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https://github.com/AUTOMATIC1111/stable-diffusion-webui.git
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Lora: add an option to use old method of applying loras
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@ -245,6 +245,19 @@ def lora_calc_updown(lora, module, target):
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return updown
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def lora_restore_weights_from_backup(self: Union[torch.nn.Conv2d, torch.nn.Linear, torch.nn.MultiheadAttention]):
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weights_backup = getattr(self, "lora_weights_backup", None)
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if weights_backup is None:
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return
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if isinstance(self, torch.nn.MultiheadAttention):
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self.in_proj_weight.copy_(weights_backup[0])
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self.out_proj.weight.copy_(weights_backup[1])
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else:
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self.weight.copy_(weights_backup)
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def lora_apply_weights(self: Union[torch.nn.Conv2d, torch.nn.Linear, torch.nn.MultiheadAttention]):
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"""
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Applies the currently selected set of Loras to the weights of torch layer self.
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@ -269,12 +282,7 @@ def lora_apply_weights(self: Union[torch.nn.Conv2d, torch.nn.Linear, torch.nn.Mu
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self.lora_weights_backup = weights_backup
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if current_names != wanted_names:
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if weights_backup is not None:
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if isinstance(self, torch.nn.MultiheadAttention):
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self.in_proj_weight.copy_(weights_backup[0])
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self.out_proj.weight.copy_(weights_backup[1])
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else:
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self.weight.copy_(weights_backup)
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lora_restore_weights_from_backup(self)
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for lora in loaded_loras:
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module = lora.modules.get(lora_layer_name, None)
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@ -305,12 +313,45 @@ def lora_apply_weights(self: Union[torch.nn.Conv2d, torch.nn.Linear, torch.nn.Mu
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setattr(self, "lora_current_names", wanted_names)
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def lora_forward(module, input, original_forward):
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"""
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Old way of applying Lora by executing operations during layer's forward.
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Stacking many loras this way results in big performance degradation.
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"""
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if len(loaded_loras) == 0:
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return original_forward(module, input)
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input = devices.cond_cast_unet(input)
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lora_restore_weights_from_backup(module)
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lora_reset_cached_weight(module)
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res = original_forward(module, input)
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lora_layer_name = getattr(module, 'lora_layer_name', None)
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for lora in loaded_loras:
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module = lora.modules.get(lora_layer_name, None)
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if module is None:
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continue
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module.up.to(device=devices.device)
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module.down.to(device=devices.device)
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res = res + module.up(module.down(input)) * lora.multiplier * (module.alpha / module.up.weight.shape[1] if module.alpha else 1.0)
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return res
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def lora_reset_cached_weight(self: Union[torch.nn.Conv2d, torch.nn.Linear]):
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setattr(self, "lora_current_names", ())
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setattr(self, "lora_weights_backup", None)
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def lora_Linear_forward(self, input):
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if shared.opts.lora_functional:
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return lora_forward(self, input, torch.nn.Linear_forward_before_lora)
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lora_apply_weights(self)
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return torch.nn.Linear_forward_before_lora(self, input)
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@ -323,6 +364,9 @@ def lora_Linear_load_state_dict(self, *args, **kwargs):
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def lora_Conv2d_forward(self, input):
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if shared.opts.lora_functional:
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return lora_forward(self, input, torch.nn.Conv2d_forward_before_lora)
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lora_apply_weights(self)
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return torch.nn.Conv2d_forward_before_lora(self, input)
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@ -55,3 +55,8 @@ script_callbacks.on_infotext_pasted(lora.infotext_pasted)
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shared.options_templates.update(shared.options_section(('extra_networks', "Extra Networks"), {
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"sd_lora": shared.OptionInfo("None", "Add Lora to prompt", gr.Dropdown, lambda: {"choices": ["None"] + [x for x in lora.available_loras]}, refresh=lora.list_available_loras),
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}))
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shared.options_templates.update(shared.options_section(('compatibility', "Compatibility"), {
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"lora_functional": shared.OptionInfo(False, "Lora: use old method that takes longer when you have multiple Loras active and produces same results as kohya-ss/sd-webui-additional-networks extension"),
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}))
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