Source code for pytorch_lightning.callbacks.lambda_function
# Copyright The PyTorch Lightning team.## Licensed under the Apache License, Version 2.0 (the "License");# you may not use this file except in compliance with the License.# You may obtain a copy of the License at## http://www.apache.org/licenses/LICENSE-2.0## Unless required by applicable law or agreed to in writing, software# distributed under the License is distributed on an "AS IS" BASIS,# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.# See the License for the specific language governing permissions and# limitations under the License.r"""Lambda Callback^^^^^^^^^^^^^^^Create a simple callback on the fly using lambda functions."""fromtypingimportCallable,Optionalfrompytorch_lightning.callbacks.callbackimportCallback
[docs]classLambdaCallback(Callback):r""" Create a simple callback on the fly using lambda functions. Args: **kwargs: hooks supported by :class:`~pytorch_lightning.callbacks.callback.Callback` Example:: >>> from pytorch_lightning import Trainer >>> from pytorch_lightning.callbacks import LambdaCallback >>> trainer = Trainer(callbacks=[LambdaCallback(setup=lambda *args: print('setup'))]) """def__init__(self,on_before_accelerator_backend_setup:Optional[Callable]=None,setup:Optional[Callable]=None,on_configure_sharded_model:Optional[Callable]=None,teardown:Optional[Callable]=None,on_init_start:Optional[Callable]=None,on_init_end:Optional[Callable]=None,on_fit_start:Optional[Callable]=None,on_fit_end:Optional[Callable]=None,on_sanity_check_start:Optional[Callable]=None,on_sanity_check_end:Optional[Callable]=None,on_train_batch_start:Optional[Callable]=None,on_train_batch_end:Optional[Callable]=None,on_train_epoch_start:Optional[Callable]=None,on_train_epoch_end:Optional[Callable]=None,on_validation_epoch_start:Optional[Callable]=None,on_validation_epoch_end:Optional[Callable]=None,on_test_epoch_start:Optional[Callable]=None,on_test_epoch_end:Optional[Callable]=None,on_epoch_start:Optional[Callable]=None,on_epoch_end:Optional[Callable]=None,on_batch_start:Optional[Callable]=None,on_validation_batch_start:Optional[Callable]=None,on_validation_batch_end:Optional[Callable]=None,on_test_batch_start:Optional[Callable]=None,on_test_batch_end:Optional[Callable]=None,on_batch_end:Optional[Callable]=None,on_train_start:Optional[Callable]=None,on_train_end:Optional[Callable]=None,on_pretrain_routine_start:Optional[Callable]=None,on_pretrain_routine_end:Optional[Callable]=None,on_validation_start:Optional[Callable]=None,on_validation_end:Optional[Callable]=None,on_test_start:Optional[Callable]=None,on_test_end:Optional[Callable]=None,on_exception:Optional[Callable]=None,on_save_checkpoint:Optional[Callable]=None,on_load_checkpoint:Optional[Callable]=None,on_before_backward:Optional[Callable]=None,on_after_backward:Optional[Callable]=None,on_before_optimizer_step:Optional[Callable]=None,on_before_zero_grad:Optional[Callable]=None,on_predict_start:Optional[Callable]=None,on_predict_end:Optional[Callable]=None,on_predict_batch_start:Optional[Callable]=None,on_predict_batch_end:Optional[Callable]=None,on_predict_epoch_start:Optional[Callable]=None,on_predict_epoch_end:Optional[Callable]=None,):fork,vinlocals().items():ifk=="self":continueifvisnotNone:setattr(self,k,v)
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