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@ -285,7 +285,9 @@ class ModelCache(ModelCacheBase[AnyModel]):
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else:
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new_dict: Dict[str, torch.Tensor] = {}
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for k, v in cache_entry.state_dict.items():
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new_dict[k] = v.to(target_device, copy=True, non_blocking=TorchDevice.get_non_blocking(target_device))
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new_dict[k] = v.to(
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target_device, copy=True, non_blocking=TorchDevice.get_non_blocking(target_device)
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)
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cache_entry.model.load_state_dict(new_dict, assign=True)
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cache_entry.model.to(target_device, non_blocking=TorchDevice.get_non_blocking(target_device))
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cache_entry.device = target_device
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@ -145,7 +145,10 @@ class ModelPatcher:
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# TODO(ryand): Using torch.autocast(...) over explicit casting may offer a speed benefit on CUDA
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# devices here. Experimentally, it was found to be very slow on CPU. More investigation needed.
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layer_weight = layer.get_weight(module.weight) * (lora_weight * layer_scale)
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layer.to(device=TorchDevice.CPU_DEVICE, non_blocking=TorchDevice.get_non_blocking(TorchDevice.CPU_DEVICE))
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layer.to(
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device=TorchDevice.CPU_DEVICE,
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non_blocking=TorchDevice.get_non_blocking(TorchDevice.CPU_DEVICE),
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)
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assert isinstance(layer_weight, torch.Tensor) # mypy thinks layer_weight is a float|Any ??!
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if module.weight.shape != layer_weight.shape:
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@ -162,7 +165,9 @@ class ModelPatcher:
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assert hasattr(model, "get_submodule") # mypy not picking up fact that torch.nn.Module has get_submodule()
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with torch.no_grad():
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for module_key, weight in original_weights.items():
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model.get_submodule(module_key).weight.copy_(weight, non_blocking=TorchDevice.get_non_blocking(weight.device))
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model.get_submodule(module_key).weight.copy_(
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weight, non_blocking=TorchDevice.get_non_blocking(weight.device)
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)
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@classmethod
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@contextmanager
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