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chenpangpang
transformers
Commits
76be189b
Commit
76be189b
authored
Jul 21, 2019
by
Peiqin Lin
Browse files
typos
parent
a6154990
Changes
2
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2 changed files
with
4 additions
and
4 deletions
+4
-4
examples/run_glue.py
examples/run_glue.py
+2
-2
examples/run_squad.py
examples/run_squad.py
+2
-2
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examples/run_glue.py
View file @
76be189b
...
@@ -116,8 +116,8 @@ def train(args, train_dataset, model, tokenizer):
...
@@ -116,8 +116,8 @@ def train(args, train_dataset, model, tokenizer):
'attention_mask'
:
batch
[
1
],
'attention_mask'
:
batch
[
1
],
'token_type_ids'
:
batch
[
2
]
if
args
.
model_type
in
[
'bert'
,
'xlnet'
]
else
None
,
# XLM don't use segment_ids
'token_type_ids'
:
batch
[
2
]
if
args
.
model_type
in
[
'bert'
,
'xlnet'
]
else
None
,
# XLM don't use segment_ids
'labels'
:
batch
[
3
]}
'labels'
:
batch
[
3
]}
ouputs
=
model
(
**
inputs
)
ou
t
puts
=
model
(
**
inputs
)
loss
=
ouputs
[
0
]
# model outputs are always tuple in pytorch-transformers (see doc)
loss
=
ou
t
puts
[
0
]
# model outputs are always tuple in pytorch-transformers (see doc)
if
args
.
n_gpu
>
1
:
if
args
.
n_gpu
>
1
:
loss
=
loss
.
mean
()
# mean() to average on multi-gpu parallel training
loss
=
loss
.
mean
()
# mean() to average on multi-gpu parallel training
...
...
examples/run_squad.py
View file @
76be189b
...
@@ -129,8 +129,8 @@ def train(args, train_dataset, model, tokenizer):
...
@@ -129,8 +129,8 @@ def train(args, train_dataset, model, tokenizer):
if
args
.
model_type
in
[
'xlnet'
,
'xlm'
]:
if
args
.
model_type
in
[
'xlnet'
,
'xlm'
]:
inputs
.
update
({
'cls_index'
:
batch
[
5
],
inputs
.
update
({
'cls_index'
:
batch
[
5
],
'p_mask'
:
batch
[
6
]})
'p_mask'
:
batch
[
6
]})
ouputs
=
model
(
**
inputs
)
ou
t
puts
=
model
(
**
inputs
)
loss
=
ouputs
[
0
]
# model outputs are always tuple in pytorch-transformers (see doc)
loss
=
ou
t
puts
[
0
]
# model outputs are always tuple in pytorch-transformers (see doc)
if
args
.
n_gpu
>
1
:
if
args
.
n_gpu
>
1
:
loss
=
loss
.
mean
()
# mean() to average on multi-gpu parallel (not distributed) training
loss
=
loss
.
mean
()
# mean() to average on multi-gpu parallel (not distributed) training
...
...
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