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8edf60ce
编写于
9月 16, 2018
作者:
Y
Yibing Liu
浏览文件
操作
浏览文件
下载
差异文件
Merge branch 'develop' of upstream into fix_seq_pad
上级
ce773ed7
437debf4
变更
16
隐藏空白更改
内联
并排
Showing
16 changed file
with
269 addition
and
91 deletion
+269
-91
cmake/tensorrt.cmake
cmake/tensorrt.cmake
+2
-0
paddle/fluid/framework/ir/graph_pattern_detector.h
paddle/fluid/framework/ir/graph_pattern_detector.h
+1
-1
paddle/fluid/inference/api/api.cc
paddle/fluid/inference/api/api.cc
+9
-7
paddle/fluid/inference/tests/api/CMakeLists.txt
paddle/fluid/inference/tests/api/CMakeLists.txt
+1
-1
paddle/fluid/operators/conv_mkldnn_op.cc
paddle/fluid/operators/conv_mkldnn_op.cc
+31
-25
paddle/fluid/operators/conv_op.cc
paddle/fluid/operators/conv_op.cc
+5
-0
paddle/fluid/operators/distributed/grpc_client.cc
paddle/fluid/operators/distributed/grpc_client.cc
+2
-2
paddle/fluid/operators/distributed/proto_encoder_helper.h
paddle/fluid/operators/distributed/proto_encoder_helper.h
+3
-1
paddle/fluid/operators/listen_and_serv_op.cc
paddle/fluid/operators/listen_and_serv_op.cc
+10
-11
paddle/fluid/operators/math/sequence_pooling.cc
paddle/fluid/operators/math/sequence_pooling.cc
+62
-4
paddle/fluid/operators/prelu_op.cc
paddle/fluid/operators/prelu_op.cc
+6
-3
paddle/scripts/paddle_build.sh
paddle/scripts/paddle_build.sh
+57
-17
python/paddle/fluid/tests/unittests/dist_transformer.py
python/paddle/fluid/tests/unittests/dist_transformer.py
+10
-8
python/paddle/fluid/tests/unittests/test_dist_base.py
python/paddle/fluid/tests/unittests/test_dist_base.py
+10
-9
python/paddle/fluid/tests/unittests/test_dist_transformer.py
python/paddle/fluid/tests/unittests/test_dist_transformer.py
+9
-0
python/paddle/fluid/transpiler/inference_transpiler.py
python/paddle/fluid/transpiler/inference_transpiler.py
+51
-2
未找到文件。
cmake/tensorrt.cmake
浏览文件 @
8edf60ce
...
...
@@ -16,7 +16,9 @@ find_library(TENSORRT_LIBRARY NAMES libnvinfer.so libnvinfer.a
DOC
"Path to TensorRT library."
)
if
(
TENSORRT_INCLUDE_DIR AND TENSORRT_LIBRARY
)
if
(
WITH_DSO
)
set
(
TENSORRT_FOUND ON
)
endif
(
WITH DSO
)
else
()
set
(
TENSORRT_FOUND OFF
)
endif
()
...
...
paddle/fluid/framework/ir/graph_pattern_detector.h
浏览文件 @
8edf60ce
...
...
@@ -429,7 +429,7 @@ struct LSTM : public PatternBase {
struct
GRU
:
public
PatternBase
{
GRU
(
PDPattern
*
pattern
,
const
std
::
string
&
name_scope
)
:
PatternBase
(
pattern
,
name_scope
,
"
lstm
"
)
{}
:
PatternBase
(
pattern
,
name_scope
,
"
gru
"
)
{}
PDNode
*
operator
()(
PDNode
*
x
);
...
...
paddle/fluid/inference/api/api.cc
浏览文件 @
8edf60ce
...
...
@@ -9,8 +9,8 @@ WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License. */
#include <glog/logging.h>
#include "paddle/fluid/inference/api/paddle_inference_api.h"
#include "paddle/fluid/platform/enforce.h"
namespace
paddle
{
...
...
@@ -64,13 +64,15 @@ PaddleBuf& PaddleBuf::operator=(PaddleBuf&& other) {
void
PaddleBuf
::
Resize
(
size_t
length
)
{
// Only the owned memory can be reset, the external memory can't be changed.
if
(
length_
=
=
length
)
return
;
if
(
length_
>
=
length
)
return
;
if
(
memory_owned_
)
{
Free
();
data_
=
malloc
(
length
);
length_
=
length
;
memory_owned_
=
true
;
}
else
{
PADDLE_THROW
(
"The memory is allocated externally, can not Resized"
);
}
data_
=
new
char
[
length
];
length_
=
length
;
memory_owned_
=
true
;
}
void
PaddleBuf
::
Reset
(
void
*
data
,
size_t
length
)
{
...
...
@@ -82,8 +84,8 @@ void PaddleBuf::Reset(void* data, size_t length) {
void
PaddleBuf
::
Free
()
{
if
(
memory_owned_
&&
data_
)
{
assert
(
length_
>
0
);
delete
[]
static_cast
<
char
*>
(
data_
);
PADDLE_ENFORCE_GT
(
length_
,
0
);
free
(
static_cast
<
char
*>
(
data_
)
);
data_
=
nullptr
;
length_
=
0
;
}
...
...
paddle/fluid/inference/tests/api/CMakeLists.txt
浏览文件 @
8edf60ce
...
...
@@ -53,7 +53,7 @@ set(TEXT_CLASSIFICATION_INSTALL_DIR "${INFERENCE_DEMO_INSTALL_DIR}/text_classifi
download_model_and_data
(
${
TEXT_CLASSIFICATION_INSTALL_DIR
}
"text-classification-Senta.tar.gz"
"text_classification_data.txt.tar.gz"
)
inference_analysis_test
(
test_analyzer_text_classification SRCS analyzer_text_classification_tester.cc
EXTRA_DEPS
${
INFERENCE_EXTRA_DEPS
}
ARGS --infer_model=
${
TEXT_CLASSIFICATION_INSTALL_DIR
}
/
text-classification-Senta
ARGS --infer_model=
${
TEXT_CLASSIFICATION_INSTALL_DIR
}
/
model
--infer_data=
${
TEXT_CLASSIFICATION_INSTALL_DIR
}
/data.txt
)
# ocr
...
...
paddle/fluid/operators/conv_mkldnn_op.cc
浏览文件 @
8edf60ce
...
...
@@ -300,6 +300,7 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
std
::
vector
<
int
>
paddings
=
ctx
.
Attr
<
std
::
vector
<
int
>>
(
"paddings"
);
std
::
vector
<
int
>
dilations
=
ctx
.
Attr
<
std
::
vector
<
int
>>
(
"dilations"
);
bool
fuse_relu
=
ctx
.
Attr
<
bool
>
(
"fuse_relu"
);
bool
fuse_eltwise
=
ctx
.
Attr
<
bool
>
(
"fuse_eltwise"
);
int
groups
=
ctx
.
Attr
<
int
>
(
"groups"
);
// TODO: add support for dilation
...
...
@@ -366,12 +367,13 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
bias_tz
=
paddle
::
framework
::
vectorize2int
(
bias
->
dims
());
auto
bias_md
=
platform
::
MKLDNNMemDesc
(
bias_tz
,
platform
::
MKLDNNGetDataType
<
T
>
(),
memory
::
format
::
x
);
conv_pd
=
ConvFwdPrimitiveDesc
(
src_md
,
weights_md
,
bias_md
,
dst_md
,
strides
,
paddings
,
mkldnn_engine
,
fuse_relu
);
conv_pd
=
ConvFwdPrimitiveDesc
(
src_md
,
weights_md
,
bias_md
,
dst_md
,
strides
,
paddings
,
mkldnn_engine
,
fuse_relu
,
fuse_eltwise
);
}
else
{
conv_pd
=
ConvFwdPrimitiveDesc
(
src_md
,
weights_md
,
dst_md
,
strides
,
paddings
,
mkldnn_engine
,
fuse_relu
);
conv_pd
=
ConvFwdPrimitiveDesc
(
src_md
,
weights_md
,
dst_md
,
strides
,
paddings
,
mkldnn_engine
,
fuse_relu
,
fuse_eltwise
);
}
// Save conv_pd/src_memory/weights_memory for backward pass
dev_ctx
.
SetBlob
(
key_conv_pd
,
conv_pd
);
...
...
@@ -421,16 +423,26 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
}
private:
mkldnn
::
primitive_attr
AddRelu
()
const
{
// Fusion with ReLU layer is executed through the PostOps feature. Create a
// PostOps object and configure it to execute an eltwise relu operation.
mkldnn
::
primitive_attr
CreatePostOps
(
bool
fuse_relu
,
bool
fuse_eltwise
)
const
{
mkldnn
::
primitive_attr
conv_attr
;
constexpr
float
scale
=
1.0
f
;
constexpr
float
negative_slope
=
0.0
f
;
constexpr
float
placeholder
=
0.0
f
;
mkldnn
::
post_ops
post_operations
;
post_operations
.
append_eltwise
(
scale
,
mkldnn
::
algorithm
::
eltwise_relu
,
negative_slope
,
placeholder
);
// Fusion with Elementwise layer relies on adding a sum post-operation with
// the scale parameter. It is assumed that when fuse_eltwise is true, the
// Output tensor contains the data coming from residual connection. The
// result of this post_op is: Output = scale * Output + Conv_Out.
if
(
fuse_eltwise
)
{
post_operations
.
append_sum
(
1.0
f
);
}
// Fusion with ReLU layer is executed through the PostOps feature. Create a
// PostOps object and configure it to execute an eltwise relu operation.
if
(
fuse_relu
)
{
constexpr
float
scale
=
1.0
f
;
constexpr
float
negative_slope
=
0.0
f
;
constexpr
float
placeholder
=
0.0
f
;
post_operations
.
append_eltwise
(
scale
,
mkldnn
::
algorithm
::
eltwise_relu
,
negative_slope
,
placeholder
);
}
conv_attr
.
set_post_ops
(
post_operations
);
return
conv_attr
;
}
...
...
@@ -439,8 +451,8 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
ConvFwdPrimitiveDesc
(
const
memory
::
desc
&
src
,
const
memory
::
desc
&
weights
,
const
memory
::
desc
&
dst
,
const
std
::
vector
<
int
>&
strides
,
const
std
::
vector
<
int
>&
paddings
,
const
mkldnn
::
engine
&
engine
,
const
bool
fuse_
relu
)
const
{
const
mkldnn
::
engine
&
engine
,
const
bool
fuse_relu
,
const
bool
fuse_
eltwise
)
const
{
memory
::
dims
stride_dims
=
{
strides
[
0
],
strides
[
1
]};
memory
::
dims
padding_dims
=
{
paddings
[
0
],
paddings
[
1
]};
...
...
@@ -449,10 +461,7 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
dst
,
stride_dims
,
padding_dims
,
padding_dims
,
mkldnn
::
padding_kind
::
zero
);
mkldnn
::
primitive_attr
conv_attr
;
if
(
fuse_relu
)
{
conv_attr
=
AddRelu
();
}
mkldnn
::
primitive_attr
conv_attr
=
CreatePostOps
(
fuse_relu
,
fuse_eltwise
);
auto
p_conv_pd
=
new
mkldnn
::
convolution_forward
::
primitive_desc
(
conv_desc
,
conv_attr
,
engine
);
...
...
@@ -466,8 +475,8 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
const
memory
::
desc
&
bias
,
const
memory
::
desc
&
dst
,
const
std
::
vector
<
int
>&
strides
,
const
std
::
vector
<
int
>&
paddings
,
const
mkldnn
::
engine
&
engine
,
const
bool
fuse_
relu
)
const
{
const
mkldnn
::
engine
&
engine
,
const
bool
fuse_relu
,
const
bool
fuse_
eltwise
)
const
{
memory
::
dims
stride_dims
=
{
strides
[
0
],
strides
[
1
]};
memory
::
dims
padding_dims
=
{
paddings
[
0
],
paddings
[
1
]};
...
...
@@ -476,10 +485,7 @@ class ConvMKLDNNOpKernel : public paddle::framework::OpKernel<T> {
bias
,
dst
,
stride_dims
,
padding_dims
,
padding_dims
,
mkldnn
::
padding_kind
::
zero
);
mkldnn
::
primitive_attr
conv_attr
;
if
(
fuse_relu
)
{
conv_attr
=
AddRelu
();
}
mkldnn
::
primitive_attr
conv_attr
=
CreatePostOps
(
fuse_relu
,
fuse_eltwise
);
auto
p_conv_pd
=
new
mkldnn
::
convolution_forward
::
primitive_desc
(
conv_desc
,
conv_attr
,
engine
);
...
...
paddle/fluid/operators/conv_op.cc
浏览文件 @
8edf60ce
...
...
@@ -164,6 +164,11 @@ void Conv2DOpMaker::Make() {
.
SetDefault
(
false
);
AddAttr
<
bool
>
(
"fuse_relu"
,
"(bool, default false) Only used in mkldnn kernel"
)
.
SetDefault
(
false
);
AddAttr
<
bool
>
(
"fuse_eltwise"
,
"(bool, default false) Only used in mkldnn kernel. Used "
"whenever convolution output is connected via skip connection "
"to a previous layer."
)
.
SetDefault
(
false
);
AddAttr
<
std
::
string
>
(
"data_format"
,
"(string, default NCHW) Only used in "
...
...
paddle/fluid/operators/distributed/grpc_client.cc
浏览文件 @
8edf60ce
...
...
@@ -125,7 +125,7 @@ VarHandlePtr GRPCClient::AsyncGetVar(const std::string& ep,
VarHandlePtr
h
(
new
VarHandle
(
ep
,
"Get"
,
var_name_val
,
p_ctx
,
p_scope
));
s
->
Prepare
(
h
,
time_out
);
framework
::
AsyncIO
([
var_name_val
,
p_scope
,
p_ctx
,
s
,
this
]
{
framework
::
AsyncIO
([
var_name_val
,
s
,
this
]
{
// prepare input
sendrecv
::
VariableMessage
req
;
req
.
set_varname
(
var_name_val
);
...
...
@@ -166,7 +166,7 @@ VarHandlePtr GRPCClient::AsyncPrefetchVar(const std::string& ep,
s
->
Prepare
(
h
,
time_out
);
framework
::
AsyncIO
([
in_var_name_val
,
out_var_name_val
,
ep_val
,
p_scope
,
p_ctx
,
time_out
,
s
,
this
]
{
s
,
this
]
{
auto
*
var
=
p_scope
->
FindVar
(
in_var_name_val
);
::
grpc
::
ByteBuffer
req
;
...
...
paddle/fluid/operators/distributed/proto_encoder_helper.h
浏览文件 @
8edf60ce
...
...
@@ -82,8 +82,10 @@ class ProtoEncodeHelper {
:
base_
(
buf
),
p_
(
buf
),
limit_
(
base_
+
max_size
)
{}
~
ProtoEncodeHelper
()
{
#define REPLACE_ENFORCE_GLOG 1
// Make sure callers didn't do operations that went over max_size promised
PADDLE_ENFORCE_LE
(
p_
,
limit_
);
paddle
::
platform
::
throw_on_error
(
p_
<=
limit_
);
#undef REPLACE_ENFORCE_GLOG
}
const
char
*
data
()
const
{
return
base_
;
}
...
...
paddle/fluid/operators/listen_and_serv_op.cc
浏览文件 @
8edf60ce
...
...
@@ -59,17 +59,16 @@ static void ParallelExecuteBlocks(
framework
::
ProgramDesc
*
program
,
framework
::
Scope
*
scope
)
{
std
::
vector
<
std
::
future
<
void
>>
fs
;
for
(
size_t
idx
:
parallel_blkids
)
{
fs
.
push_back
(
framework
::
Async
([
&
executor
,
&
prepared
,
&
program
,
&
scope
,
idx
]()
{
int
run_block
=
idx
;
// thread local
try
{
VLOG
(
3
)
<<
"running server block: "
<<
run_block
<<
"pointer: "
<<
prepared
[
run_block
].
get
();
executor
->
RunPreparedContext
(
prepared
[
run_block
].
get
(),
scope
);
}
catch
(
const
std
::
exception
&
e
)
{
LOG
(
ERROR
)
<<
"run sub program error "
<<
e
.
what
();
}
}));
fs
.
push_back
(
framework
::
Async
([
&
executor
,
&
prepared
,
&
scope
,
idx
]()
{
int
run_block
=
idx
;
// thread local
try
{
VLOG
(
3
)
<<
"running server block: "
<<
run_block
<<
"pointer: "
<<
prepared
[
run_block
].
get
();
executor
->
RunPreparedContext
(
prepared
[
run_block
].
get
(),
scope
);
}
catch
(
const
std
::
exception
&
e
)
{
LOG
(
ERROR
)
<<
"run sub program error "
<<
e
.
what
();
}
}));
}
for
(
size_t
i
=
0
;
i
<
fs
.
size
();
++
i
)
fs
[
i
].
wait
();
}
...
...
paddle/fluid/operators/math/sequence_pooling.cc
浏览文件 @
8edf60ce
...
...
@@ -103,6 +103,58 @@ class MaxSeqPoolGradFunctor {
}
};
template
<
typename
T
>
class
LastSeqPoolFunctor
{
public:
void
operator
()(
const
platform
::
CPUDeviceContext
&
context
,
const
framework
::
LoDTensor
&
input
,
framework
::
Tensor
*
output
)
{
// Create pointers to input and output data
auto
*
in_data
=
input
.
data
<
T
>
();
auto
*
out_data
=
output
->
data
<
T
>
();
// Calculate the size of each item in sequence
int64_t
item_size
=
input
.
numel
()
/
input
.
dims
()[
0
];
auto
lod
=
input
.
lod
()[
0
];
int
seq_num
=
static_cast
<
int
>
(
lod
.
size
())
-
1
;
for
(
int
i
=
0
;
i
<
seq_num
;
++
i
)
{
// Calculate the length of each sequence
int64_t
seq_len
=
static_cast
<
int64_t
>
(
lod
[
i
+
1
]
-
lod
[
i
]);
// Point to the begin of next sequence
in_data
+=
seq_len
*
item_size
;
// Copy the last item of sequence to output
std
::
memcpy
(
out_data
,
(
in_data
-
item_size
),
item_size
*
sizeof
(
T
));
out_data
+=
item_size
;
}
}
};
template
<
typename
T
>
class
FirstSeqPoolFunctor
{
public:
void
operator
()(
const
platform
::
CPUDeviceContext
&
context
,
const
framework
::
LoDTensor
&
input
,
framework
::
Tensor
*
output
)
{
// Create pointers to input and output data
auto
*
in_data
=
input
.
data
<
T
>
();
auto
*
out_data
=
output
->
data
<
T
>
();
// Calculate the size of each item in sequence
int64_t
item_size
=
input
.
numel
()
/
input
.
dims
()[
0
];
auto
lod
=
input
.
lod
()[
0
];
int
seq_num
=
static_cast
<
int
>
(
lod
.
size
())
-
1
;
for
(
int
i
=
0
;
i
<
seq_num
;
++
i
)
{
// Calculate the length of each sequence
int64_t
seq_len
=
static_cast
<
int64_t
>
(
lod
[
i
+
1
]
-
lod
[
i
]);
// Copy the first item of sequence to output
std
::
memcpy
(
out_data
,
in_data
,
item_size
*
sizeof
(
T
));
// Point to the next sequence
in_data
+=
seq_len
*
item_size
;
out_data
+=
item_size
;
}
}
};
template
<
typename
T
>
class
SequencePoolFunctor
<
platform
::
CPUDeviceContext
,
T
>
{
public:
...
...
@@ -116,6 +168,16 @@ class SequencePoolFunctor<platform::CPUDeviceContext, T> {
max_pool
(
context
,
input
,
output
,
index
);
return
;
}
if
(
pooltype
==
"LAST"
)
{
math
::
LastSeqPoolFunctor
<
T
>
last_pool
;
last_pool
(
context
,
input
,
output
);
return
;
}
if
(
pooltype
==
"FIRST"
)
{
math
::
FirstSeqPoolFunctor
<
T
>
first_pool
;
first_pool
(
context
,
input
,
output
);
return
;
}
auto
lod
=
input
.
lod
()[
0
];
auto
&
place
=
*
context
.
eigen_device
();
for
(
int
i
=
0
;
i
<
static_cast
<
int
>
(
lod
.
size
())
-
1
;
++
i
)
{
...
...
@@ -133,10 +195,6 @@ class SequencePoolFunctor<platform::CPUDeviceContext, T> {
}
else
if
(
pooltype
==
"SQRT"
)
{
out_e
.
device
(
place
)
=
in_e
.
sum
(
Eigen
::
array
<
int
,
1
>
({{
0
}}))
/
std
::
sqrt
(
static_cast
<
T
>
(
h
));
}
else
if
(
pooltype
==
"LAST"
)
{
out_e
.
device
(
place
)
=
in_e
.
chip
(
h
-
1
,
0
);
}
else
if
(
pooltype
==
"FIRST"
)
{
out_e
.
device
(
place
)
=
in_e
.
chip
(
0
,
0
);
}
else
{
PADDLE_THROW
(
"unsupported pooling pooltype"
);
}
...
...
paddle/fluid/operators/prelu_op.cc
浏览文件 @
8edf60ce
...
...
@@ -26,10 +26,13 @@ class PReluOp : public framework::OperatorWithKernel {
std
::
string
mode
=
ctx
->
Attrs
().
Get
<
std
::
string
>
(
"mode"
);
auto
x_dim
=
ctx
->
GetInputDim
(
"X"
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"X"
),
"Input(X) should not be null"
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"Alpha"
),
"Input(Alpha) should not be null"
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"X"
),
"Input(X) of PreluOp should not be null"
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"Alpha"
),
"Input(Alpha) of PreluOp should not be null"
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"Out"
),
"Output(Out) should not be null"
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"Out"
),
"Output(Out) of PreluOp should not be null"
);
if
(
mode
==
"all"
)
{
PADDLE_ENFORCE
(
product
(
ctx
->
GetInputDim
(
"Alpha"
))
==
1
,
"For mode 'all', size of weight Alpha must be one."
);
...
...
paddle/scripts/paddle_build.sh
浏览文件 @
8edf60ce
...
...
@@ -33,6 +33,7 @@ function print_usage() {
${
BLUE
}
single_test
${
NONE
}
: run a single unit test
${
BLUE
}
bind_test
${
NONE
}
: parallel tests bind to different GPU
${
BLUE
}
doc
${
NONE
}
: generate paddle documents
${
BLUE
}
gen_doc_lib
${
NONE
}
: generate paddle documents library
${
BLUE
}
html
${
NONE
}
: convert C++ source code into HTML
${
BLUE
}
dockerfile
${
NONE
}
: generate paddle release dockerfile
${
BLUE
}
capi
${
NONE
}
: generate paddle CAPI package
...
...
@@ -431,24 +432,60 @@ EOF
linkchecker doc/v2/cn/html/index.html
linkchecker doc/v2/api/en/html/index.html
if
[[
"
$TRAVIS_PULL_REQUEST
"
!=
"false"
]]
;
then
exit
0
;
fi
;
# if [[ "$TRAVIS_PULL_REQUEST" != "false" ]]; then exit 0; fi;
#
# # Deploy to the the content server if its a "develop" or "release/version" branch
# # The "develop_doc" branch is reserved to test full deploy process without impacting the real content.
# if [ "$TRAVIS_BRANCH" == "develop_doc" ]; then
# PPO_SCRIPT_BRANCH=develop
# elif [[ "$TRAVIS_BRANCH" == "develop" || "$TRAVIS_BRANCH" =~ ^v|release/[[:digit:]]+\.[[:digit:]]+(\.[[:digit:]]+)?(-\S*)?$ ]]; then
# PPO_SCRIPT_BRANCH=master
# else
# # Early exit, this branch doesn't require documentation build
# return 0;
# fi
# # Fetch the paddlepaddle.org deploy_docs.sh from the appopriate branch
# export DEPLOY_DOCS_SH=https://raw.githubusercontent.com/PaddlePaddle/PaddlePaddle.org/$PPO_SCRIPT_BRANCH/scripts/deploy/deploy_docs.sh
# export PYTHONPATH=$PYTHONPATH:${PADDLE_ROOT}/build/python:/paddle/build/python
# cd ..
# curl $DEPLOY_DOCS_SH | bash -s $CONTENT_DEC_PASSWD $TRAVIS_BRANCH ${PADDLE_ROOT} ${PADDLE_ROOT}/build/doc/ ${PPO_SCRIPT_BRANCH}
# cd -
}
# Deploy to the the content server if its a "develop" or "release/version" branch
# The "develop_doc" branch is reserved to test full deploy process without impacting the real content.
if
[
"
$TRAVIS_BRANCH
"
==
"develop_doc"
]
;
then
PPO_SCRIPT_BRANCH
=
develop
elif
[[
"
$TRAVIS_BRANCH
"
==
"develop"
||
"
$TRAVIS_BRANCH
"
=
~ ^v|release/[[:digit:]]+
\.
[[
:digit:]]+
(
\.
[[
:digit:]]+
)
?
(
-
\S
*
)
?
$
]]
;
then
PPO_SCRIPT_BRANCH
=
master
else
# Early exit, this branch doesn't require documentation build
return
0
;
fi
# Fetch the paddlepaddle.org deploy_docs.sh from the appopriate branch
export
DEPLOY_DOCS_SH
=
https://raw.githubusercontent.com/PaddlePaddle/PaddlePaddle.org/
$PPO_SCRIPT_BRANCH
/scripts/deploy/deploy_docs.sh
export
PYTHONPATH
=
$PYTHONPATH
:
${
PADDLE_ROOT
}
/build/python:/paddle/build/python
cd
..
curl
$DEPLOY_DOCS_SH
| bash
-s
$CONTENT_DEC_PASSWD
$TRAVIS_BRANCH
${
PADDLE_ROOT
}
${
PADDLE_ROOT
}
/build/doc/
${
PPO_SCRIPT_BRANCH
}
cd
-
function
gen_doc_lib
()
{
mkdir
-p
${
PADDLE_ROOT
}
/build
cd
${
PADDLE_ROOT
}
/build
cat
<<
EOF
========================================
Building documentation library ...
In /paddle/build
========================================
EOF
cmake ..
\
-DCMAKE_BUILD_TYPE
=
Release
\
-DWITH_DOC
=
ON
\
-DWITH_GPU
=
OFF
\
-DWITH_MKL
=
OFF
\
-DWITH_FLUID_ONLY
=
ON
local
LIB_TYPE
=
$1
case
$LIB_TYPE
in
full
)
# Build full Paddle Python module. Will timeout without caching 'copy_paddle_pybind' first
make
-j
`
nproc
`
gen_proto_py framework_py_proto copy_paddle_pybind paddle_python
;;
pybind
)
# Build paddle pybind library. Takes 49 minutes to build. Might timeout
make
-j
`
nproc
`
copy_paddle_pybind
;;
proto
)
# Even smaller library.
make
-j
`
nproc
`
framework_py_proto
;;
*
)
exit
0
;;
esac
}
function
gen_html
()
{
...
...
@@ -608,6 +645,9 @@ function main() {
doc
)
gen_docs
;;
gen_doc_lib
)
gen_doc_lib
$2
;;
html
)
gen_html
;;
...
...
python/paddle/fluid/tests/unittests/dist_transformer.py
浏览文件 @
8edf60ce
...
...
@@ -92,7 +92,7 @@ class TrainTaskConfig(object):
src_vocab_fpath
=
data_path
+
"vocab.bpe.32000"
trg_vocab_fpath
=
data_path
+
"vocab.bpe.32000"
train_file_pattern
=
data_path
+
"train.tok.clean.bpe.32000.en-de"
val_file_pattern
=
data_path
+
"newstest2013.tok.bpe.32000.en-de"
val_file_pattern
=
data_path
+
"newstest2013.tok.bpe.32000.en-de
.cut
"
pool_size
=
2000
sort_type
=
None
local
=
True
...
...
@@ -624,11 +624,12 @@ def train_loop(exe, train_progm, dev_count, sum_cost, avg_cost, lr_scheduler,
init
=
True
# Validate and save the model for inference.
if
TrainTaskConfig
.
val_file_pattern
is
not
None
:
val_avg_cost
,
val_ppl
=
test
()
print
(
"[%f]"
%
val_avg_cost
)
else
:
assert
(
False
)
if
batch_id
==
0
or
batch_id
==
4
:
if
TrainTaskConfig
.
val_file_pattern
is
not
None
:
val_avg_cost
,
val_ppl
=
test
()
print
(
"[%f]"
%
val_avg_cost
)
else
:
assert
(
False
)
#import transformer_reader as reader
...
...
@@ -1701,8 +1702,9 @@ class DistTransformer2x2(TestDistRunnerBase):
exe
.
run
(
startup_prog
)
exe
.
run
(
pserver_prog
)
def
run_trainer
(
self
,
place
,
args
):
def
run_trainer
(
self
,
use_cuda
,
args
):
place
=
fluid
.
CUDAPlace
(
0
)
if
use_cuda
else
fluid
.
CPUPlace
()
TrainTaskConfig
.
use_gpu
=
use_cuda
sum_cost
,
avg_cost
,
predict
,
token_num
,
local_lr_scheduler
=
get_model
(
args
.
is_dist
,
not
args
.
sync_mode
)
...
...
python/paddle/fluid/tests/unittests/test_dist_base.py
浏览文件 @
8edf60ce
...
...
@@ -61,9 +61,10 @@ class TestDistRunnerBase(object):
exe
.
run
(
startup_prog
)
exe
.
run
(
pserver_prog
)
def
run_trainer
(
self
,
place
,
args
):
def
run_trainer
(
self
,
use_cuda
,
args
):
import
paddle
import
paddle.fluid
as
fluid
place
=
fluid
.
CUDAPlace
(
0
)
if
use_cuda
else
fluid
.
CPUPlace
()
test_program
,
avg_cost
,
train_reader
,
test_reader
,
batch_acc
,
predict
=
\
self
.
get_model
(
batch_size
=
2
)
if
args
.
mem_opt
:
...
...
@@ -91,7 +92,7 @@ class TestDistRunnerBase(object):
build_stra
.
reduce_strategy
=
fluid
.
BuildStrategy
.
ReduceStrategy
.
AllReduce
exe
=
fluid
.
ParallelExecutor
(
True
,
use_cuda
,
loss_name
=
avg_cost
.
name
,
exec_strategy
=
strategy
,
build_strategy
=
build_stra
)
...
...
@@ -142,9 +143,8 @@ def runtime_main(test_class):
if
args
.
role
==
"pserver"
and
args
.
is_dist
:
model
.
run_pserver
(
args
)
else
:
p
=
fluid
.
CUDAPlace
(
0
)
if
core
.
is_compiled_with_cuda
(
)
else
fluid
.
CPUPlace
()
model
.
run_trainer
(
p
,
args
)
use_cuda
=
True
if
core
.
is_compiled_with_cuda
()
else
False
model
.
run_trainer
(
use_cuda
,
args
)
import
paddle.compat
as
cpt
...
...
@@ -225,11 +225,12 @@ class TestDistBase(unittest.TestCase):
def
check_with_place
(
self
,
model_file
,
delta
=
1e-3
,
check_error_log
=
False
):
# TODO(typhoonzero): should auto adapt GPU count on the machine.
required_envs
=
{
"PATH"
:
os
.
getenv
(
"PATH"
),
"PYTHONPATH"
:
os
.
getenv
(
"PYTHONPATH"
),
"LD_LIBRARY_PATH"
:
os
.
getenv
(
"LD_LIBRARY_PATH"
),
"PATH"
:
os
.
getenv
(
"PATH"
,
""
),
"PYTHONPATH"
:
os
.
getenv
(
"PYTHONPATH"
,
""
),
"LD_LIBRARY_PATH"
:
os
.
getenv
(
"LD_LIBRARY_PATH"
,
""
),
"FLAGS_fraction_of_gpu_memory_to_use"
:
"0.15"
,
"FLAGS_cudnn_deterministic"
:
"1"
"FLAGS_cudnn_deterministic"
:
"1"
,
"CPU_NUM"
:
"1"
}
if
check_error_log
:
...
...
python/paddle/fluid/tests/unittests/test_dist_transformer.py
浏览文件 @
8edf60ce
...
...
@@ -14,6 +14,7 @@
from
__future__
import
print_function
import
os
import
unittest
import
paddle
from
test_dist_base
import
TestDistBase
...
...
@@ -44,6 +45,14 @@ def download_files():
test_url
=
url_prefix
+
'newstest2013.tok.bpe.32000.en-de'
test_md5
=
'9dd74a266dbdb25314183899f269b4a2'
paddle
.
dataset
.
common
.
download
(
test_url
,
'test_dist_transformer'
,
test_md5
)
# cut test data for faster CI
orig_path
=
os
.
path
.
join
(
paddle
.
dataset
.
common
.
DATA_HOME
,
"test_dist_transformer"
,
"newstest2013.tok.bpe.32000.en-de"
)
head_path
=
os
.
path
.
join
(
paddle
.
dataset
.
common
.
DATA_HOME
,
"test_dist_transformer"
,
"newstest2013.tok.bpe.32000.en-de.cut"
)
os
.
system
(
"head -n10 %s > %s"
%
(
orig_path
,
head_path
))
class
TestDistTransformer2x2Sync
(
TestDistBase
):
...
...
python/paddle/fluid/transpiler/inference_transpiler.py
浏览文件 @
8edf60ce
...
...
@@ -65,8 +65,43 @@ class InferenceTranspiler(object):
if
use_mkldnn
:
self
.
_fuse_conv_bias_mkldnn
(
program
)
self
.
_fuse_conv_relu_mkldnn
(
program
)
self
.
_fuse_conv_eltwise_mkldnn
(
program
)
self
.
_fuse_conv_relu_mkldnn
(
program
)
# ResNet residual block merging
self
.
_fuse_bn_relu_mkldnn
(
program
)
def
_fuse_conv_eltwise_mkldnn
(
self
,
program
):
'''
Transpile the program fusing elementwise_add into conv for MKLDNN
program. Elementwise add following convolution OP can be fused by adding
'fuse_eltwise' attribute to convolution OP and replacing its output
Tensor with second parameter of elementwise_add.
The result of fuse is:
- before:
- conv->elementwise_add->any_other_op
- after:
- conv->any_other_op
:param program: program to transpile
:type program: Program
'''
self
.
block
=
program
.
block
(
0
)
i
=
0
while
i
<
len
(
self
.
block
.
ops
):
current_op
=
self
.
block
.
ops
[
i
]
if
current_op
.
type
in
[
'conv2d'
]:
next_op
=
self
.
block
.
ops
[
i
+
1
]
if
next_op
.
type
==
'elementwise_add'
:
self
.
_fuse_conv_eltwise
(
current_op
,
next_op
)
self
.
block
.
_remove_op
(
i
+
1
)
# Remove elementwise_add
i
=
i
+
1
self
.
_adjust_input
()
self
.
_remove_unused_var
()
# TODO(luotao): use clone() method to flush the program.desc in force,
# since some large program.desc will not be flushed immediately.
# And a better solution will be considered later.
program
=
program
.
clone
()
def
_fuse_conv_relu_mkldnn
(
self
,
program
):
'''
Transpile the program by fused relu activation for MKLDNN program.
...
...
@@ -88,9 +123,9 @@ class InferenceTranspiler(object):
if
current_op
.
type
in
[
'conv2d'
]:
next_op
=
self
.
block
.
ops
[
i
+
1
]
if
next_op
.
type
==
'relu'
:
# modify
conv
OP to include relu
# modify
bnorm
OP to include relu
current_op
.
set_attr
(
"fuse_relu"
,
True
)
# remove
conv
OP
# remove
relu
OP
self
.
block
.
_remove_op
(
i
+
1
)
i
=
i
+
1
...
...
@@ -409,6 +444,20 @@ class InferenceTranspiler(object):
outputs
=
{
"Output"
:
out_var
},
attrs
=
attrs
)
def
_fuse_conv_eltwise
(
self
,
conv_op
,
eltwise_op
):
'''
fuse the conv op with elementwise_add
:param conv_op: convolution operator
:type conv_op: Operator
:param eltwise_op: operator adding data from skip connection
:type eltwise_op: Operator
'''
conv_op
.
set_attr
(
"fuse_eltwise"
,
True
)
self
.
input_map
[
conv_op
.
output
(
"Output"
)[
0
]]
=
eltwise_op
.
input
(
"Y"
)[
0
]
self
.
input_map
[
eltwise_op
.
output
(
"Out"
)[
0
]]
=
eltwise_op
.
input
(
"Y"
)[
0
]
def
_adjust_input
(
self
):
for
i
in
range
(
len
(
self
.
block
.
ops
)):
current_op
=
self
.
block
.
ops
[
i
]
...
...
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