (attention:1.1) " , gr . Slider , { " minimum " : 0.01 , " maximum " : 0.2 , " step " : 0.001 } ) ,
" keyedit_precision_extra " : OptionInfo ( 0.05 , " Ctrl+up/down precision when editing <extra networks:0.9> " , gr . Slider , { " minimum " : 0.01 , " maximum " : 0.2 , " step " : 0.001 } ) ,
" quicksettings " : OptionInfo ( " sd_model_checkpoint " , " Quicksettings list " ) ,
" ui_reorder " : OptionInfo ( " , " . join ( ui_reorder_categories ) , " txt2img/img2img UI item order " ) ,
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" ui_extra_networks_tab_reorder " : OptionInfo ( " " , " Extra networks tab order " ) ,
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" localization " : OptionInfo ( " None " , " Localization (requires restart) " , gr . Dropdown , lambda : { " choices " : [ " None " ] + list ( localization . localizations . keys ( ) ) } , refresh = lambda : localization . list_localizations ( cmd_opts . localizations_dir ) ) ,
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} ) )
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options_templates . update ( options_section ( ( ' ui ' , " Live previews " ) , {
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" show_progressbar " : OptionInfo ( True , " Show progressbar " ) ,
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" live_previews_enable " : OptionInfo ( True , " Show live previews of the created image " ) ,
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" show_progress_grid " : OptionInfo ( True , " Show previews of all images generated in a batch as a grid " ) ,
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" show_progress_every_n_steps " : OptionInfo ( 10 , " Show new live preview image every N sampling steps. Set to -1 to show after completion of batch. " , gr . Slider , { " minimum " : - 1 , " maximum " : 32 , " step " : 1 } ) ,
" show_progress_type " : OptionInfo ( " Approx NN " , " Image creation progress preview mode " , gr . Radio , { " choices " : [ " Full " , " Approx NN " , " Approx cheap " ] } ) ,
" live_preview_content " : OptionInfo ( " Prompt " , " Live preview subject " , gr . Radio , { " choices " : [ " Combined " , " Prompt " , " Negative prompt " ] } ) ,
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" live_preview_refresh_period " : OptionInfo ( 1000 , " Progressbar/preview update period, in milliseconds " )
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} ) )
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options_templates . update ( options_section ( ( ' sampler-params ' , " Sampler parameters " ) , {
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" hide_samplers " : OptionInfo ( [ ] , " Hide samplers in user interface (requires restart) " , gr . CheckboxGroup , lambda : { " choices " : [ x . name for x in list_samplers ( ) ] } ) ,
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" eta_ddim " : OptionInfo ( 0.0 , " eta (noise multiplier) for DDIM " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
" eta_ancestral " : OptionInfo ( 1.0 , " eta (noise multiplier) for ancestral samplers " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
" ddim_discretize " : OptionInfo ( ' uniform ' , " img2img DDIM discretize " , gr . Radio , { " choices " : [ ' uniform ' , ' quad ' ] } ) ,
' s_churn ' : OptionInfo ( 0.0 , " sigma churn " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
' s_tmin ' : OptionInfo ( 0.0 , " sigma tmin " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
' s_noise ' : OptionInfo ( 1.0 , " sigma noise " , gr . Slider , { " minimum " : 0.0 , " maximum " : 1.0 , " step " : 0.01 } ) ,
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' eta_noise_seed_delta ' : OptionInfo ( 0 , " Eta noise seed delta " , gr . Number , { " precision " : 0 } ) ,
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' always_discard_next_to_last_sigma ' : OptionInfo ( False , " Always discard next-to-last sigma " ) ,
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' uni_pc_variant ' : OptionInfo ( " bh1 " , " UniPC variant " , gr . Radio , { " choices " : [ " bh1 " , " vary_coeff " ] } ) ,
' uni_pc_skip_type ' : OptionInfo ( " time_uniform " , " UniPC skip type " , gr . Radio , { " choices " : [ " time_uniform " , " time_quadratic " , " logSNR " ] } ) ,
' uni_pc_order ' : OptionInfo ( 3 , " UniPC order (must be < sampling steps) " , gr . Slider , { " minimum " : 1 , " maximum " : 150 - 1 , " step " : 1 } ) ,
' uni_pc_thresholding ' : OptionInfo ( False , " UniPC thresholding " ) ,
' uni_pc_lower_order_final ' : OptionInfo ( True , " UniPC lower order final " ) ,
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} ) )
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options_templates . update ( options_section ( ( ' postprocessing ' , " Postprocessing " ) , {
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' postprocessing_enable_in_main_ui ' : OptionInfo ( [ ] , " Enable postprocessing operations in txt2img and img2img tabs " , ui_components . DropdownMulti , lambda : { " choices " : [ x . name for x in shared_items . postprocessing_scripts ( ) ] } ) ,
' postprocessing_operation_order ' : OptionInfo ( [ ] , " Postprocessing operation order " , ui_components . DropdownMulti , lambda : { " choices " : [ x . name for x in shared_items . postprocessing_scripts ( ) ] } ) ,
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' upscaling_max_images_in_cache ' : OptionInfo ( 5 , " Maximum number of images in upscaling cache " , gr . Slider , { " minimum " : 0 , " maximum " : 10 , " step " : 1 } ) ,
} ) )
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options_templates . update ( options_section ( ( None , " Hidden options " ) , {
" disabled_extensions " : OptionInfo ( [ ] , " Disable those extensions " ) ,
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" sd_checkpoint_hash " : OptionInfo ( " " , " SHA256 hash of the current checkpoint " ) ,
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} ) )
options_templates . update ( )
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class Options :
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data = None
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data_labels = options_templates
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typemap = { int : float }
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def __init__ ( self ) :
self . data = { k : v . default for k , v in self . data_labels . items ( ) }
def __setattr__ ( self , key , value ) :
if self . data is not None :
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if key in self . data or key in self . data_labels :
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assert not cmd_opts . freeze_settings , " changing settings is disabled "
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info = opts . data_labels . get ( key , None )
comp_args = info . component_args if info else None
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if isinstance ( comp_args , dict ) and comp_args . get ( ' visible ' , True ) is False :
raise RuntimeError ( f " not possible to set { key } because it is restricted " )
if cmd_opts . hide_ui_dir_config and key in restricted_opts :
raise RuntimeError ( f " not possible to set { key } because it is restricted " )
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self . data [ key ] = value
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return
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return super ( Options , self ) . __setattr__ ( key , value )
def __getattr__ ( self , item ) :
if self . data is not None :
if item in self . data :
return self . data [ item ]
if item in self . data_labels :
return self . data_labels [ item ] . default
return super ( Options , self ) . __getattribute__ ( item )
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def set ( self , key , value ) :
""" sets an option and calls its onchange callback, returning True if the option changed and False otherwise """
oldval = self . data . get ( key , None )
if oldval == value :
return False
try :
setattr ( self , key , value )
except RuntimeError :
return False
if self . data_labels [ key ] . onchange is not None :
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try :
self . data_labels [ key ] . onchange ( )
except Exception as e :
errors . display ( e , f " changing setting { key } to { value } " )
setattr ( self , key , oldval )
return False
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return True
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def save ( self , filename ) :
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assert not cmd_opts . freeze_settings , " saving settings is disabled "
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with open ( filename , " w " , encoding = " utf8 " ) as file :
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json . dump ( self . data , file , indent = 4 )
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def same_type ( self , x , y ) :
if x is None or y is None :
return True
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type_x = self . typemap . get ( type ( x ) , type ( x ) )
type_y = self . typemap . get ( type ( y ) , type ( y ) )
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return type_x == type_y
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def load ( self , filename ) :
with open ( filename , " r " , encoding = " utf8 " ) as file :
self . data = json . load ( file )
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bad_settings = 0
for k , v in self . data . items ( ) :
info = self . data_labels . get ( k , None )
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if info is not None and not self . same_type ( info . default , v ) :
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print ( f " Warning: bad setting value: { k } : { v } ( { type ( v ) . __name__ } ; expected { type ( info . default ) . __name__ } ) " , file = sys . stderr )
bad_settings + = 1
if bad_settings > 0 :
print ( f " The program is likely to not work with bad settings. \n Settings file: { filename } \n Either fix the file, or delete it and restart. " , file = sys . stderr )
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def onchange ( self , key , func , call = True ) :
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item = self . data_labels . get ( key )
item . onchange = func
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if call :
func ( )
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def dumpjson ( self ) :
d = { k : self . data . get ( k , self . data_labels . get ( k ) . default ) for k in self . data_labels . keys ( ) }
return json . dumps ( d )
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def add_option ( self , key , info ) :
self . data_labels [ key ] = info
def reorder ( self ) :
""" reorder settings so that all items related to section always go together """
section_ids = { }
settings_items = self . data_labels . items ( )
for k , item in settings_items :
if item . section not in section_ids :
section_ids [ item . section ] = len ( section_ids )
self . data_labels = { k : v for k , v in sorted ( settings_items , key = lambda x : section_ids [ x [ 1 ] . section ] ) }
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def cast_value ( self , key , value ) :
""" casts an arbitrary to the same type as this setting ' s value with key
Example : cast_value ( " eta_noise_seed_delta " , " 12 " ) - > returns 12 ( an int rather than str )
"""
if value is None :
return None
default_value = self . data_labels [ key ] . default
if default_value is None :
default_value = getattr ( self , key , None )
if default_value is None :
return None
expected_type = type ( default_value )
if expected_type == bool and value == " False " :
value = False
else :
value = expected_type ( value )
return value
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opts = Options ( )
if os . path . exists ( config_filename ) :
opts . load ( config_filename )
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settings_components = None
""" assinged from ui.py, a mapping on setting anmes to gradio components repsponsible for those settings """
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latent_upscale_default_mode = " Latent "
latent_upscale_modes = {
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" Latent " : { " mode " : " bilinear " , " antialias " : False } ,
" Latent (antialiased) " : { " mode " : " bilinear " , " antialias " : True } ,
" Latent (bicubic) " : { " mode " : " bicubic " , " antialias " : False } ,
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" Latent (bicubic antialiased) " : { " mode " : " bicubic " , " antialias " : True } ,
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" Latent (nearest) " : { " mode " : " nearest " , " antialias " : False } ,
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" Latent (nearest-exact) " : { " mode " : " nearest-exact " , " antialias " : False } ,
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}
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sd_upscalers = [ ]
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sd_model = None
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clip_model = None
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progress_print_out = sys . stdout
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class TotalTQDM :
def __init__ ( self ) :
self . _tqdm = None
def reset ( self ) :
self . _tqdm = tqdm . tqdm (
desc = " Total progress " ,
total = state . job_count * state . sampling_steps ,
position = 1 ,
file = progress_print_out
)
def update ( self ) :
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if not opts . multiple_tqdm or cmd_opts . disable_console_progressbars :
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return
if self . _tqdm is None :
self . reset ( )
self . _tqdm . update ( )
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def updateTotal ( self , new_total ) :
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if not opts . multiple_tqdm or cmd_opts . disable_console_progressbars :
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return
if self . _tqdm is None :
self . reset ( )
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self . _tqdm . total = new_total
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def clear ( self ) :
if self . _tqdm is not None :
self . _tqdm . close ( )
self . _tqdm = None
total_tqdm = TotalTQDM ( )
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mem_mon = modules . memmon . MemUsageMonitor ( " MemMon " , device , opts )
mem_mon . start ( )
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def listfiles ( dirname ) :
filenames = [ os . path . join ( dirname , x ) for x in sorted ( os . listdir ( dirname ) ) if not x . startswith ( " . " ) ]
return [ file for file in filenames if os . path . isfile ( file ) ]
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def html_path ( filename ) :
return os . path . join ( script_path , " html " , filename )
def html ( filename ) :
path = html_path ( filename )
if os . path . exists ( path ) :
with open ( path , encoding = " utf8 " ) as file :
return file . read ( )
return " "