suppress ENSD infotext for samplers that don't use it
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@ -13,7 +13,7 @@ from skimage import exposure
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from typing import Any, Dict, List
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import modules.sd_hijack
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from modules import devices, prompt_parser, masking, sd_samplers, lowvram, generation_parameters_copypaste, extra_networks, sd_vae_approx, scripts
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from modules import devices, prompt_parser, masking, sd_samplers, lowvram, generation_parameters_copypaste, extra_networks, sd_vae_approx, scripts, sd_samplers_common
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from modules.sd_hijack import model_hijack
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from modules.shared import opts, cmd_opts, state
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import modules.shared as shared
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@ -480,6 +480,10 @@ def create_infotext(p, all_prompts, all_seeds, all_subseeds, comments=None, iter
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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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uses_ensd = opts.eta_noise_seed_delta != 0
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if uses_ensd:
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uses_ensd = sd_samplers_common.is_sampler_using_eta_noise_seed_delta(p)
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generation_params = {
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"Steps": p.steps,
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"Sampler": p.sampler_name,
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@ -496,17 +500,16 @@ def create_infotext(p, all_prompts, all_seeds, all_subseeds, comments=None, iter
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"Denoising strength": getattr(p, 'denoising_strength', None),
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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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"ENSD": opts.eta_noise_seed_delta if uses_ensd else None,
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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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**p.extra_generation_params,
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"Version": program_version() if opts.add_version_to_infotext else None,
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}
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generation_params.update(p.extra_generation_params)
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generation_params_text = ", ".join([k if k == v else f'{k}: {generation_parameters_copypaste.quote(v)}' for k, v in generation_params.items() if v is not None])
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negative_prompt_text = f"\nNegative prompt: {p.all_negative_prompts[index]}" if p.all_negative_prompts[index] else ""
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@ -14,12 +14,18 @@ samplers_for_img2img = []
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samplers_map = {}
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def create_sampler(name, model):
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def find_sampler_config(name):
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if name is not None:
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config = all_samplers_map.get(name, None)
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else:
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config = all_samplers[0]
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return config
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def create_sampler(name, model):
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config = find_sampler_config(name)
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assert config is not None, f'bad sampler name: {name}'
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sampler = config.constructor(model)
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@ -2,7 +2,7 @@ from collections import namedtuple
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import numpy as np
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import torch
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from PIL import Image
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from modules import devices, processing, images, sd_vae_approx
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from modules import devices, processing, images, sd_vae_approx, sd_samplers
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from modules.shared import opts, state
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import modules.shared as shared
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@ -58,6 +58,25 @@ def store_latent(decoded):
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shared.state.assign_current_image(sample_to_image(decoded))
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def is_sampler_using_eta_noise_seed_delta(p):
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"""returns whether sampler from config will use eta noise seed delta for image creation"""
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sampler_config = sd_samplers.find_sampler_config(p.sampler_name)
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eta = p.eta
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if eta is None and p.sampler is not None:
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eta = p.sampler.eta
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if eta is None and sampler_config is not None:
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eta = 0 if sampler_config.options.get("default_eta_is_0", False) else 1.0
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if eta == 0:
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return False
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return sampler_config.options.get("uses_ensd", False)
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class InterruptedException(BaseException):
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pass
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@ -11,7 +11,7 @@ import modules.models.diffusion.uni_pc
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samplers_data_compvis = [
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sd_samplers_common.SamplerData('DDIM', lambda model: VanillaStableDiffusionSampler(ldm.models.diffusion.ddim.DDIMSampler, model), [], {}),
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sd_samplers_common.SamplerData('DDIM', lambda model: VanillaStableDiffusionSampler(ldm.models.diffusion.ddim.DDIMSampler, model), [], {"default_eta_is_0": True, "uses_ensd": True}),
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sd_samplers_common.SamplerData('PLMS', lambda model: VanillaStableDiffusionSampler(ldm.models.diffusion.plms.PLMSSampler, model), [], {}),
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sd_samplers_common.SamplerData('UniPC', lambda model: VanillaStableDiffusionSampler(modules.models.diffusion.uni_pc.UniPCSampler, model), [], {}),
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]
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@ -134,7 +134,11 @@ class VanillaStableDiffusionSampler:
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self.update_step(x)
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def initialize(self, p):
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self.eta = p.eta if p.eta is not None else shared.opts.eta_ddim
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if self.is_ddim:
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self.eta = p.eta if p.eta is not None else shared.opts.eta_ddim
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else:
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self.eta = 0.0
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if self.eta != 0.0:
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p.extra_generation_params["Eta DDIM"] = self.eta
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@ -11,21 +11,21 @@ from modules.script_callbacks import CFGDenoisedParams, cfg_denoised_callback
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from modules.script_callbacks import AfterCFGCallbackParams, cfg_after_cfg_callback
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samplers_k_diffusion = [
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('Euler a', 'sample_euler_ancestral', ['k_euler_a', 'k_euler_ancestral'], {}),
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('Euler a', 'sample_euler_ancestral', ['k_euler_a', 'k_euler_ancestral'], {"uses_ensd": True}),
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('Euler', 'sample_euler', ['k_euler'], {}),
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('LMS', 'sample_lms', ['k_lms'], {}),
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('Heun', 'sample_heun', ['k_heun'], {}),
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('DPM2', 'sample_dpm_2', ['k_dpm_2'], {'discard_next_to_last_sigma': True}),
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('DPM2 a', 'sample_dpm_2_ancestral', ['k_dpm_2_a'], {'discard_next_to_last_sigma': True}),
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('DPM++ 2S a', 'sample_dpmpp_2s_ancestral', ['k_dpmpp_2s_a'], {}),
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('DPM2 a', 'sample_dpm_2_ancestral', ['k_dpm_2_a'], {'discard_next_to_last_sigma': True, "uses_ensd": True}),
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('DPM++ 2S a', 'sample_dpmpp_2s_ancestral', ['k_dpmpp_2s_a'], {"uses_ensd": True}),
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('DPM++ 2M', 'sample_dpmpp_2m', ['k_dpmpp_2m'], {}),
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('DPM++ SDE', 'sample_dpmpp_sde', ['k_dpmpp_sde'], {}),
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('DPM fast', 'sample_dpm_fast', ['k_dpm_fast'], {}),
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('DPM adaptive', 'sample_dpm_adaptive', ['k_dpm_ad'], {}),
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('DPM fast', 'sample_dpm_fast', ['k_dpm_fast'], {"uses_ensd": True}),
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('DPM adaptive', 'sample_dpm_adaptive', ['k_dpm_ad'], {"uses_ensd": True}),
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('LMS Karras', 'sample_lms', ['k_lms_ka'], {'scheduler': 'karras'}),
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('DPM2 Karras', 'sample_dpm_2', ['k_dpm_2_ka'], {'scheduler': 'karras', 'discard_next_to_last_sigma': True}),
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('DPM2 a Karras', 'sample_dpm_2_ancestral', ['k_dpm_2_a_ka'], {'scheduler': 'karras', 'discard_next_to_last_sigma': True}),
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('DPM++ 2S a Karras', 'sample_dpmpp_2s_ancestral', ['k_dpmpp_2s_a_ka'], {'scheduler': 'karras'}),
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('DPM2 Karras', 'sample_dpm_2', ['k_dpm_2_ka'], {'scheduler': 'karras', 'discard_next_to_last_sigma': True, "uses_ensd": True}),
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('DPM2 a Karras', 'sample_dpm_2_ancestral', ['k_dpm_2_a_ka'], {'scheduler': 'karras', 'discard_next_to_last_sigma': True, "uses_ensd": True}),
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('DPM++ 2S a Karras', 'sample_dpmpp_2s_ancestral', ['k_dpmpp_2s_a_ka'], {'scheduler': 'karras', "uses_ensd": True}),
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('DPM++ 2M Karras', 'sample_dpmpp_2m', ['k_dpmpp_2m_ka'], {'scheduler': 'karras'}),
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('DPM++ SDE Karras', 'sample_dpmpp_sde', ['k_dpmpp_sde_ka'], {'scheduler': 'karras'}),
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]
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