Training in progress, epoch 1
Browse files- adapter_config.json +4 -4
- adapter_model.safetensors +1 -1
- tmpepi07lf9/_remote_module_non_scriptable.py +81 -0
- training_args.bin +1 -1
adapter_config.json
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@@ -19,13 +19,13 @@
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"rank_pattern": {},
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"revision": null,
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"target_modules": [
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"
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"o_proj",
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"k_proj",
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"
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"down_proj",
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"up_proj"
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"v_proj"
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],
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"task_type": "CAUSAL_LM",
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"use_rslora": false
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"rank_pattern": {},
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"revision": null,
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"target_modules": [
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"q_proj",
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"o_proj",
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"k_proj",
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"gate_proj",
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"v_proj",
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"down_proj",
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"up_proj"
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],
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"task_type": "CAUSAL_LM",
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"use_rslora": false
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adapter_model.safetensors
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@@ -1,3 +1,3 @@
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version https://git-lfs.github.com/spec/v1
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oid sha256:
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size 1803940752
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version https://git-lfs.github.com/spec/v1
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oid sha256:438aee460402ec1fdef6f1376dc770011606bc8eca2a2d2b2ee763ab5a715a2d
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size 1803940752
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tmpepi07lf9/_remote_module_non_scriptable.py
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from typing import *
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import torch
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import torch.distributed.rpc as rpc
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from torch import Tensor
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from torch._jit_internal import Future
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from torch.distributed.rpc import RRef
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from typing import Tuple # pyre-ignore: unused import
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module_interface_cls = None
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def forward_async(self, *args, **kwargs):
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args = (self.module_rref, self.device, self.is_device_map_set, *args)
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kwargs = {**kwargs}
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return rpc.rpc_async(
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self.module_rref.owner(),
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_remote_forward,
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args,
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kwargs,
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)
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def forward(self, *args, **kwargs):
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args = (self.module_rref, self.device, self.is_device_map_set, *args)
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kwargs = {**kwargs}
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ret_fut = rpc.rpc_async(
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self.module_rref.owner(),
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_remote_forward,
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args,
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kwargs,
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)
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return ret_fut.wait()
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_generated_methods = [
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forward_async,
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forward,
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]
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def _remote_forward(
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module_rref: RRef[module_interface_cls], device: str, is_device_map_set: bool, *args, **kwargs):
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module = module_rref.local_value()
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device = torch.device(device)
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if device.type != "cuda":
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return module.forward(*args, **kwargs)
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# If the module is on a cuda device,
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# move any CPU tensor in args or kwargs to the same cuda device.
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# Since torch script does not support generator expression,
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# have to use concatenation instead of
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# ``tuple(i.to(device) if isinstance(i, Tensor) else i for i in *args)``.
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args = (*args,)
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out_args: Tuple[()] = ()
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for arg in args:
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arg = (arg.to(device),) if isinstance(arg, Tensor) else (arg,)
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out_args = out_args + arg
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kwargs = {**kwargs}
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for k, v in kwargs.items():
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if isinstance(v, Tensor):
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kwargs[k] = kwargs[k].to(device)
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if is_device_map_set:
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return module.forward(*out_args, **kwargs)
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# If the device map is empty, then only CPU tensors are allowed to send over wire,
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# so have to move any GPU tensor to CPU in the output.
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# Since torch script does not support generator expression,
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# have to use concatenation instead of
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# ``tuple(i.cpu() if isinstance(i, Tensor) else i for i in module.forward(*out_args, **kwargs))``.
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ret: Tuple[()] = ()
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for i in module.forward(*out_args, **kwargs):
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i = (i.cpu(),) if isinstance(i, Tensor) else (i,)
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ret = ret + i
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return ret
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training_args.bin
CHANGED
|
@@ -1,3 +1,3 @@
|
|
| 1 |
version https://git-lfs.github.com/spec/v1
|
| 2 |
-
oid sha256:
|
| 3 |
size 4664
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|
|
|
| 1 |
version https://git-lfs.github.com/spec/v1
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| 2 |
+
oid sha256:dcc62bb1e6ac14e110070d8afe60cdbd0f23c0c49c4036bf2b417084e7372ebd
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size 4664
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