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ModelZoo
ResNet50_tensorflow
Commits
514a10de
Commit
514a10de
authored
Jun 06, 2017
by
Andrew Gilbert
Browse files
Fixed calls to concat and convolution2d
parent
cfdbdf10
Changes
1
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adversarial_crypto/train_eval.py
adversarial_crypto/train_eval.py
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adversarial_crypto/train_eval.py
View file @
514a10de
...
@@ -128,13 +128,13 @@ class AdversarialCrypto(object):
...
@@ -128,13 +128,13 @@ class AdversarialCrypto(object):
"""
"""
if
key
is
not
None
:
if
key
is
not
None
:
combined_message
=
tf
.
concat
(
1
,
[
message
,
key
])
combined_message
=
tf
.
concat
([
message
,
key
]
,
1
)
else
:
else
:
combined_message
=
message
combined_message
=
message
# Ensure that all variables created are in the specified collection.
# Ensure that all variables created are in the specified collection.
with
tf
.
contrib
.
framework
.
arg_scope
(
with
tf
.
contrib
.
framework
.
arg_scope
(
[
tf
.
contrib
.
layers
.
fully_connected
,
tf
.
contrib
.
layers
.
convolution
],
[
tf
.
contrib
.
layers
.
fully_connected
,
tf
.
contrib
.
layers
.
convolution
2d
],
variables_collections
=
[
collection
]):
variables_collections
=
[
collection
]):
fc
=
tf
.
contrib
.
layers
.
fully_connected
(
fc
=
tf
.
contrib
.
layers
.
fully_connected
(
...
@@ -147,13 +147,13 @@ class AdversarialCrypto(object):
...
@@ -147,13 +147,13 @@ class AdversarialCrypto(object):
# and then squeezing it back down).
# and then squeezing it back down).
fc
=
tf
.
expand_dims
(
fc
,
2
)
fc
=
tf
.
expand_dims
(
fc
,
2
)
# 2,1 -> 1,2
# 2,1 -> 1,2
conv
=
tf
.
contrib
.
layers
.
convolution
(
conv
=
tf
.
contrib
.
layers
.
convolution
2d
(
fc
,
2
,
2
,
2
,
'SAME'
,
activation_fn
=
tf
.
nn
.
sigmoid
)
fc
,
2
,
2
,
2
,
'SAME'
,
activation_fn
=
tf
.
nn
.
sigmoid
)
# 1,2 -> 1, 2
# 1,2 -> 1, 2
conv
=
tf
.
contrib
.
layers
.
convolution
(
conv
=
tf
.
contrib
.
layers
.
convolution
2d
(
conv
,
2
,
1
,
1
,
'SAME'
,
activation_fn
=
tf
.
nn
.
sigmoid
)
conv
,
2
,
1
,
1
,
'SAME'
,
activation_fn
=
tf
.
nn
.
sigmoid
)
# 1,2 -> 1, 1
# 1,2 -> 1, 1
conv
=
tf
.
contrib
.
layers
.
convolution
(
conv
=
tf
.
contrib
.
layers
.
convolution
2d
(
conv
,
1
,
1
,
1
,
'SAME'
,
activation_fn
=
tf
.
nn
.
tanh
)
conv
,
1
,
1
,
1
,
'SAME'
,
activation_fn
=
tf
.
nn
.
tanh
)
conv
=
tf
.
squeeze
(
conv
,
2
)
conv
=
tf
.
squeeze
(
conv
,
2
)
return
conv
return
conv
...
...
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