Fix sdxl inpaint
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547778b10f
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@ -115,7 +115,7 @@ def txt2img_image_conditioning(sd_model, x, width, height):
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return x.new_zeros(x.shape[0], 2*sd_model.noise_augmentor.time_embed.dim, dtype=x.dtype, device=x.device)
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else:
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if getattr(sd_model.model, "is_sdxl_inpaint", False):
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if sd_model.is_sdxl_inpaint:
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# The "masked-image" in this case will just be all 0.5 since the entire image is masked.
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image_conditioning = torch.ones(x.shape[0], 3, height, width, device=x.device) * 0.5
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image_conditioning = images_tensor_to_samples(image_conditioning,
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@ -389,7 +389,7 @@ class StableDiffusionProcessing:
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if self.sampler.conditioning_key == "crossattn-adm":
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return self.unclip_image_conditioning(source_image)
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if getattr(self.sampler.model_wrap.inner_model.model, "is_sdxl_inpaint", False):
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if self.sampler.model_wrap.inner_model.is_sdxl_inpaint:
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return self.inpainting_image_conditioning(source_image, latent_image, image_mask=image_mask)
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# Dummy zero conditioning if we're not using inpainting or depth model.
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@ -386,13 +386,6 @@ def load_model_weights(model, checkpoint_info: CheckpointInfo, state_dict, timer
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model.is_sd2 = not model.is_sdxl and hasattr(model.cond_stage_model, 'model')
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model.is_sd1 = not model.is_sdxl and not model.is_sd2
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model.is_ssd = model.is_sdxl and 'model.diffusion_model.middle_block.1.transformer_blocks.0.attn1.to_q.weight' not in state_dict.keys()
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# Set is_sdxl_inpaint flag.
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diffusion_model_input = state_dict.get('diffusion_model.input_blocks.0.0.weight', None)
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model.is_sdxl_inpaint = (
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model.is_sdxl and
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diffusion_model_input is not None and
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diffusion_model_input.shape[1] == 9
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)
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if model.is_sdxl:
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sd_models_xl.extend_sdxl(model)
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@ -408,6 +401,18 @@ def load_model_weights(model, checkpoint_info: CheckpointInfo, state_dict, timer
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del state_dict
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# Set is_sdxl_inpaint flag.
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# Perform this check after model initialization to make sure state_dict
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# structure is already known.
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diffusion_model_input = model.model.state_dict().get(
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'diffusion_model.input_blocks.0.0.weight'
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)
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model.is_sdxl_inpaint = (
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model.is_sdxl and
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diffusion_model_input is not None and
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diffusion_model_input.shape[1] == 9
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)
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if shared.cmd_opts.opt_channelslast:
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model.to(memory_format=torch.channels_last)
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timer.record("apply channels_last")
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