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0702f0ea
编写于
5月 12, 2020
作者:
C
Channingss
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
support export_onnx
上级
d83371a2
变更
4
显示空白变更内容
内联
并排
Showing
4 changed file
with
14 addition
and
129 deletion
+14
-129
paddlex/__init__.py
paddlex/__init__.py
+7
-3
paddlex/command.py
paddlex/command.py
+1
-5
paddlex/cv/models/base.py
paddlex/cv/models/base.py
+3
-115
paddlex/cv/models/load_model.py
paddlex/cv/models/load_model.py
+3
-6
未找到文件。
paddlex/__init__.py
浏览文件 @
0702f0ea
...
...
@@ -19,18 +19,22 @@ from . import det
from
.
import
seg
from
.
import
cls
from
.
import
slim
from
.
import
convertor
try
:
import
pycocotools
except
:
print
(
"[WARNING] pycocotools is not installed, detection model is not available now."
)
print
(
"[WARNING] pycocotools install: https://github.com/PaddlePaddle/PaddleX/blob/develop/docs/install.md"
)
print
(
"[WARNING] pycocotools is not installed, detection model is not available now."
)
print
(
"[WARNING] pycocotools install: https://github.com/PaddlePaddle/PaddleX/blob/develop/docs/install.md"
)
import
paddlehub
as
hub
if
hub
.
version
.
hub_version
<
'1.6.2'
:
raise
Exception
(
"[ERROR] paddlehub >= 1.6.2 is required"
)
env_info
=
get_environ_info
()
load_model
=
cv
.
models
.
load_model
datasets
=
cv
.
datasets
...
...
paddlex/command.py
浏览文件 @
0702f0ea
...
...
@@ -83,12 +83,8 @@ def main():
fixed_input_shape
=
eval
(
args
.
fixed_input_shape
)
assert
len
(
fixed_input_shape
)
==
2
,
"len of fixed input shape must == 2"
model
=
pdx
.
load_model
(
args
.
model_dir
,
fixed_input_shape
)
model_name
=
os
.
path
.
basename
(
args
.
model_dir
.
strip
(
'/'
)).
split
(
'/'
)[
-
1
]
onnx_name
=
model_name
+
'.onnx'
model
.
export_onnx_model
(
args
.
save_dir
,
onnx_name
=
onnx_name
)
pdx
.
convertor
.
export_onnx_model
(
model
,
args
.
save_dir
)
if
__name__
==
"__main__"
:
...
...
paddlex/cv/models/base.py
浏览文件 @
0702f0ea
...
...
@@ -223,6 +223,9 @@ class BaseAPI:
del
self
.
init_params
[
'self'
]
if
'__class__'
in
self
.
init_params
:
del
self
.
init_params
[
'__class__'
]
if
'model_name'
in
self
.
init_params
:
del
self
.
init_params
[
'model_name'
]
info
[
'_init_params'
]
=
self
.
init_params
info
[
'_Attributes'
][
'num_classes'
]
=
self
.
num_classes
...
...
@@ -328,121 +331,6 @@ class BaseAPI:
logging
.
info
(
"Model for inference deploy saved in {}."
.
format
(
save_dir
))
def
export_onnx_model
(
self
,
save_dir
,
onnx_name
=
None
):
from
fluid.utils
import
op_io_info
,
init_name_prefix
from
onnx
import
helper
,
checker
import
fluid_onnx.ops
as
ops
from
fluid_onnx.variables
import
paddle_variable_to_onnx_tensor
,
paddle_onnx_weight
from
debug.model_check
import
debug_model
,
Tracker
place
=
fluid
.
CPUPlace
()
exe
=
fluid
.
Executor
(
place
)
inference_scope
=
fluid
.
global_scope
()
with
fluid
.
scope_guard
(
inference_scope
):
test_input_names
=
[
var
.
name
for
var
in
list
(
self
.
test_inputs
.
values
())
]
inputs_outputs_list
=
[
"fetch"
,
"feed"
]
weights
,
weights_value_info
=
[],
[]
global_block
=
self
.
test_prog
.
global_block
()
for
var_name
in
global_block
.
vars
:
var
=
global_block
.
var
(
var_name
)
if
var_name
not
in
test_input_names
\
and
var
.
persistable
:
weight
,
val_info
=
paddle_onnx_weight
(
var
=
var
,
scope
=
inference_scope
)
weights
.
append
(
weight
)
weights_value_info
.
append
(
val_info
)
# Create inputs
inputs
=
[
paddle_variable_to_onnx_tensor
(
v
,
global_block
)
for
v
in
test_input_names
]
print
(
"load the model parameter done."
)
onnx_nodes
=
[]
op_check_list
=
[]
op_trackers
=
[]
nms_first_index
=
-
1
nms_outputs
=
[]
for
block
in
self
.
test_prog
.
blocks
:
for
op
in
block
.
ops
:
if
op
.
type
in
ops
.
node_maker
:
# TODO(kuke): deal with the corner case that vars in
# different blocks have the same name
node_proto
=
ops
.
node_maker
[
str
(
op
.
type
)](
operator
=
op
,
block
=
block
)
op_outputs
=
[]
last_node
=
None
if
isinstance
(
node_proto
,
tuple
):
onnx_nodes
.
extend
(
list
(
node_proto
))
last_node
=
list
(
node_proto
)
else
:
onnx_nodes
.
append
(
node_proto
)
last_node
=
[
node_proto
]
tracker
=
Tracker
(
str
(
op
.
type
),
last_node
)
op_trackers
.
append
(
tracker
)
op_check_list
.
append
(
str
(
op
.
type
))
if
op
.
type
==
"multiclass_nms"
and
nms_first_index
<
0
:
nms_first_index
=
0
if
nms_first_index
>=
0
:
_
,
_
,
output_op
=
op_io_info
(
op
)
for
output
in
output_op
:
nms_outputs
.
extend
(
output_op
[
output
])
else
:
if
op
.
type
not
in
[
'feed'
,
'fetch'
]:
op_check_list
.
append
(
op
.
type
)
print
(
'The operator sets to run test case.'
)
print
(
set
(
op_check_list
))
# Create outputs
# Get the new names for outputs if they've been renamed in nodes' making
renamed_outputs
=
op_io_info
.
get_all_renamed_outputs
()
test_outputs
=
list
(
self
.
test_outputs
.
values
())
test_outputs_names
=
[
var
.
name
for
var
in
self
.
test_outputs
.
values
()
]
test_outputs_names
=
[
name
if
name
not
in
renamed_outputs
else
renamed_outputs
[
name
]
for
name
in
test_outputs_names
]
outputs
=
[
paddle_variable_to_onnx_tensor
(
v
,
global_block
)
for
v
in
test_outputs_names
]
# Make graph
onnx_graph
=
helper
.
make_graph
(
nodes
=
onnx_nodes
,
name
=
onnx_name
,
initializer
=
weights
,
inputs
=
inputs
+
weights_value_info
,
outputs
=
outputs
)
# Make model
onnx_model
=
helper
.
make_model
(
onnx_graph
,
producer_name
=
'PaddlePaddle'
)
# Model check
checker
.
check_model
(
onnx_model
)
# Print model
#if to_print_model:
# print("The converted model is:\n{}".format(onnx_model))
# Save converted model
if
onnx_model
is
not
None
:
try
:
onnx_model_file
=
osp
.
join
(
save_dir
,
onnx_name
)
if
not
os
.
path
.
exists
(
save_dir
):
os
.
mkdir
(
save_dir
)
with
open
(
onnx_model_file
,
'wb'
)
as
f
:
f
.
write
(
onnx_model
.
SerializeToString
())
print
(
"Saved converted model to path: %s"
%
onnx_model_file
)
except
Exception
as
e
:
print
(
e
)
print
(
"Convert Failed! Please use the debug message to find error."
)
sys
.
exit
(
-
1
)
def
train_loop
(
self
,
num_epochs
,
train_dataset
,
...
...
paddlex/cv/models/load_model.py
浏览文件 @
0702f0ea
...
...
@@ -38,12 +38,9 @@ def load_model(model_dir, fixed_input_shape=None):
if
not
hasattr
(
paddlex
.
cv
.
models
,
info
[
'Model'
]):
raise
Exception
(
"There's no attribute {} in paddlex.cv.models"
.
format
(
info
[
'Model'
]))
if
info
[
'_Attributes'
][
'model_type'
]
==
'classifier'
:
model
=
paddlex
.
cv
.
models
.
BaseClassifier
(
**
info
[
'_init_params'
])
else
:
model
=
getattr
(
paddlex
.
cv
.
models
,
info
[
'Model'
])(
**
info
[
'_init_params'
])
if
'model_name'
in
info
[
'_init_params'
]:
del
info
[
'_init_params'
][
'model_name'
]
model
=
getattr
(
paddlex
.
cv
.
models
,
info
[
'Model'
])(
**
info
[
'_init_params'
])
model
.
fixed_input_shape
=
fixed_input_shape
if
status
==
"Normal"
or
\
status
==
"Prune"
or
status
==
"fluid.save"
:
...
...
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