Converting script
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@@ -107,7 +107,7 @@ if is_torch_available():
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CAMEMBERT_PRETRAINED_MODEL_ARCHIVE_MAP)
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CAMEMBERT_PRETRAINED_MODEL_ARCHIVE_MAP)
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from .modeling_encoder_decoder import PreTrainedEncoderDecoder, Model2Model
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from .modeling_encoder_decoder import PreTrainedEncoderDecoder, Model2Model
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from .modeling_albert import (AlbertModel, AlbertForMaskedLM, ALBERT_PRETRAINED_MODEL_ARCHIVE_MAP)
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from .modeling_albert import (AlbertModel, AlbertForMaskedLM, load_tf_weights_in_albert, ALBERT_PRETRAINED_MODEL_ARCHIVE_MAP)
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# Optimization
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# Optimization
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from .optimization import (AdamW, get_constant_schedule, get_constant_schedule_with_warmup, get_cosine_schedule_with_warmup,
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from .optimization import (AdamW, get_constant_schedule, get_constant_schedule_with_warmup, get_cosine_schedule_with_warmup,
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@@ -1,18 +1,39 @@
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# coding=utf-8
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# Copyright 2018 The HuggingFace Inc. team.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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"""Convert ALBERT checkpoint."""
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from __future__ import absolute_import
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from __future__ import division
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from __future__ import print_function
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import argparse
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import torch
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from transformers import AlbertConfig, BertForPreTraining, load_tf_weights_in_bert
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from transformers import AlbertConfig, AlbertForMaskedLM, load_tf_weights_in_albert
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import logging
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logging.basicConfig(level=logging.INFO)
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def convert_tf_checkpoint_to_pytorch(tf_checkpoint_path, bert_config_file, pytorch_dump_path):
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def convert_tf_checkpoint_to_pytorch(tf_checkpoint_path, bert_config_file, pytorch_dump_path):
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# Initialise PyTorch model
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# Initialise PyTorch model
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config = BertConfig.from_json_file(bert_config_file)
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config = AlbertConfig.from_json_file(bert_config_file)
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print("Building PyTorch model from configuration: {}".format(str(config)))
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print("Building PyTorch model from configuration: {}".format(str(config)))
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model = BertForPreTraining(config)
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model = AlbertForMaskedLM(config)
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# Load weights from tf checkpoint
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# Load weights from tf checkpoint
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load_tf_weights_in_bert(model, config, tf_checkpoint_path)
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load_tf_weights_in_albert(model, config, tf_checkpoint_path)
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# Save pytorch-model
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# Save pytorch-model
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print("Save PyTorch model to {}".format(pytorch_dump_path))
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print("Save PyTorch model to {}".format(pytorch_dump_path))
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@@ -31,7 +52,7 @@ if __name__ == "__main__":
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default = None,
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default = None,
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type = str,
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type = str,
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required = True,
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required = True,
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help = "The config json file corresponding to the pre-trained BERT model. \n"
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help = "The config json file corresponding to the pre-trained ALBERT model. \n"
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"This specifies the model architecture.")
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"This specifies the model architecture.")
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parser.add_argument("--pytorch_dump_path",
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parser.add_argument("--pytorch_dump_path",
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default = None,
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default = None,
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@@ -40,5 +61,6 @@ if __name__ == "__main__":
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help = "Path to the output PyTorch model.")
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help = "Path to the output PyTorch model.")
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args = parser.parse_args()
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args = parser.parse_args()
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convert_tf_checkpoint_to_pytorch(args.tf_checkpoint_path,
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convert_tf_checkpoint_to_pytorch(args.tf_checkpoint_path,
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args.bert_config_file,
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args.albert_config_file,
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args.pytorch_dump_path)
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args.pytorch_dump_path)
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