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chenpangpang
transformers
Commits
d5319793
Commit
d5319793
authored
Nov 06, 2019
by
Julien Chaumond
Browse files
Fix BERT
parent
27e015bd
Changes
1
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4 additions
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4 deletions
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-4
transformers/modeling_bert.py
transformers/modeling_bert.py
+4
-4
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transformers/modeling_bert.py
View file @
d5319793
...
@@ -170,7 +170,7 @@ class BertEmbeddings(nn.Module):
...
@@ -170,7 +170,7 @@ class BertEmbeddings(nn.Module):
position_ids
=
torch
.
arange
(
seq_length
,
dtype
=
torch
.
long
,
device
=
device
)
position_ids
=
torch
.
arange
(
seq_length
,
dtype
=
torch
.
long
,
device
=
device
)
position_ids
=
position_ids
.
unsqueeze
(
0
).
expand
(
input_shape
)
position_ids
=
position_ids
.
unsqueeze
(
0
).
expand
(
input_shape
)
if
token_type_ids
is
None
:
if
token_type_ids
is
None
:
token_type_ids
=
torch
.
zeros
(
input_shape
,
dtype
=
torch
.
long
)
token_type_ids
=
torch
.
zeros
(
input_shape
,
dtype
=
torch
.
long
,
device
=
device
)
if
inputs_embeds
is
None
:
if
inputs_embeds
is
None
:
inputs_embeds
=
self
.
word_embeddings
(
input_ids
)
inputs_embeds
=
self
.
word_embeddings
(
input_ids
)
...
@@ -655,11 +655,11 @@ class BertModel(BertPreTrainedModel):
...
@@ -655,11 +655,11 @@ class BertModel(BertPreTrainedModel):
device
=
input_ids
.
device
if
input_ids
is
not
None
else
inputs_embeds
.
device
device
=
input_ids
.
device
if
input_ids
is
not
None
else
inputs_embeds
.
device
if
attention_mask
is
None
:
if
attention_mask
is
None
:
attention_mask
=
torch
.
ones
(
input_shape
)
attention_mask
=
torch
.
ones
(
input_shape
,
device
=
device
)
if
encoder_attention_mask
is
None
:
if
encoder_attention_mask
is
None
:
encoder_attention_mask
=
torch
.
ones
(
input_shape
)
encoder_attention_mask
=
torch
.
ones
(
input_shape
,
device
=
device
)
if
token_type_ids
is
None
:
if
token_type_ids
is
None
:
token_type_ids
=
torch
.
zeros
(
input_shape
,
dtype
=
torch
.
long
)
token_type_ids
=
torch
.
zeros
(
input_shape
,
dtype
=
torch
.
long
,
device
=
device
)
# We can provide a self-attention mask of dimensions [batch_size, from_seq_length, to_seq_length]
# We can provide a self-attention mask of dimensions [batch_size, from_seq_length, to_seq_length]
# ourselves in which case we just need to make it broadcastable to all heads.
# ourselves in which case we just need to make it broadcastable to all heads.
...
...
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