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Create optimization_utils.py

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  1. optimization_utils.py +107 -0
optimization_utils.py ADDED
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+ """
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+ """
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+ import contextlib
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+ from contextvars import ContextVar
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+ from io import BytesIO
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+ from typing import Any
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+ from typing import cast
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+ from unittest.mock import patch
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+
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+ import torch
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+ from torch._inductor.package.package import package_aoti
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+ from torch.export.pt2_archive._package import AOTICompiledModel
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+ from torch.export.pt2_archive._package_weights import Weights
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+
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+
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+ INDUCTOR_CONFIGS_OVERRIDES = {
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+ 'aot_inductor.package_constants_in_so': False,
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+ 'aot_inductor.package_constants_on_disk': True,
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+ 'aot_inductor.package': True,
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+ }
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+
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+
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+ class ZeroGPUWeights:
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+ def __init__(self, constants_map: dict[str, torch.Tensor], to_cuda: bool = False):
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+ if to_cuda:
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+ self.constants_map = {name: tensor.to('cuda') for name, tensor in constants_map.items()}
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+ else:
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+ self.constants_map = constants_map
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+ def __reduce__(self):
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+ constants_map: dict[str, torch.Tensor] = {}
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+ for name, tensor in self.constants_map.items():
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+ tensor_ = torch.empty_like(tensor, device='cpu').pin_memory()
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+ constants_map[name] = tensor_.copy_(tensor).detach().share_memory_()
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+ return ZeroGPUWeights, (constants_map, True)
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+
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+
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+ class ZeroGPUCompiledModel:
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+ def __init__(self, archive_file: torch.types.FileLike, weights: ZeroGPUWeights):
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+ self.archive_file = archive_file
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+ self.weights = weights
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+ self.compiled_model: ContextVar[AOTICompiledModel | None] = ContextVar('compiled_model', default=None)
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+ def __call__(self, *args, **kwargs):
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+ if (compiled_model := self.compiled_model.get()) is None:
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+ compiled_model = cast(AOTICompiledModel, torch._inductor.aoti_load_package(self.archive_file))
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+ compiled_model.load_constants(self.weights.constants_map, check_full_update=True, user_managed=True)
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+ self.compiled_model.set(compiled_model)
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+ return compiled_model(*args, **kwargs)
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+ def __reduce__(self):
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+ return ZeroGPUCompiledModel, (self.archive_file, self.weights)
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+
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+
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+ def aoti_compile(
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+ exported_program: torch.export.ExportedProgram,
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+ inductor_configs: dict[str, Any] | None = None,
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+ ):
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+ inductor_configs = (inductor_configs or {}) | INDUCTOR_CONFIGS_OVERRIDES
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+ gm = cast(torch.fx.GraphModule, exported_program.module())
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+ assert exported_program.example_inputs is not None
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+ args, kwargs = exported_program.example_inputs
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+ artifacts = torch._inductor.aot_compile(gm, args, kwargs, options=inductor_configs)
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+ archive_file = BytesIO()
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+ files: list[str | Weights] = [file for file in artifacts if isinstance(file, str)]
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+ package_aoti(archive_file, files)
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+ weights, = (artifact for artifact in artifacts if isinstance(artifact, Weights))
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+ zerogpu_weights = ZeroGPUWeights({name: weights.get_weight(name)[0] for name in weights})
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+ return ZeroGPUCompiledModel(archive_file, zerogpu_weights)
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+
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+
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+ @contextlib.contextmanager
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+ def capture_component_call(
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+ pipeline: Any,
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+ component_name: str,
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+ component_method='forward',
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+ ):
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+
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+ class CapturedCallException(Exception):
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+ def __init__(self, *args, **kwargs):
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+ super().__init__()
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+ self.args = args
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+ self.kwargs = kwargs
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+
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+ class CapturedCall:
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+ def __init__(self):
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+ self.args: tuple[Any, ...] = ()
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+ self.kwargs: dict[str, Any] = {}
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+
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+ component = getattr(pipeline, component_name)
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+ captured_call = CapturedCall()
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+
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+ def capture_call(*args, **kwargs):
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+ raise CapturedCallException(*args, **kwargs)
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+
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+ with patch.object(component, component_method, new=capture_call):
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+ try:
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+ yield captured_call
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+ except CapturedCallException as e:
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+ captured_call.args = e.args
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+ captured_call.kwargs = e.kwargs
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+
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+
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+ def drain_module_parameters(module: torch.nn.Module):
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+ state_dict_meta = {name: {'device': tensor.device, 'dtype': tensor.dtype} for name, tensor in module.state_dict().items()}
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+ state_dict = {name: torch.nn.Parameter(torch.empty_like(tensor, device='cpu')) for name, tensor in module.state_dict().items()}
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+ module.load_state_dict(state_dict, assign=True)
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+ for name, param in state_dict.items():
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+ meta = state_dict_meta[name]
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+ param.data = torch.Tensor([]).to(**meta)