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https://github.com/openvinotoolkit/stable-diffusion-webui.git
synced 2024-12-15 07:03:06 +03:00
Added torch.compile support for controlnet
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@ -30,7 +30,7 @@ from types import MappingProxyType
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from openvino.frontend import FrontEndManager
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from openvino.frontend.pytorch.fx_decoder import TorchFXPythonDecoder
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from openvino.frontend.pytorch.torchdynamo import backend, compile # noqa: F401
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from openvino.frontend.pytorch.torchdynamo.execute import execute, compiled_cache # noqa: F401
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from openvino.frontend.pytorch.torchdynamo.execute import execute # noqa: F401
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from openvino.frontend.pytorch.torchdynamo.partition import Partitioner
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from openvino.runtime import Core, Type, PartialShape, serialize
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@ -76,7 +76,7 @@ class ModelState:
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self.mode = 0
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self.partition_id = 0
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self.model_hash = ""
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self.cn_model = ""
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self.cn_model = "None"
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model_state = ModelState()
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@ -87,6 +87,7 @@ DEFAULT_OPENVINO_PYTHON_CONFIG = MappingProxyType(
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},
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)
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compiled_cache = {}
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max_openvino_partitions = 0
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partitioned_modules = {}
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@ -100,6 +101,9 @@ def openvino_fx(subgraph, example_inputs):
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if os.getenv("OPENVINO_TORCH_MODEL_CACHING") is not None:
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model_hash_str = sha256(subgraph.code.encode('utf-8')).hexdigest()
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model_hash_str_file = model_hash_str + str(model_state.partition_id)
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if (model_state.cn_model != "None" and model_state.partition_id == 0):
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model_hash_str_file = model_hash_str_file + model_state.cn_model
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executor_parameters = {"model_hash_str": model_hash_str}
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example_inputs.reverse()
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@ -116,7 +120,7 @@ def openvino_fx(subgraph, example_inputs):
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file_name = get_cached_file_name(*example_inputs, model_hash_str=model_hash_str_file, device=device, cache_root=cache_root)
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if (file_name is not None and os.path.isfile(file_name + ".xml") and os.path.isfile(file_name + ".bin")
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and (model_state.cn_model == "" or model_state.cn_model == "None")):
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and model_state.cn_model == "None"):
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model_state.partition_id = model_state.partition_id + 1
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om = core.read_model(file_name + ".xml")
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@ -270,6 +274,10 @@ def openvino_compile(gm: GraphModule, *args, model_hash_str: str = None, file_na
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if os.getenv("OPENVINO_TORCH_CACHE_DIR") is not None:
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cache_root = os.getenv("OPENVINO_TORCH_CACHE_DIR")
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type_shape_string = ""
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for input_data in args:
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type_shape_string += "_" + str(input_data.type()) + str(input_data.size())[11:-1].replace(" ", "")
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if file_name is not None and os.path.isfile(file_name + ".xml") and os.path.isfile(file_name + ".bin"):
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om = core.read_model(file_name + ".xml")
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else:
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@ -278,7 +286,7 @@ def openvino_compile(gm: GraphModule, *args, model_hash_str: str = None, file_na
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input_shapes = []
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input_types = []
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for idx, input_data in enumerate(args):
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for input_data in args:
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input_types.append(input_data.type())
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input_shapes.append(input_data.size())
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@ -501,9 +509,9 @@ def get_diffusers_sd_model(local_config, model_config, sampler_name, enable_cach
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elif (mode == 2):
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sd_model = StableDiffusionInpaintPipeline(**sd_model.components)
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elif (mode == 3):
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controlnet = ControlNetModel.from_pretrained(model_state.cn_model)
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controlnet = ControlNetModel.from_pretrained("lllyasviel/" + model_state.cn_model)
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sd_model = StableDiffusionControlNetPipeline(**sd_model.components, controlnet=controlnet)
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controlnet = torch.compile(controlnet, backend="openvino")
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sd_model.controlnet = torch.compile(sd_model.controlnet, backend="openvino_fx")
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checkpoint_info = CheckpointInfo(checkpoint_path)
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sd_model.sd_checkpoint_info = checkpoint_info
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sd_model.sd_model_hash = checkpoint_info.calculate_shorthash()
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@ -651,7 +659,7 @@ def process_images_openvino(p: StableDiffusionProcessing, local_config, model_co
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control_images = []
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cn_model=""
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cn_model="None"
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if ('ControlNet' in p.extra_generation_params):
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cn_params = p.extra_generation_params['ControlNet']
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@ -667,7 +675,6 @@ def process_images_openvino(p: StableDiffusionProcessing, local_config, model_co
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)
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p.scripts.postprocess(p, control_res)
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control_image = control_images[0]
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cn_model = "lllyasviel/" + cn_model
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mode = 3
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infotexts = []
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