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3dc54af2
编写于
9月 25, 2018
作者:
G
gongweibao
浏览文件
操作
浏览文件
下载
差异文件
merge
上级
6ba86617
3fa68dc1
变更
9
隐藏空白更改
内联
并排
Showing
9 changed file
with
144 addition
and
120 deletion
+144
-120
paddle/fluid/API.spec
paddle/fluid/API.spec
+10
-5
paddle/fluid/inference/api/api_impl.cc
paddle/fluid/inference/api/api_impl.cc
+15
-51
paddle/fluid/inference/api/helper.h
paddle/fluid/inference/api/helper.h
+11
-8
paddle/fluid/inference/tests/api/tester_helper.h
paddle/fluid/inference/tests/api/tester_helper.h
+3
-9
paddle/scripts/paddle_build.sh
paddle/scripts/paddle_build.sh
+4
-2
python/paddle/fluid/framework.py
python/paddle/fluid/framework.py
+0
-1
python/paddle/fluid/layers/nn.py
python/paddle/fluid/layers/nn.py
+72
-19
python/paddle/fluid/parallel_executor.py
python/paddle/fluid/parallel_executor.py
+1
-22
python/paddle/fluid/param_attr.py
python/paddle/fluid/param_attr.py
+28
-3
未找到文件。
paddle/fluid/API.spec
浏览文件 @
3dc54af2
...
...
@@ -22,9 +22,6 @@ paddle.fluid.Operator.rename_input ArgSpec(args=['self', 'old_name', 'new_name']
paddle.fluid.Operator.rename_output ArgSpec(args=['self', 'old_name', 'new_name'], varargs=None, keywords=None, defaults=None)
paddle.fluid.Operator.set_attr ArgSpec(args=['self', 'name', 'val'], varargs=None, keywords=None, defaults=None)
paddle.fluid.Operator.to_string ArgSpec(args=['self', 'throw_on_error'], varargs=None, keywords=None, defaults=None)
paddle.fluid.Parameter.__init__ ArgSpec(args=['self', 'block', 'shape', 'dtype'], varargs=None, keywords='kwargs', defaults=None)
paddle.fluid.Parameter.astype ArgSpec(args=['self', 'dtype'], varargs=None, keywords=None, defaults=None)
paddle.fluid.Parameter.to_string ArgSpec(args=['self', 'throw_on_error', 'with_details'], varargs=None, keywords=None, defaults=(False,))
paddle.fluid.default_startup_program ArgSpec(args=[], varargs=None, keywords=None, defaults=None)
paddle.fluid.default_main_program ArgSpec(args=[], varargs=None, keywords=None, defaults=None)
paddle.fluid.program_guard ArgSpec(args=[], varargs='args', keywords='kwds', defaults=None)
...
...
@@ -44,7 +41,7 @@ paddle.fluid.DistributeTranspiler.transpile ArgSpec(args=['self', 'trainer_id',
paddle.fluid.memory_optimize ArgSpec(args=['input_program', 'skip_opt_set', 'print_log', 'level'], varargs=None, keywords=None, defaults=(None, False, 0))
paddle.fluid.release_memory ArgSpec(args=['input_program', 'skip_opt_set'], varargs=None, keywords=None, defaults=(None,))
paddle.fluid.DistributeTranspilerConfig.__init__
paddle.fluid.ParallelExecutor.__init__ ArgSpec(args=['self', 'use_cuda', 'loss_name', 'main_program', 'share_vars_from', 'exec_strategy', 'build_strategy', 'num_trainers', 'trainer_id', 'scope'], varargs=None, keywords=
'kwargs'
, defaults=(None, None, None, None, None, 1, 0, None))
paddle.fluid.ParallelExecutor.__init__ ArgSpec(args=['self', 'use_cuda', 'loss_name', 'main_program', 'share_vars_from', 'exec_strategy', 'build_strategy', 'num_trainers', 'trainer_id', 'scope'], varargs=None, keywords=
None
, defaults=(None, None, None, None, None, 1, 0, None))
paddle.fluid.ParallelExecutor.run ArgSpec(args=['self', 'fetch_list', 'feed', 'feed_dict', 'return_numpy'], varargs=None, keywords=None, defaults=(None, None, True))
paddle.fluid.ExecutionStrategy.__init__ __init__(self: paddle.fluid.core.ExecutionStrategy) -> None
paddle.fluid.BuildStrategy.GradientScaleStrategy.__init__ __init__(self: paddle.fluid.core.GradientScaleStrategy, arg0: int) -> None
...
...
@@ -180,6 +177,14 @@ paddle.fluid.layers.elementwise_mul ArgSpec(args=['x', 'y', 'axis', 'use_mkldnn'
paddle.fluid.layers.elementwise_max ArgSpec(args=['x', 'y', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(-1, False, None, None))
paddle.fluid.layers.elementwise_min ArgSpec(args=['x', 'y', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(-1, False, None, None))
paddle.fluid.layers.elementwise_pow ArgSpec(args=['x', 'y', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(-1, False, None, None))
paddle.fluid.layers.scale ArgSpec(args=['x', 'scale', 'bias', 'bias_after_scale', 'out', 'act', 'name'], varargs=None, keywords=None, defaults=(1.0, 0.0, True, None, None, None))
paddle.fluid.layers.elementwise_add ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.elementwise_div ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.elementwise_sub ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.elementwise_mul ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.elementwise_max ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.elementwise_min ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.elementwise_pow ArgSpec(args=['x', 'y', 'out', 'axis', 'use_mkldnn', 'act', 'name'], varargs=None, keywords=None, defaults=(None, -1, False, None, None))
paddle.fluid.layers.data ArgSpec(args=['name', 'shape', 'append_batch_size', 'dtype', 'lod_level', 'type', 'stop_gradient'], varargs=None, keywords=None, defaults=(True, 'float32', 0, VarType.LOD_TENSOR, True))
paddle.fluid.layers.open_files ArgSpec(args=['filenames', 'shapes', 'lod_levels', 'dtypes', 'thread_num', 'buffer_size', 'pass_num', 'is_test'], varargs=None, keywords=None, defaults=(None, None, 1, None))
paddle.fluid.layers.read_file ArgSpec(args=['reader'], varargs=None, keywords=None, defaults=None)
...
...
@@ -377,7 +382,7 @@ paddle.fluid.CPUPlace.__init__ __init__(self: paddle.fluid.core.CPUPlace) -> Non
paddle.fluid.CUDAPlace.__init__ __init__(self: paddle.fluid.core.CUDAPlace, arg0: int) -> None
paddle.fluid.CUDAPinnedPlace.__init__ __init__(self: paddle.fluid.core.CUDAPinnedPlace) -> None
paddle.fluid.ParamAttr.__init__ ArgSpec(args=['self', 'name', 'initializer', 'learning_rate', 'regularizer', 'trainable', 'gradient_clip', 'do_model_average'], varargs=None, keywords=None, defaults=(None, None, 1.0, None, True, None, False))
paddle.fluid.WeightNormParamAttr.__init__ ArgSpec(args=['self', 'dim'
], varargs=None, keywords='kwargs', defaults=(None,
))
paddle.fluid.WeightNormParamAttr.__init__ ArgSpec(args=['self', 'dim'
, 'name', 'initializer', 'learning_rate', 'regularizer', 'trainable', 'gradient_clip', 'do_model_average'], varargs=None, keywords=None, defaults=(None, None, None, 1.0, None, True, None, False
))
paddle.fluid.DataFeeder.__init__ ArgSpec(args=['self', 'feed_list', 'place', 'program'], varargs=None, keywords=None, defaults=(None,))
paddle.fluid.DataFeeder.decorate_reader ArgSpec(args=['self', 'reader', 'multi_devices', 'num_places', 'drop_last'], varargs=None, keywords=None, defaults=(None, True))
paddle.fluid.DataFeeder.feed ArgSpec(args=['self', 'iterable'], varargs=None, keywords=None, defaults=None)
...
...
paddle/fluid/inference/api/api_impl.cc
浏览文件 @
3dc54af2
...
...
@@ -22,6 +22,7 @@ limitations under the License. */
#include "paddle/fluid/framework/feed_fetch_method.h"
#include "paddle/fluid/inference/api/api_impl.h"
#include "paddle/fluid/inference/api/helper.h"
#include "paddle/fluid/inference/api/timer.h"
#include "paddle/fluid/platform/profiler.h"
...
...
@@ -215,57 +216,20 @@ bool NativePaddlePredictor::SetFeed(const std::vector<PaddleTensor> &inputs,
template
<
typename
T
>
void
NativePaddlePredictor
::
GetFetchOne
(
const
framework
::
LoDTensor
&
fetch
,
PaddleTensor
*
output
)
{
std
::
vector
<
int
>
shape
;
auto
dims_i
=
fetch
.
dims
();
auto
lod
=
fetch
.
lod
();
const
T
*
output_ptr
=
fetch
.
data
<
T
>
();
auto
num
=
fetch
.
numel
();
std
::
vector
<
T
>
data
;
if
(
0
==
lod
.
size
())
{
std
::
copy
(
output_ptr
,
output_ptr
+
num
,
std
::
back_inserter
(
data
));
for
(
int
j
=
0
;
j
<
dims_i
.
size
();
++
j
)
{
shape
.
push_back
(
dims_i
[
j
]);
}
}
else
{
// for batch detection
// image[0] -> output[0] shape {145, 6}
// image[1] -> output[1] shape {176, 6}
// then,
// the batch output shape {321, 6}
// the lod {{0, 145, 321}}
// so we should append output[0] to {176, 6}
size_t
max_dim
=
0
;
for
(
size_t
j
=
1
;
j
<
lod
[
0
].
size
();
j
++
)
{
max_dim
=
std
::
max
(
max_dim
,
lod
[
0
][
j
]
-
lod
[
0
][
j
-
1
]);
}
size_t
common_dim
=
lod
[
0
].
back
()
==
0
?
0
:
num
/
lod
[
0
].
back
();
if
(
max_dim
>
0
)
{
data
.
resize
((
lod
[
0
].
size
()
-
1
)
*
max_dim
*
common_dim
,
0
);
}
for
(
size_t
j
=
1
;
j
<
lod
[
0
].
size
();
j
++
)
{
size_t
start
=
lod
[
0
][
j
-
1
]
*
common_dim
;
size_t
end
=
lod
[
0
][
j
]
*
common_dim
;
if
(
end
>
start
)
{
std
::
copy
(
output_ptr
+
start
,
output_ptr
+
end
,
data
.
begin
()
+
(
j
-
1
)
*
max_dim
*
common_dim
);
}
}
shape
.
push_back
(
lod
[
0
].
size
()
-
1
);
shape
.
push_back
(
max_dim
);
for
(
int
j
=
1
;
j
<
dims_i
.
size
();
++
j
)
{
shape
.
push_back
(
dims_i
[
j
]);
}
}
output
->
shape
=
shape
;
auto
&
buffer
=
output
->
data
;
if
(
buffer
.
empty
()
||
buffer
.
length
()
<
sizeof
(
T
)
*
data
.
size
())
{
buffer
.
Resize
(
sizeof
(
T
)
*
data
.
size
());
}
std
::
memcpy
(
buffer
.
data
(),
data
.
data
(),
sizeof
(
T
)
*
data
.
size
());
// copy LoD
for
(
const
auto
&
level
:
fetch
.
lod
())
{
output
->
lod
.
emplace_back
(
level
);
// set shape.
auto
shape
=
framework
::
vectorize
(
fetch
.
dims
());
output
->
shape
.
assign
(
shape
.
begin
(),
shape
.
end
());
// set data.
const
T
*
data
=
fetch
.
data
<
T
>
();
int
num_elems
=
inference
::
VecReduceToInt
(
shape
);
output
->
data
.
Resize
(
num_elems
*
sizeof
(
T
));
// The fetched tensor output by fetch op, should always in CPU memory, so just
// copy.
memcpy
(
output
->
data
.
data
(),
data
,
num_elems
*
sizeof
(
T
));
// set lod
output
->
lod
.
clear
();
for
(
auto
&
level
:
fetch
.
lod
())
{
output
->
lod
.
emplace_back
(
level
.
begin
(),
level
.
end
());
}
}
...
...
paddle/fluid/inference/api/helper.h
浏览文件 @
3dc54af2
...
...
@@ -74,13 +74,17 @@ template <>
std
::
string
to_string
<
std
::
vector
<
std
::
vector
<
float
>>>
(
const
std
::
vector
<
std
::
vector
<
std
::
vector
<
float
>>>
&
vec
);
template
<
typename
T
>
int
VecReduceToInt
(
const
std
::
vector
<
T
>
&
v
)
{
return
std
::
accumulate
(
v
.
begin
(),
v
.
end
(),
1
,
[](
T
a
,
T
b
)
{
return
a
*
b
;
});
}
template
<
typename
T
>
static
void
TensorAssignData
(
PaddleTensor
*
tensor
,
const
std
::
vector
<
std
::
vector
<
T
>>
&
data
)
{
// Assign buffer
int
dim
=
std
::
accumulate
(
tensor
->
shape
.
begin
(),
tensor
->
shape
.
end
(),
1
,
[](
int
a
,
int
b
)
{
return
a
*
b
;
});
tensor
->
data
.
Resize
(
sizeof
(
T
)
*
dim
);
int
num_elems
=
VecReduceToInt
(
tensor
->
shape
);
tensor
->
data
.
Resize
(
sizeof
(
T
)
*
num_elems
);
int
c
=
0
;
for
(
const
auto
&
f
:
data
)
{
for
(
T
v
:
f
)
{
...
...
@@ -89,7 +93,7 @@ static void TensorAssignData(PaddleTensor *tensor,
}
}
std
::
string
DescribeTensor
(
const
PaddleTensor
&
tensor
)
{
st
atic
st
d
::
string
DescribeTensor
(
const
PaddleTensor
&
tensor
)
{
std
::
stringstream
os
;
os
<<
"Tensor ["
<<
tensor
.
name
<<
"]
\n
"
;
os
<<
" - type: "
;
...
...
@@ -113,8 +117,7 @@ std::string DescribeTensor(const PaddleTensor &tensor) {
os
<<
"
\n
"
;
os
<<
" - data: "
;
int
dim
=
std
::
accumulate
(
tensor
.
shape
.
begin
(),
tensor
.
shape
.
end
(),
1
,
[](
int
a
,
int
b
)
{
return
a
*
b
;
});
int
dim
=
VecReduceToInt
(
tensor
.
shape
);
for
(
int
i
=
0
;
i
<
dim
;
i
++
)
{
os
<<
static_cast
<
float
*>
(
tensor
.
data
.
data
())[
i
]
<<
" "
;
}
...
...
@@ -122,8 +125,8 @@ std::string DescribeTensor(const PaddleTensor &tensor) {
return
os
.
str
();
}
void
PrintTime
(
int
batch_size
,
int
repeat
,
int
num_threads
,
int
tid
,
double
latency
,
int
epoch
=
1
)
{
static
void
PrintTime
(
int
batch_size
,
int
repeat
,
int
num_threads
,
int
tid
,
double
latency
,
int
epoch
=
1
)
{
LOG
(
INFO
)
<<
"====== batch_size: "
<<
batch_size
<<
", repeat: "
<<
repeat
<<
", threads: "
<<
num_threads
<<
", thread id: "
<<
tid
<<
", latency: "
<<
latency
<<
"ms ======"
;
...
...
paddle/fluid/inference/tests/api/tester_helper.h
浏览文件 @
3dc54af2
...
...
@@ -47,11 +47,8 @@ void CompareResult(const std::vector<PaddleTensor> &outputs,
for
(
size_t
i
=
0
;
i
<
outputs
.
size
();
i
++
)
{
auto
&
out
=
outputs
[
i
];
auto
&
ref_out
=
ref_outputs
[
i
];
size_t
size
=
std
::
accumulate
(
out
.
shape
.
begin
(),
out
.
shape
.
end
(),
1
,
[](
int
a
,
int
b
)
{
return
a
*
b
;
});
size_t
ref_size
=
std
::
accumulate
(
ref_out
.
shape
.
begin
(),
ref_out
.
shape
.
end
(),
1
,
[](
int
a
,
int
b
)
{
return
a
*
b
;
});
size_t
size
=
VecReduceToInt
(
out
.
shape
);
size_t
ref_size
=
VecReduceToInt
(
ref_out
.
shape
);
EXPECT_GT
(
size
,
0
);
EXPECT_EQ
(
size
,
ref_size
);
EXPECT_EQ
(
out
.
dtype
,
ref_out
.
dtype
);
...
...
@@ -87,10 +84,7 @@ std::unique_ptr<PaddlePredictor> CreateTestPredictor(
}
}
size_t
GetSize
(
const
PaddleTensor
&
out
)
{
return
std
::
accumulate
(
out
.
shape
.
begin
(),
out
.
shape
.
end
(),
1
,
[](
int
a
,
int
b
)
{
return
a
*
b
;
});
}
size_t
GetSize
(
const
PaddleTensor
&
out
)
{
return
VecReduceToInt
(
out
.
shape
);
}
std
::
unordered_map
<
std
::
string
,
int
>
GetFuseStatis
(
AnalysisConfig
config
,
int
*
num_ops
)
{
...
...
paddle/scripts/paddle_build.sh
浏览文件 @
3dc54af2
...
...
@@ -147,6 +147,7 @@ function cmake_gen() {
-DINFERENCE_DEMO_INSTALL_DIR=
${
INFERENCE_DEMO_INSTALL_DIR
}
-DWITH_ANAKIN=
${
WITH_ANAKIN
:-
OFF
}
-DPY_VERSION=
${
PY_VERSION
:-
2
.7
}
-DCMAKE_INSTALL_PREFIX=
${
INSTALL_PREFIX
:-
/paddle/build
}
========================================
EOF
# Disable UNITTEST_USE_VIRTUALENV in docker because
...
...
@@ -178,7 +179,8 @@ EOF
-DWITH_INFERENCE_API_TEST
=
${
WITH_INFERENCE_API_TEST
:-
ON
}
\
-DINFERENCE_DEMO_INSTALL_DIR
=
${
INFERENCE_DEMO_INSTALL_DIR
}
\
-DWITH_ANAKIN
=
${
WITH_ANAKIN
:-
OFF
}
\
-DPY_VERSION
=
${
PY_VERSION
:-
2
.7
}
-DPY_VERSION
=
${
PY_VERSION
:-
2
.7
}
\
-DCMAKE_INSTALL_PREFIX
=
${
INSTALL_PREFIX
:-
/paddle/build
}
}
...
...
@@ -361,7 +363,7 @@ EOF
ctest
--output-on-failure
# make install should also be test when unittest
make
install
-j
`
nproc
`
pip
install
/usr/local
/opt/paddle/share/wheels/
*
.whl
pip
install
${
INSTALL_PREFIX
:-
/paddle/build
}
/opt/paddle/share/wheels/
*
.whl
if
[[
${
WITH_FLUID_ONLY
:-
OFF
}
==
"OFF"
]]
;
then
paddle version
fi
...
...
python/paddle/fluid/framework.py
浏览文件 @
3dc54af2
...
...
@@ -38,7 +38,6 @@ from . import unique_name
__all__
=
[
'Program'
,
'Operator'
,
'Parameter'
,
'default_startup_program'
,
'default_main_program'
,
'program_guard'
,
...
...
python/paddle/fluid/layers/nn.py
浏览文件 @
3dc54af2
...
...
@@ -6669,12 +6669,14 @@ def _elementwise_op(helper):
assert
y
is
not
None
,
'y cannot be None in {}'
.
format
(
op_type
)
axis
=
helper
.
kwargs
.
get
(
'axis'
,
-
1
)
use_mkldnn
=
helper
.
kwargs
.
get
(
'use_mkldnn'
,
False
)
name
=
helper
.
kwargs
.
get
(
'name'
,
None
)
if
name
is
None
:
out
=
helper
.
create_tmp_variable
(
dtype
=
x
.
dtype
)
else
:
out
=
helper
.
create_variable
(
name
=
name
,
dtype
=
x
.
dtype
,
persistable
=
False
)
out
=
helper
.
kwargs
.
get
(
'out'
,
None
)
if
out
is
None
:
name
=
helper
.
kwargs
.
get
(
'name'
,
None
)
if
name
is
None
:
out
=
helper
.
create_tmp_variable
(
dtype
=
x
.
dtype
)
else
:
out
=
helper
.
create_variable
(
name
=
name
,
dtype
=
x
.
dtype
,
persistable
=
False
)
helper
.
append_op
(
type
=
op_type
,
...
...
@@ -6687,7 +6689,13 @@ def _elementwise_op(helper):
@
templatedoc
()
def
scale
(
x
,
scale
=
1.0
,
bias
=
0.0
,
bias_after_scale
=
True
,
act
=
None
,
name
=
None
):
def
scale
(
x
,
scale
=
1.0
,
bias
=
0.0
,
bias_after_scale
=
True
,
out
=
None
,
act
=
None
,
name
=
None
):
"""
${comment}
...
...
@@ -6696,6 +6704,7 @@ def scale(x, scale=1.0, bias=0.0, bias_after_scale=True, act=None, name=None):
scale(${scale_type}): ${scale_comment}
bias(${bias_type}): ${bias_comment}
bias_after_scale(${bias_after_scale_type}): ${bias_after_scale_comment}
out(Tensor): Output tensor.
act(basestring|None): Activation applied to the output.
name(basestring|None): Name of the output.
...
...
@@ -6704,11 +6713,12 @@ def scale(x, scale=1.0, bias=0.0, bias_after_scale=True, act=None, name=None):
"""
helper
=
LayerHelper
(
'scale'
,
**
locals
())
if
name
is
None
:
out
=
helper
.
create_tmp_variable
(
dtype
=
x
.
dtype
)
else
:
out
=
helper
.
create_variable
(
name
=
name
,
dtype
=
x
.
dtype
,
persistable
=
False
)
if
out
is
None
:
if
name
is
None
:
out
=
helper
.
create_tmp_variable
(
dtype
=
x
.
dtype
)
else
:
out
=
helper
.
create_variable
(
name
=
name
,
dtype
=
x
.
dtype
,
persistable
=
False
)
helper
.
append_op
(
type
=
'scale'
,
...
...
@@ -6722,31 +6732,73 @@ def scale(x, scale=1.0, bias=0.0, bias_after_scale=True, act=None, name=None):
return
helper
.
append_activation
(
out
)
def
elementwise_add
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_add
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_add'
,
**
locals
()))
def
elementwise_div
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_div
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_div'
,
**
locals
()))
def
elementwise_sub
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_sub
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_sub'
,
**
locals
()))
def
elementwise_mul
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_mul
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_mul'
,
**
locals
()))
def
elementwise_max
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_max
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_max'
,
**
locals
()))
def
elementwise_min
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_min
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_min'
,
**
locals
()))
def
elementwise_pow
(
x
,
y
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
def
elementwise_pow
(
x
,
y
,
out
=
None
,
axis
=-
1
,
use_mkldnn
=
False
,
act
=
None
,
name
=
None
):
return
_elementwise_op
(
LayerHelper
(
'elementwise_pow'
,
**
locals
()))
...
...
@@ -6758,6 +6810,7 @@ for func in [
func
.
__doc__
=
_generate_doc_string_
(
op_proto
,
additional_args_lines
=
[
"out (Tensor): The output tensor of elementwise op."
,
"act (basestring|None): Activation applied to the output."
,
"name (basestring|None): Name of the output."
])
python/paddle/fluid/parallel_executor.py
浏览文件 @
3dc54af2
...
...
@@ -74,28 +74,7 @@ class ParallelExecutor(object):
build_strategy
=
None
,
num_trainers
=
1
,
trainer_id
=
0
,
scope
=
None
,
**
kwargs
):
if
len
(
kwargs
)
!=
0
:
err_msg
=
""
for
key
in
kwargs
:
if
key
in
dir
(
ExecutionStrategy
):
err_msg
+=
\
"Setting {0} by constructor is deprecated. Use "
\
"strategy=ExecutionStrategy(); strategy.{0}=xxx; "
\
"pe=ParallelExecutor(exec_strategy=strategy) "
\
"instead.
\n
"
.
format
(
key
)
elif
key
in
dir
(
BuildStrategy
):
err_msg
+=
\
"Setting {0} by constructor is deprecated. Use "
\
"strategy=BuildStrategy(); See help("
\
"paddle.fluid.ParallelExecutor.BuildStrategy)
\n
"
.
format
(
key
)
else
:
err_msg
+=
"Setting {0} by constructor is deprecated. Use strategy.
\n
"
.
format
(
key
)
raise
ValueError
(
err_msg
)
scope
=
None
):
self
.
_places
=
[]
self
.
_act_places
=
[]
if
use_cuda
:
...
...
python/paddle/fluid/param_attr.py
浏览文件 @
3dc54af2
...
...
@@ -185,7 +185,17 @@ class WeightNormParamAttr(ParamAttr):
Args:
dim(list): The parameter's name. Default None.
kwargs: Any field in ParamAttr. Default None.
name(str): The parameter's name. Default None.
initializer(Initializer): The method to initial this parameter. Default None.
learning_rate(float): The parameter's learning rate. The learning rate when
optimize is :math:`global\_lr * parameter\_lr * scheduler\_factor`.
Default 1.0.
regularizer(WeightDecayRegularizer): Regularization factor. Default None.
trainable(bool): Whether this parameter is trainable. Default True.
gradient_clip(BaseGradientClipAttr): The method to clip this parameter's
gradient. Default None.
do_model_average(bool): Whether this parameter should do model average.
Default False.
Examples:
.. code-block:: python
...
...
@@ -204,6 +214,21 @@ class WeightNormParamAttr(ParamAttr):
# these paramters for inference.
params_with_weight_norm
=
[]
def
__init__
(
self
,
dim
=
None
,
**
kwargs
):
super
(
WeightNormParamAttr
,
self
).
__init__
(
**
kwargs
)
def
__init__
(
self
,
dim
=
None
,
name
=
None
,
initializer
=
None
,
learning_rate
=
1.0
,
regularizer
=
None
,
trainable
=
True
,
gradient_clip
=
None
,
do_model_average
=
False
):
super
(
WeightNormParamAttr
,
self
).
__init__
(
name
=
name
,
initializer
=
initializer
,
learning_rate
=
learning_rate
,
regularizer
=
regularizer
,
trainable
=
trainable
,
gradient_clip
=
gradient_clip
,
do_model_average
=
do_model_average
)
self
.
dim
=
dim
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