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ModelZoo
ResNet50_tensorflow
Commits
f0899f18
"benchmark/git@developer.sourcefind.cn:change/sglang.git" did not exist on "cd8d4b9dfcefffe254c4e354e3a18c7a644c06bd"
Commit
f0899f18
authored
Feb 28, 2019
by
aquariusjay
Committed by
Yukun Zhu
Feb 28, 2019
Browse files
Update the codes due to recent change in DeepLab. (#6287)
parent
4b566d4e
Changes
5
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5 changed files
with
41 additions
and
20 deletions
+41
-20
research/feelvos/common.py
research/feelvos/common.py
+24
-0
research/feelvos/model.py
research/feelvos/model.py
+4
-3
research/feelvos/train.py
research/feelvos/train.py
+2
-2
research/feelvos/utils/embedding_utils.py
research/feelvos/utils/embedding_utils.py
+9
-13
research/feelvos/vis_video.py
research/feelvos/vis_video.py
+2
-2
No files found.
research/feelvos/common.py
View file @
f0899f18
...
@@ -137,3 +137,27 @@ class VideoModelOptions(common.ModelOptions):
...
@@ -137,3 +137,27 @@ class VideoModelOptions(common.ModelOptions):
self
.
classification_loss
=
FLAGS
.
classification_loss
self
.
classification_loss
=
FLAGS
.
classification_loss
return
self
return
self
def
parse_decoder_output_stride
():
"""Parses decoder output stride.
FEELVOS assumes decoder_output_stride = 4. Thus, this function is created for
this particular purpose.
Returns:
An integer specifying the decoder_output_stride.
Raises:
ValueError: If decoder_output_stride is None or contains more than one
element.
"""
if
FLAGS
.
decoder_output_stride
:
decoder_output_stride
=
[
int
(
x
)
for
x
in
FLAGS
.
decoder_output_stride
]
if
len
(
decoder_output_stride
)
!=
1
:
raise
ValueError
(
'Expect decoder output stride has only one element.'
)
decoder_output_stride
=
decoder_output_stride
[
0
]
else
:
raise
ValueError
(
'Expect flag decoder output stride not to be None.'
)
return
decoder_output_stride
research/feelvos/model.py
View file @
f0899f18
...
@@ -359,9 +359,10 @@ def multi_scale_logits_with_nearest_neighbor_matching(
...
@@ -359,9 +359,10 @@ def multi_scale_logits_with_nearest_neighbor_matching(
if
model_options
.
crop_size
else
tf
.
shape
(
images
)[
2
])
if
model_options
.
crop_size
else
tf
.
shape
(
images
)[
2
])
# Compute the height, width for the output logits.
# Compute the height, width for the output logits.
logits_output_stride
=
(
if
model_options
.
decoder_output_stride
:
model_options
.
decoder_output_stride
or
model_options
.
output_stride
)
logits_output_stride
=
min
(
model_options
.
decoder_output_stride
)
else
:
logits_output_stride
=
model_options
.
output_stride
logits_height
=
scale_dimension
(
logits_height
=
scale_dimension
(
crop_height
,
crop_height
,
max
(
1.0
,
max
(
image_pyramid
))
/
logits_output_stride
)
max
(
1.0
,
max
(
image_pyramid
))
/
logits_output_stride
)
...
...
research/feelvos/train.py
View file @
f0899f18
...
@@ -266,7 +266,7 @@ def _build_deeplab(inputs_queue_or_samples, outputs_to_num_classes,
...
@@ -266,7 +266,7 @@ def _build_deeplab(inputs_queue_or_samples, outputs_to_num_classes,
preceding_frame_label
[
n
,
tf
.
newaxis
],
preceding_frame_label
[
n
,
tf
.
newaxis
],
samples
[
common
.
LABEL
][
n
*
FLAGS
.
train_num_frames_per_video
,
samples
[
common
.
LABEL
][
n
*
FLAGS
.
train_num_frames_per_video
,
tf
.
newaxis
],
tf
.
newaxis
],
FLAGS
.
decoder_output_stride
,
common
.
parse_
decoder_output_stride
()
,
reduce_labels
=
True
)
reduce_labels
=
True
)
init_softmax_n
=
tf
.
squeeze
(
init_softmax_n
,
axis
=
0
)
init_softmax_n
=
tf
.
squeeze
(
init_softmax_n
,
axis
=
0
)
init_softmax
.
append
(
init_softmax_n
)
init_softmax
.
append
(
init_softmax_n
)
...
@@ -610,7 +610,7 @@ def _get_dataset_and_samples(config, train_crop_size, dataset_name,
...
@@ -610,7 +610,7 @@ def _get_dataset_and_samples(config, train_crop_size, dataset_name,
is_training
=
True
,
is_training
=
True
,
model_variant
=
FLAGS
.
model_variant
,
model_variant
=
FLAGS
.
model_variant
,
batch_capacity_factor
=
FLAGS
.
batch_capacity_factor
,
batch_capacity_factor
=
FLAGS
.
batch_capacity_factor
,
decoder_output_stride
=
FLAGS
.
decoder_output_stride
,
decoder_output_stride
=
common
.
parse_
decoder_output_stride
()
,
first_frame_finetuning
=
first_frame_finetuning
,
first_frame_finetuning
=
first_frame_finetuning
,
sample_only_first_frame_for_finetuning
=
sample_only_first_frame_for_finetuning
=
FLAGS
.
sample_only_first_frame_for_finetuning
,
FLAGS
.
sample_only_first_frame_for_finetuning
,
...
...
research/feelvos/utils/embedding_utils.py
View file @
f0899f18
...
@@ -482,20 +482,17 @@ def get_embeddings(images, model_options, embedding_dimension):
...
@@ -482,20 +482,17 @@ def get_embeddings(images, model_options, embedding_dimension):
is_training
=
False
)
is_training
=
False
)
if
model_options
.
decoder_output_stride
is
not
None
:
if
model_options
.
decoder_output_stride
is
not
None
:
decoder_output_stride
=
min
(
model_options
.
decoder_output_stride
)
if
model_options
.
crop_size
is
None
:
if
model_options
.
crop_size
is
None
:
height
=
tf
.
shape
(
images
)[
1
]
height
=
tf
.
shape
(
images
)[
1
]
width
=
tf
.
shape
(
images
)[
2
]
width
=
tf
.
shape
(
images
)[
2
]
else
:
else
:
height
,
width
=
model_options
.
crop_size
height
,
width
=
model_options
.
crop_size
decoder_height
=
model
.
scale_dimension
(
height
,
1.0
/
model_options
.
decoder_output_stride
)
decoder_width
=
model
.
scale_dimension
(
width
,
1.0
/
model_options
.
decoder_output_stride
)
features
=
model
.
refine_by_decoder
(
features
=
model
.
refine_by_decoder
(
features
,
features
,
end_points
,
end_points
,
decoder_height
=
decoder_height
,
crop_size
=
[
height
,
width
]
,
decoder_
width
=
decoder_width
,
decoder_
output_stride
=
[
decoder_output_stride
]
,
decoder_use_separable_conv
=
model_options
.
decoder_use_separable_conv
,
decoder_use_separable_conv
=
model_options
.
decoder_use_separable_conv
,
model_variant
=
model_options
.
model_variant
,
model_variant
=
model_options
.
model_variant
,
is_training
=
False
)
is_training
=
False
)
...
@@ -596,21 +593,20 @@ def get_logits_with_matching(images,
...
@@ -596,21 +593,20 @@ def get_logits_with_matching(images,
is_training
=
is_training
,
is_training
=
is_training
,
fine_tune_batch_norm
=
fine_tune_batch_norm
)
fine_tune_batch_norm
=
fine_tune_batch_norm
)
if
model_options
.
decoder_output_stride
is
not
None
:
if
model_options
.
decoder_output_stride
:
decoder_output_stride
=
min
(
model_options
.
decoder_output_stride
)
if
model_options
.
crop_size
is
None
:
if
model_options
.
crop_size
is
None
:
height
=
tf
.
shape
(
images
)[
1
]
height
=
tf
.
shape
(
images
)[
1
]
width
=
tf
.
shape
(
images
)[
2
]
width
=
tf
.
shape
(
images
)[
2
]
else
:
else
:
height
,
width
=
model_options
.
crop_size
height
,
width
=
model_options
.
crop_size
decoder_height
=
model
.
scale_dimension
(
decoder_height
=
model
.
scale_dimension
(
height
,
1.0
/
decoder_output_stride
)
height
,
1.0
/
model_options
.
decoder_output_stride
)
decoder_width
=
model
.
scale_dimension
(
width
,
1.0
/
decoder_output_stride
)
decoder_width
=
model
.
scale_dimension
(
width
,
1.0
/
model_options
.
decoder_output_stride
)
features
=
model
.
refine_by_decoder
(
features
=
model
.
refine_by_decoder
(
features
,
features
,
end_points
,
end_points
,
decoder_height
=
decoder_height
,
crop_size
=
[
height
,
width
]
,
decoder_
width
=
decoder_width
,
decoder_
output_stride
=
[
decoder_output_stride
]
,
decoder_use_separable_conv
=
model_options
.
decoder_use_separable_conv
,
decoder_use_separable_conv
=
model_options
.
decoder_use_separable_conv
,
model_variant
=
model_options
.
model_variant
,
model_variant
=
model_options
.
model_variant
,
weight_decay
=
weight_decay
,
weight_decay
=
weight_decay
,
...
...
research/feelvos/vis_video.py
View file @
f0899f18
...
@@ -222,7 +222,7 @@ def create_predictions(samples, reference_labels, first_frame_img,
...
@@ -222,7 +222,7 @@ def create_predictions(samples, reference_labels, first_frame_img,
init_labels
=
tf
.
squeeze
(
reference_labels
,
axis
=-
1
)
init_labels
=
tf
.
squeeze
(
reference_labels
,
axis
=-
1
)
init_softmax
=
embedding_utils
.
create_initial_softmax_from_labels
(
init_softmax
=
embedding_utils
.
create_initial_softmax_from_labels
(
reference_labels
,
reference_labels
,
FLAGS
.
decoder_output_stride
,
reference_labels
,
reference_labels
,
common
.
parse_
decoder_output_stride
()
,
reduce_labels
=
False
)
reduce_labels
=
False
)
if
FLAGS
.
save_embeddings
:
if
FLAGS
.
save_embeddings
:
decoder_height
=
tf
.
shape
(
init_softmax
)[
1
]
decoder_height
=
tf
.
shape
(
init_softmax
)[
1
]
...
@@ -298,7 +298,7 @@ def create_predictions_fast(samples, reference_labels, first_frame_img,
...
@@ -298,7 +298,7 @@ def create_predictions_fast(samples, reference_labels, first_frame_img,
first_frame_img
[
tf
.
newaxis
],
model_options
,
FLAGS
.
embedding_dimension
)
first_frame_img
[
tf
.
newaxis
],
model_options
,
FLAGS
.
embedding_dimension
)
init_labels
=
tf
.
squeeze
(
reference_labels
,
axis
=-
1
)
init_labels
=
tf
.
squeeze
(
reference_labels
,
axis
=-
1
)
init_softmax
=
embedding_utils
.
create_initial_softmax_from_labels
(
init_softmax
=
embedding_utils
.
create_initial_softmax_from_labels
(
reference_labels
,
reference_labels
,
FLAGS
.
decoder_output_stride
,
reference_labels
,
reference_labels
,
common
.
parse_
decoder_output_stride
()
,
reduce_labels
=
False
)
reduce_labels
=
False
)
init
=
(
init_labels
,
init_softmax
,
first_frame_embeddings
)
init
=
(
init_labels
,
init_softmax
,
first_frame_embeddings
)
...
...
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