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ModelZoo
ResNet50_tensorflow
Commits
c33d3ef4
Unverified
Commit
c33d3ef4
authored
Apr 17, 2019
by
Haoyu Zhang
Committed by
GitHub
Apr 17, 2019
Browse files
Update logic to rescale L2 loss in distribution strategy (#6601)
parent
2ae6d37a
Changes
1
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-4
official/resnet/resnet_run_loop.py
official/resnet/resnet_run_loop.py
+2
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official/resnet/resnet_run_loop.py
View file @
c33d3ef4
...
@@ -419,16 +419,14 @@ def resnet_model_fn(features, labels, mode, model_class,
...
@@ -419,16 +419,14 @@ def resnet_model_fn(features, labels, mode, model_class,
return
'batch_normalization'
not
in
name
return
'batch_normalization'
not
in
name
loss_filter_fn
=
loss_filter_fn
or
exclude_batch_norm
loss_filter_fn
=
loss_filter_fn
or
exclude_batch_norm
# Add weight decay to the loss. We need to scale the regularization loss
# Add weight decay to the loss.
# manually as losses other than in tf.losses and tf.keras.losses don't scale
# automatically.
l2_loss
=
weight_decay
*
tf
.
add_n
(
l2_loss
=
weight_decay
*
tf
.
add_n
(
# loss is computed using fp32 for numerical stability.
# loss is computed using fp32 for numerical stability.
[
[
tf
.
nn
.
l2_loss
(
tf
.
cast
(
v
,
tf
.
float32
))
tf
.
nn
.
l2_loss
(
tf
.
cast
(
v
,
tf
.
float32
))
for
v
in
tf
.
compat
.
v1
.
trainable_variables
()
for
v
in
tf
.
compat
.
v1
.
trainable_variables
()
if
loss_filter_fn
(
v
.
name
)
if
loss_filter_fn
(
v
.
name
)
])
/
tf
.
distribute
.
get_strategy
().
num_replicas_in_sync
])
tf
.
compat
.
v1
.
summary
.
scalar
(
'l2_loss'
,
l2_loss
)
tf
.
compat
.
v1
.
summary
.
scalar
(
'l2_loss'
,
l2_loss
)
loss
=
cross_entropy
+
l2_loss
loss
=
cross_entropy
+
l2_loss
...
...
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