Merge remote-tracking branch 'origin/master'
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commit
8a32a71ca3
3 changed files with 15 additions and 8 deletions
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@ -70,17 +70,28 @@ titles = {
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"Create style": "Save current prompts as a style. If you add the token {prompt} to the text, the style use that as placeholder for your prompt when you use the style in the future.",
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"Checkpoint name": "Loads weights from checkpoint before making images. You can either use hash or a part of filename (as seen in settings) for checkpoint name. Recommended to use with Y axis for less switching.",
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"vram": "Torch active: Peak amount of VRAM used by Torch during generation, excluding cached data.\nTorch reserved: Peak amount of VRAM allocated by Torch, including all active and cached data.\nSys VRAM: Peak amount of VRAM allocation across all applications / total GPU VRAM (peak utilization%).",
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}
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onUiUpdate(function(){
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gradioApp().querySelectorAll('span, button, select').forEach(function(span){
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gradioApp().querySelectorAll('span, button, select, p').forEach(function(span){
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tooltip = titles[span.textContent];
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if(!tooltip){
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tooltip = titles[span.value];
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}
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if(!tooltip){
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for (const c of span.classList) {
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if (c in titles) {
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tooltip = titles[c];
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break;
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}
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}
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}
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if(tooltip){
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span.title = tooltip;
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}
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@ -4,7 +4,6 @@ import json
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import os
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import gradio as gr
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import torch
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import tqdm
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import modules.artists
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@ -38,7 +37,7 @@ parser.add_argument("--share", action='store_true', help="use share=True for gra
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parser.add_argument("--esrgan-models-path", type=str, help="path to directory with ESRGAN models", default=os.path.join(script_path, 'ESRGAN'))
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parser.add_argument("--opt-split-attention", action='store_true', help="does not do anything")
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parser.add_argument("--disable-opt-split-attention", action='store_true', help="disable an optimization that reduces vram usage by a lot")
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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 consaumes all the VRAM it can find")
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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("--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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@ -135,7 +134,7 @@ class Options:
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"enable_pnginfo": OptionInfo(True, "Save text information about generation parameters as chunks to png files"),
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"add_model_hash_to_info": OptionInfo(False, "Add model hash to generation information"),
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"img2img_color_correction": OptionInfo(False, "Apply color correction to img2img results to match original colors."),
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"img2img_fix_steps": OptionInfo(False, "With img2img, do exactly the amount of steps the slider specifies (normaly you'd do less with less denoising)."),
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"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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"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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"font": OptionInfo("", "Font for image grids that have text"),
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"enable_emphasis": OptionInfo(True, "Use (text) to make model pay more attention to text and [text] to make it pay less attention"),
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@ -151,11 +151,8 @@ def wrap_gradio_call(func):
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sys_peak = mem_stats['system_peak']
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sys_total = mem_stats['total']
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sys_pct = round(sys_peak/max(sys_total, 1) * 100, 2)
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vram_tooltip = "Torch active: Peak amount of VRAM used by Torch during generation, excluding cached data.
" \
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"Torch reserved: Peak amount of VRAM allocated by Torch, including all active and cached data.
" \
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"Sys VRAM: Peak amount of VRAM allocation across all applications / total GPU VRAM (peak utilization%)."
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vram_html = f"<p class='vram' title='{vram_tooltip}'>Torch active/reserved: {active_peak}/{reserved_peak} MiB, <wbr>Sys VRAM: {sys_peak}/{sys_total} MiB ({sys_pct}%)</p>"
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vram_html = f"<p class='vram'>Torch active/reserved: {active_peak}/{reserved_peak} MiB, <wbr>Sys VRAM: {sys_peak}/{sys_total} MiB ({sys_pct}%)</p>"
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else:
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vram_html = ''
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