add an option to choose what you want to see in live preview (Live preview subject) and moves live preview settings to its own tab
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@ -138,7 +138,7 @@ def samples_to_image_grid(samples, approximation=None):
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def store_latent(decoded):
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state.current_latent = decoded
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if opts.show_progress_every_n_steps > 0 and shared.state.sampling_step % opts.show_progress_every_n_steps == 0:
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if opts.live_previews_enable and opts.show_progress_every_n_steps > 0 and shared.state.sampling_step % opts.show_progress_every_n_steps == 0:
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if not shared.parallel_processing_allowed:
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shared.state.current_image = sample_to_image(decoded)
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@ -243,7 +243,7 @@ class VanillaStableDiffusionSampler:
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self.nmask = p.nmask if hasattr(p, 'nmask') else None
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def adjust_steps_if_invalid(self, p, num_steps):
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if (self.config.name == 'DDIM' and p.ddim_discretize == 'uniform') or (self.config.name == 'PLMS'):
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if (self.config.name == 'DDIM' and p.ddim_discretize == 'uniform') or (self.config.name == 'PLMS'):
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valid_step = 999 / (1000 // num_steps)
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if valid_step == floor(valid_step):
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return int(valid_step) + 1
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@ -266,8 +266,7 @@ class VanillaStableDiffusionSampler:
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if image_conditioning is not None:
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conditioning = {"c_concat": [image_conditioning], "c_crossattn": [conditioning]}
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unconditional_conditioning = {"c_concat": [image_conditioning], "c_crossattn": [unconditional_conditioning]}
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samples = self.launch_sampling(t_enc + 1, lambda: self.sampler.decode(x1, conditioning, t_enc, unconditional_guidance_scale=p.cfg_scale, unconditional_conditioning=unconditional_conditioning))
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return samples
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@ -352,6 +351,11 @@ class CFGDenoiser(torch.nn.Module):
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x_out[-uncond.shape[0]:] = self.inner_model(x_in[-uncond.shape[0]:], sigma_in[-uncond.shape[0]:], cond={"c_crossattn": [uncond], "c_concat": [image_cond_in[-uncond.shape[0]:]]})
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if opts.live_preview_content == "Prompt":
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store_latent(x_out[0:uncond.shape[0]])
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elif opts.live_preview_content == "Negative prompt":
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store_latent(x_out[-uncond.shape[0]:])
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denoised = self.combine_denoised(x_out, conds_list, uncond, cond_scale)
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if self.mask is not None:
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@ -423,7 +427,8 @@ class KDiffusionSampler:
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def callback_state(self, d):
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step = d['i']
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latent = d["denoised"]
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store_latent(latent)
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if opts.live_preview_content == "Combined":
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store_latent(latent)
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self.last_latent = latent
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if self.stop_at is not None and step > self.stop_at:
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@ -176,7 +176,7 @@ class State:
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self.interrupted = True
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def nextjob(self):
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if opts.show_progress_every_n_steps == -1:
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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
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@ -224,7 +224,7 @@ class State:
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if not parallel_processing_allowed:
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return
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if self.sampling_step - self.current_image_sampling_step >= opts.show_progress_every_n_steps and opts.show_progress_every_n_steps > 0:
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if self.sampling_step - self.current_image_sampling_step >= opts.show_progress_every_n_steps and opts.live_previews_enable:
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self.do_set_current_image()
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def do_set_current_image(self):
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@ -423,8 +423,6 @@ options_templates.update(options_section(('interrogate', "Interrogate Options"),
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options_templates.update(options_section(('ui', "User interface"), {
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"show_progressbar": OptionInfo(True, "Show progressbar"),
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"show_progress_every_n_steps": OptionInfo(0, "Show image creation progress every N sampling steps. Set to 0 to disable. Set to -1 to show after completion of batch.", gr.Slider, {"minimum": -1, "maximum": 32, "step": 1}),
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"show_progress_type": OptionInfo("Full", "Image creation progress preview mode", gr.Radio, {"choices": ["Full", "Approx NN", "Approx cheap"]}),
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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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"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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@ -444,6 +442,13 @@ options_templates.update(options_section(('ui', "User interface"), {
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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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"live_previews_enable": OptionInfo(True, "Show live previews of the created image"),
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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}),
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"show_progress_type": OptionInfo("Approx NN", "Image creation progress preview mode", gr.Radio, {"choices": ["Full", "Approx NN", "Approx cheap"]}),
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"live_preview_content": OptionInfo("Prompt", "Live preview subject", gr.Radio, {"choices": ["Combined", "Prompt", "Negative prompt"]}),
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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}),
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@ -52,7 +52,7 @@ def check_progress_call(id_part):
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image = gr.update(visible=False)
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preview_visibility = gr.update(visible=False)
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if opts.show_progress_every_n_steps != 0:
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if opts.live_previews_enable:
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shared.state.set_current_image()
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image = shared.state.current_image
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