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chenpangpang
transformers
Commits
e3fb4310
"test/git@developer.sourcefind.cn:gaoqiong/migraphx.git" did not exist on "250d3c87850f828c1d96d93745090cc89a382dc0"
Commit
e3fb4310
authored
Jul 11, 2019
by
LysandreJik
Browse files
From pretrained correct initialization. Unknown token handling for gpt2.
parent
50e62a4c
Changes
3
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3 changed files
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4 additions
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4 deletions
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-4
pytorch_transformers/modeling_gpt2.py
pytorch_transformers/modeling_gpt2.py
+1
-1
pytorch_transformers/modeling_openai.py
pytorch_transformers/modeling_openai.py
+1
-1
pytorch_transformers/tokenization_gpt2.py
pytorch_transformers/tokenization_gpt2.py
+2
-2
No files found.
pytorch_transformers/modeling_gpt2.py
View file @
e3fb4310
...
...
@@ -423,7 +423,7 @@ class GPT2PreTrainedModel(PreTrainedModel):
"""
num_special_tokens
=
kwargs
.
pop
(
'num_special_tokens'
,
None
)
model
=
super
().
from_pretrained
(
pretrained_model_name_or_path
,
*
inputs
,
**
kwargs
)
model
=
super
(
GPT2PreTrainedModel
,
cls
).
from_pretrained
(
pretrained_model_name_or_path
,
*
inputs
,
**
kwargs
)
# Add additional embeddings for special tokens if needed
# This step also make sure we are still sharing the output and input embeddings after loading weights
...
...
pytorch_transformers/modeling_openai.py
View file @
e3fb4310
...
...
@@ -431,7 +431,7 @@ class OpenAIGPTPreTrainedModel(PreTrainedModel):
num_special_tokens
=
kwargs
.
get
(
'num_special_tokens'
,
None
)
kwargs
.
pop
(
'num_special_tokens'
,
None
)
model
=
super
(
PreTrainedModel
,
cls
).
from_pretrained
(
pretrained_model_name_or_path
,
pretrained_model_name_or_path
,
*
inputs
,
**
kwargs
)
model
=
super
(
OpenAIGPT
PreTrainedModel
,
cls
).
from_pretrained
(
pretrained_model_name_or_path
,
pretrained_model_name_or_path
,
*
inputs
,
**
kwargs
)
# Add additional embeddings for special tokens if needed
# This step also make sure we are still sharing the output and input embeddings after loading weights
...
...
pytorch_transformers/tokenization_gpt2.py
View file @
e3fb4310
...
...
@@ -177,11 +177,11 @@ class GPT2Tokenizer(PreTrainedTokenizer):
def
_convert_token_to_id
(
self
,
token
):
""" Converts a token (str/unicode) in an id using the vocab. """
return
self
.
encoder
.
get
(
token
,
self
.
encoder
.
get
(
self
.
unk_token
)
)
return
self
.
encoder
.
get
(
token
)
def
_convert_id_to_token
(
self
,
index
):
"""Converts an index (integer) in a token (string/unicode) using the vocab."""
return
self
.
decoder
.
get
(
index
,
self
.
unk_token
)
return
self
.
decoder
.
get
(
index
)
def
_convert_ids_to_string
(
self
,
tokens_ids
):
"""Converts a sequence of ids in a string."""
...
...
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