Merge pull request #9256 from papuSpartan/tomesd
Integrate optional speed and memory improvements by token merging (via dbolya/tomesd)
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7f6ef764b9
@ -308,8 +308,10 @@ infotext_to_setting_name_mapping = [
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('UniPC skip type', 'uni_pc_skip_type'),
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('UniPC order', 'uni_pc_order'),
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('UniPC lower order final', 'uni_pc_lower_order_final'),
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('Token merging ratio', 'token_merging_ratio'),
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('Token merging ratio hr', 'token_merging_ratio_hr'),
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('RNG', 'randn_source'),
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('NGMS', 's_min_uncond'),
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('NGMS', 's_min_uncond')
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]
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@ -29,6 +29,13 @@ from ldm.models.diffusion.ddpm import LatentDepth2ImageDiffusion
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from einops import repeat, rearrange
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from blendmodes.blend import blendLayers, BlendType
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import tomesd
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# add a logger for the processing module
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logger = logging.getLogger(__name__)
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# manually set output level here since there is no option to do so yet through launch options
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# logging.basicConfig(level=logging.DEBUG, format='%(asctime)s %(levelname)s %(name)s %(message)s')
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# some of those options should not be changed at all because they would break the model, so I removed them from options.
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opt_C = 4
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@ -471,6 +478,7 @@ def create_infotext(p, all_prompts, all_seeds, all_subseeds, comments=None, iter
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index = position_in_batch + iteration * p.batch_size
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clip_skip = getattr(p, 'clip_skip', opts.CLIP_stop_at_last_layers)
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enable_hr = getattr(p, 'enable_hr', False)
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generation_params = {
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"Steps": p.steps,
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@ -489,6 +497,8 @@ def create_infotext(p, all_prompts, all_seeds, all_subseeds, comments=None, iter
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"Conditional mask weight": getattr(p, "inpainting_mask_weight", shared.opts.inpainting_mask_weight) if p.is_using_inpainting_conditioning else None,
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"Clip skip": None if clip_skip <= 1 else clip_skip,
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"ENSD": None if opts.eta_noise_seed_delta == 0 else opts.eta_noise_seed_delta,
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"Token merging ratio": None if opts.token_merging_ratio == 0 else opts.token_merging_ratio,
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"Token merging ratio hr": None if not enable_hr or opts.token_merging_ratio_hr == 0 else opts.token_merging_ratio_hr,
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"Init image hash": getattr(p, 'init_img_hash', None),
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"RNG": opts.randn_source if opts.randn_source != "GPU" else None,
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"NGMS": None if p.s_min_uncond == 0 else p.s_min_uncond,
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@ -522,9 +532,18 @@ def process_images(p: StableDiffusionProcessing) -> Processed:
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if k == 'sd_vae':
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sd_vae.reload_vae_weights()
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if opts.token_merging_ratio > 0:
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sd_models.apply_token_merging(sd_model=p.sd_model, hr=False)
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logger.debug(f"Token merging applied to first pass. Ratio: '{opts.token_merging_ratio}'")
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res = process_images_inner(p)
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finally:
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# undo model optimizations made by tomesd
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if opts.token_merging_ratio > 0:
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tomesd.remove_patch(p.sd_model)
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logger.debug('Token merging model optimizations removed')
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# restore opts to original state
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if p.override_settings_restore_afterwards:
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for k, v in stored_opts.items():
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@ -977,8 +996,22 @@ class StableDiffusionProcessingTxt2Img(StableDiffusionProcessing):
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x = None
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devices.torch_gc()
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# apply token merging optimizations from tomesd for high-res pass
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if opts.token_merging_ratio_hr > 0:
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# in case the user has used separate merge ratios
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if opts.token_merging_ratio > 0:
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tomesd.remove_patch(self.sd_model)
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logger.debug('Adjusting token merging ratio for high-res pass')
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sd_models.apply_token_merging(sd_model=self.sd_model, hr=True)
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logger.debug(f"Applied token merging for high-res pass. Ratio: '{opts.token_merging_ratio_hr}'")
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samples = self.sampler.sample_img2img(self, samples, noise, conditioning, unconditional_conditioning, steps=self.hr_second_pass_steps or self.steps, image_conditioning=image_conditioning)
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if opts.token_merging_ratio_hr > 0 or opts.token_merging_ratio > 0:
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tomesd.remove_patch(self.sd_model)
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logger.debug('Removed token merging optimizations from model')
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self.is_hr_pass = False
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return samples
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@ -17,6 +17,7 @@ from ldm.util import instantiate_from_config
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from modules import paths, shared, modelloader, devices, script_callbacks, sd_vae, sd_disable_initialization, errors, hashes, sd_models_config
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from modules.sd_hijack_inpainting import do_inpainting_hijack
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from modules.timer import Timer
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import tomesd
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model_dir = "Stable-diffusion"
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model_path = os.path.abspath(os.path.join(paths.models_path, model_dir))
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@ -578,3 +579,25 @@ def unload_model_weights(sd_model=None, info=None):
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print(f"Unloaded weights {timer.summary()}.")
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return sd_model
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def apply_token_merging(sd_model, hr: bool):
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"""
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Applies speed and memory optimizations from tomesd.
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Args:
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hr (bool): True if called in the context of a high-res pass
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"""
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ratio = shared.opts.token_merging_ratio
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if hr:
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ratio = shared.opts.token_merging_ratio_hr
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tomesd.apply_patch(
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sd_model,
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ratio=ratio,
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use_rand=False, # can cause issues with some samplers
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merge_attn=True,
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merge_crossattn=False,
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merge_mlp=False
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)
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@ -350,6 +350,8 @@ options_templates.update(options_section(('sd', "Stable Diffusion"), {
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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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"randn_source": OptionInfo("GPU", "Random number generator source. Changes seeds drastically. Use CPU to produce the same picture across different vidocard vendors.", gr.Radio, {"choices": ["GPU", "CPU"]}),
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"token_merging_ratio_hr": OptionInfo(0, "Merging Ratio (high-res pass)", gr.Slider, {"minimum": 0, "maximum": 0.9, "step": 0.1}),
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"token_merging_ratio": OptionInfo(0, "Merging Ratio", gr.Slider, {"minimum": 0, "maximum": 0.9, "step": 0.1})
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}))
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options_templates.update(options_section(('compatibility', "Compatibility"), {
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@ -458,6 +460,7 @@ options_templates.update(options_section((None, "Hidden options"), {
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"sd_checkpoint_hash": OptionInfo("", "SHA256 hash of the current checkpoint"),
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}))
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options_templates.update()
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@ -26,3 +26,4 @@ torchsde==0.2.5
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safetensors==0.3.1
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httpcore<=0.15
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fastapi==0.94.0
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tomesd>=0.1.2
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