"git@developer.sourcefind.cn:chenpangpang/transformers.git" did not exist on "2c1ebb8b507c19c75af5084b6c73e0b003c9eda6"
Unverified Commit 218d552f authored by Volodymyr Byno's avatar Volodymyr Byno Committed by GitHub
Browse files

Fix loading the best model on the last stage of training (#11718)

parent 25208200
...@@ -1059,18 +1059,7 @@ class Trainer: ...@@ -1059,18 +1059,7 @@ class Trainer:
# We load the model state dict on the CPU to avoid an OOM error. # We load the model state dict on the CPU to avoid an OOM error.
state_dict = torch.load(os.path.join(resume_from_checkpoint, WEIGHTS_NAME), map_location="cpu") state_dict = torch.load(os.path.join(resume_from_checkpoint, WEIGHTS_NAME), map_location="cpu")
# If the model is on the GPU, it still works! # If the model is on the GPU, it still works!
load_result = self.model.load_state_dict(state_dict, strict=False) self._load_state_dict_in_model(state_dict)
if len(load_result.missing_keys) != 0:
if load_result.missing_keys == self.model._keys_to_ignore_on_save:
self.model.tie_weights()
else:
logger.warn(
f"There were missing keys in the checkpoint model loaded: {load_result.missing_keys}."
)
if len(load_result.unexpected_keys) != 0:
logger.warn(
f"There were unexpected keys in the checkpoint model loaded: {load_result.unexpected_keys}."
)
# If model was re-initialized, put it on the right device and update self.model_wrapped # If model was re-initialized, put it on the right device and update self.model_wrapped
if model_reloaded: if model_reloaded:
...@@ -1363,7 +1352,7 @@ class Trainer: ...@@ -1363,7 +1352,7 @@ class Trainer:
# We load the model state dict on the CPU to avoid an OOM error. # We load the model state dict on the CPU to avoid an OOM error.
state_dict = torch.load(os.path.join(self.state.best_model_checkpoint, WEIGHTS_NAME), map_location="cpu") state_dict = torch.load(os.path.join(self.state.best_model_checkpoint, WEIGHTS_NAME), map_location="cpu")
# If the model is on the GPU, it still works! # If the model is on the GPU, it still works!
self.model.load_state_dict(state_dict) self._load_state_dict_in_model(state_dict)
if self.deepspeed: if self.deepspeed:
self.deepspeed.load_checkpoint( self.deepspeed.load_checkpoint(
...@@ -1385,6 +1374,17 @@ class Trainer: ...@@ -1385,6 +1374,17 @@ class Trainer:
return TrainOutput(self.state.global_step, self._total_loss_scalar / self.state.global_step, metrics) return TrainOutput(self.state.global_step, self._total_loss_scalar / self.state.global_step, metrics)
def _load_state_dict_in_model(self, state_dict):
load_result = self.model.load_state_dict(state_dict, strict=False)
if len(load_result.missing_keys) != 0:
if set(load_result.missing_keys) == set(self.model._keys_to_ignore_on_save):
self.model.tie_weights()
else:
logger.warn(f"There were missing keys in the checkpoint model loaded: {load_result.missing_keys}.")
if len(load_result.unexpected_keys) != 0:
logger.warn(f"There were unexpected keys in the checkpoint model loaded: {load_result.unexpected_keys}.")
def _maybe_log_save_evaluate(self, tr_loss, model, trial, epoch): def _maybe_log_save_evaluate(self, tr_loss, model, trial, epoch):
if self.control.should_log: if self.control.should_log:
logs: Dict[str, float] = {} logs: Dict[str, float] = {}
......
...@@ -180,7 +180,8 @@ class ModelTesterMixin: ...@@ -180,7 +180,8 @@ class ModelTesterMixin:
# Test we can load the state dict in the model, necessary for the checkpointing API in Trainer. # Test we can load the state dict in the model, necessary for the checkpointing API in Trainer.
load_result = model.load_state_dict(state_dict_saved, strict=False) load_result = model.load_state_dict(state_dict_saved, strict=False)
self.assertTrue( self.assertTrue(
len(load_result.missing_keys) == 0 or load_result.missing_keys == model._keys_to_ignore_on_save len(load_result.missing_keys) == 0
or set(load_result.missing_keys) == set(model._keys_to_ignore_on_save)
) )
self.assertTrue(len(load_result.unexpected_keys) == 0) self.assertTrue(len(load_result.unexpected_keys) == 0)
......
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