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ModelZoo
ResNet50_tensorflow
Commits
dfedef45
Commit
dfedef45
authored
May 15, 2017
by
Neal Wu
Committed by
GitHub
May 15, 2017
Browse files
Merge pull request #1471 from tensorflow/import-xrange-directly
Import xrange directly from six.moves for lm_1b
parents
1cd1f9d4
c5326615
Changes
1
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1 changed file
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4 additions
and
4 deletions
+4
-4
lm_1b/lm_1b_eval.py
lm_1b/lm_1b_eval.py
+4
-4
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lm_1b/lm_1b_eval.py
View file @
dfedef45
...
@@ -17,9 +17,9 @@
...
@@ -17,9 +17,9 @@
"""
"""
import
os
import
os
import
sys
import
sys
import
six
import
numpy
as
np
import
numpy
as
np
from
six.moves
import
xrange
import
tensorflow
as
tf
import
tensorflow
as
tf
from
google.protobuf
import
text_format
from
google.protobuf
import
text_format
...
@@ -178,7 +178,7 @@ def _SampleModel(prefix_words, vocab):
...
@@ -178,7 +178,7 @@ def _SampleModel(prefix_words, vocab):
prefix
=
[
vocab
.
word_to_id
(
w
)
for
w
in
prefix_words
.
split
()]
prefix
=
[
vocab
.
word_to_id
(
w
)
for
w
in
prefix_words
.
split
()]
prefix_char_ids
=
[
vocab
.
word_to_char_ids
(
w
)
for
w
in
prefix_words
.
split
()]
prefix_char_ids
=
[
vocab
.
word_to_char_ids
(
w
)
for
w
in
prefix_words
.
split
()]
for
_
in
six
.
moves
.
range
(
FLAGS
.
num_samples
):
for
_
in
x
range
(
FLAGS
.
num_samples
):
inputs
=
np
.
zeros
([
BATCH_SIZE
,
NUM_TIMESTEPS
],
np
.
int32
)
inputs
=
np
.
zeros
([
BATCH_SIZE
,
NUM_TIMESTEPS
],
np
.
int32
)
char_ids_inputs
=
np
.
zeros
(
char_ids_inputs
=
np
.
zeros
(
[
BATCH_SIZE
,
NUM_TIMESTEPS
,
vocab
.
max_word_length
],
np
.
int32
)
[
BATCH_SIZE
,
NUM_TIMESTEPS
,
vocab
.
max_word_length
],
np
.
int32
)
...
@@ -231,7 +231,7 @@ def _DumpEmb(vocab):
...
@@ -231,7 +231,7 @@ def _DumpEmb(vocab):
sys
.
stderr
.
write
(
'Finished softmax weights
\n
'
)
sys
.
stderr
.
write
(
'Finished softmax weights
\n
'
)
all_embs
=
np
.
zeros
([
vocab
.
size
,
1024
])
all_embs
=
np
.
zeros
([
vocab
.
size
,
1024
])
for
i
in
six
.
moves
.
range
(
vocab
.
size
):
for
i
in
x
range
(
vocab
.
size
):
input_dict
=
{
t
[
'inputs_in'
]:
inputs
,
input_dict
=
{
t
[
'inputs_in'
]:
inputs
,
t
[
'targets_in'
]:
targets
,
t
[
'targets_in'
]:
targets
,
t
[
'target_weights_in'
]:
weights
}
t
[
'target_weights_in'
]:
weights
}
...
@@ -270,7 +270,7 @@ def _DumpSentenceEmbedding(sentence, vocab):
...
@@ -270,7 +270,7 @@ def _DumpSentenceEmbedding(sentence, vocab):
inputs
=
np
.
zeros
([
BATCH_SIZE
,
NUM_TIMESTEPS
],
np
.
int32
)
inputs
=
np
.
zeros
([
BATCH_SIZE
,
NUM_TIMESTEPS
],
np
.
int32
)
char_ids_inputs
=
np
.
zeros
(
char_ids_inputs
=
np
.
zeros
(
[
BATCH_SIZE
,
NUM_TIMESTEPS
,
vocab
.
max_word_length
],
np
.
int32
)
[
BATCH_SIZE
,
NUM_TIMESTEPS
,
vocab
.
max_word_length
],
np
.
int32
)
for
i
in
six
.
moves
.
range
(
len
(
word_ids
)):
for
i
in
x
range
(
len
(
word_ids
)):
inputs
[
0
,
0
]
=
word_ids
[
i
]
inputs
[
0
,
0
]
=
word_ids
[
i
]
char_ids_inputs
[
0
,
0
,
:]
=
char_ids
[
i
]
char_ids_inputs
[
0
,
0
,
:]
=
char_ids
[
i
]
...
...
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