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79a1e5b
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Parent(s):
85fa60e
Update app.py
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app.py
CHANGED
@@ -154,28 +154,30 @@ def run_lora(prompt, negative, lora_scale, selected_state, sdxl_loras, progress=
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full_path_lora = state_dicts[repo_name]["saved_name"]
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loaded_state_dict = state_dicts[repo_name]["state_dict"]
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cross_attention_kwargs = None
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print("Last LoRA:", last_lora, "Was it last merged? ", last_merged, "Was it last fused?", last_fused)
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print("Current LoRA: ", repo_name)
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if last_lora != repo_name:
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-
if last_merged:
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-
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-
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-
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-
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elif(last_fused):
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#pipe.unfuse_lora()
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pipe.unload_lora_weights()
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is_compatible = sdxl_loras[selected_state.index]["is_compatible"]
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if is_compatible:
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pipe.load_lora_weights(loaded_state_dict)
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-
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last_fused = True
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else:
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is_pivotal = sdxl_loras[selected_state.index]["is_pivotal"]
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if(is_pivotal):
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pipe.load_lora_weights(loaded_state_dict)
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-
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last_fused = True
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#Add the textual inversion embeddings from pivotal tuning models
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full_path_lora = state_dicts[repo_name]["saved_name"]
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loaded_state_dict = state_dicts[repo_name]["state_dict"]
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cross_attention_kwargs = None
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+
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print("Last LoRA:", last_lora, "Was it last merged? ", last_merged, "Was it last fused?", last_fused)
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print("Current LoRA: ", repo_name)
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+
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if last_lora != repo_name:
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#if last_merged:
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del pipe
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gc.collect()
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pipe = copy.deepcopy(original_pipe)
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pipe.to(device)
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#elif(last_fused):
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#pipe.unfuse_lora()
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#pipe.unload_lora_weights()
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is_compatible = sdxl_loras[selected_state.index]["is_compatible"]
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if is_compatible:
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pipe.load_lora_weights(loaded_state_dict)
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pipe.fuse_lora(lora_scale)
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last_fused = True
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else:
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is_pivotal = sdxl_loras[selected_state.index]["is_pivotal"]
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if(is_pivotal):
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pipe.load_lora_weights(loaded_state_dict)
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+
pipe.fuse_lora(lora_scale)
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last_fused = True
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#Add the textual inversion embeddings from pivotal tuning models
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