renamed Inpainting strength infotext to Conditional mask weight, made it only appear if using inpainting model, made it possible to read the setting from it using the blue arrow button
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@ -73,6 +73,7 @@ def integrate_settings_paste_fields(component_dict):
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'sd_hypernetwork': 'Hypernet',
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'sd_hypernetwork_strength': 'Hypernet strength',
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'CLIP_stop_at_last_layers': 'Clip skip',
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'inpainting_mask_weight': 'Conditional mask weight',
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'sd_model_checkpoint': 'Model hash',
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}
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settings_paste_fields = [
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@ -113,6 +113,7 @@ class StableDiffusionProcessing():
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self.s_tmax = s_tmax or float('inf') # not representable as a standard ui option
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self.s_noise = s_noise or opts.s_noise
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self.override_settings = {k: v for k, v in (override_settings or {}).items() if k not in shared.restricted_opts}
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self.is_using_inpainting_conditioning = False
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if not seed_enable_extras:
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self.subseed = -1
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@ -133,6 +134,8 @@ class StableDiffusionProcessing():
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# Pretty sure we can just make this a 1x1 image since its not going to be used besides its batch size.
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return x.new_zeros(x.shape[0], 5, 1, 1)
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self.is_using_inpainting_conditioning = True
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height = height or self.height
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width = width or self.width
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@ -151,6 +154,8 @@ class StableDiffusionProcessing():
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# Dummy zero conditioning if we're not using inpainting model.
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return latent_image.new_zeros(latent_image.shape[0], 5, 1, 1)
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self.is_using_inpainting_conditioning = True
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# Handle the different mask inputs
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if image_mask is not None:
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if torch.is_tensor(image_mask):
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@ -234,6 +239,7 @@ class Processed:
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self.negative_prompt = self.negative_prompt if type(self.negative_prompt) != list else self.negative_prompt[0]
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self.seed = int(self.seed if type(self.seed) != list else self.seed[0]) if self.seed is not None else -1
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self.subseed = int(self.subseed if type(self.subseed) != list else self.subseed[0]) if self.subseed is not None else -1
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self.is_using_inpainting_conditioning = p.is_using_inpainting_conditioning
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self.all_prompts = all_prompts or [self.prompt]
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self.all_seeds = all_seeds or [self.seed]
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@ -268,6 +274,7 @@ class Processed:
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"styles": self.styles,
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"job_timestamp": self.job_timestamp,
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"clip_skip": self.clip_skip,
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"is_using_inpainting_conditioning": self.is_using_inpainting_conditioning,
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}
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return json.dumps(obj)
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@ -394,7 +401,7 @@ def create_infotext(p, all_prompts, all_seeds, all_subseeds, comments, iteration
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"Variation seed strength": (None if p.subseed_strength == 0 else p.subseed_strength),
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"Seed resize from": (None if p.seed_resize_from_w == 0 or p.seed_resize_from_h == 0 else f"{p.seed_resize_from_w}x{p.seed_resize_from_h}"),
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"Denoising strength": getattr(p, 'denoising_strength', None),
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"Inpainting strength": (None if getattr(p, 'denoising_strength', None) is None else getattr(p, "inpainting_mask_weight", shared.opts.inpainting_mask_weight)),
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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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"Eta": (None if p.sampler is None or p.sampler.eta == p.sampler.default_eta else p.sampler.eta),
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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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