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f61dfeed
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f61dfeed
编写于
4月 28, 2018
作者:
C
chengduo
提交者:
GitHub
4月 28, 2018
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差异文件
Merge pull request #10263 from chengduoZH/add_FLAGS_use_deterministic_algo
Add FLAGS_cudnn_algo_use_autotune
上级
4434f8b4
07e46ccc
变更
3
显示空白变更内容
内联
并排
Showing
3 changed file
with
36 addition
and
18 deletion
+36
-18
paddle/fluid/framework/details/scale_loss_grad_op_handle.cc
paddle/fluid/framework/details/scale_loss_grad_op_handle.cc
+1
-0
paddle/fluid/operators/conv_cudnn_op.cu.cc
paddle/fluid/operators/conv_cudnn_op.cu.cc
+32
-17
python/paddle/fluid/__init__.py
python/paddle/fluid/__init__.py
+3
-1
未找到文件。
paddle/fluid/framework/details/scale_loss_grad_op_handle.cc
浏览文件 @
f61dfeed
...
...
@@ -46,6 +46,7 @@ void ScaleLossGradOpHandle::RunImpl() {
->
stream
();
memory
::
Copy
(
boost
::
get
<
platform
::
CUDAPlace
>
(
place_
),
tmp
,
platform
::
CPUPlace
(),
&
coeff_
,
sizeof
(
float
),
stream
);
VLOG
(
1
)
<<
place_
<<
"RUN Scale loss grad op"
;
});
#endif
}
...
...
paddle/fluid/operators/conv_cudnn_op.cu.cc
浏览文件 @
f61dfeed
...
...
@@ -20,6 +20,11 @@ limitations under the License. */
#include "paddle/fluid/platform/cudnn_helper.h"
#include "paddle/fluid/platform/float16.h"
DEFINE_bool
(
cudnn_algo_use_autotune
,
true
,
"Whether allow using an autotuning algorithm for convolution "
"operator. The autotuning algorithm may be non-deterministic. If "
"false, the algorithm is deterministic."
);
namespace
paddle
{
namespace
operators
{
...
...
@@ -267,10 +272,12 @@ class CUDNNConvGradOpKernel : public framework::OpKernel<T> {
auto
&
dev_ctx
=
ctx
.
template
device_context
<
platform
::
CUDADeviceContext
>();
auto
handle
=
dev_ctx
.
cudnn_handle
();
if
(
input_grad
)
{
if
(
FLAGS_cudnn_algo_use_autotune
)
{
PADDLE_ENFORCE
(
platform
::
dynload
::
cudnnGetConvolutionBackwardDataAlgorithm
(
handle
,
cudnn_filter_desc
,
// dyDesc: Handle to the previously initialized input differential
// dyDesc: Handle to the previously initialized input
// differential
// tensor descriptor.
cudnn_output_grad_desc
,
cudnn_conv_desc
,
// dxDesc: Handle to the previously initialized output tensor
...
...
@@ -278,6 +285,10 @@ class CUDNNConvGradOpKernel : public framework::OpKernel<T> {
cudnn_input_desc
,
CUDNN_CONVOLUTION_BWD_DATA_SPECIFY_WORKSPACE_LIMIT
,
workspace_size_limit
,
&
data_algo
));
}
else
{
data_algo
=
CUDNN_CONVOLUTION_BWD_DATA_ALGO_1
;
}
PADDLE_ENFORCE
(
platform
::
dynload
::
cudnnGetConvolutionBackwardDataWorkspaceSize
(
handle
,
cudnn_filter_desc
,
cudnn_output_grad_desc
,
...
...
@@ -286,12 +297,16 @@ class CUDNNConvGradOpKernel : public framework::OpKernel<T> {
}
if
(
filter_grad
)
{
if
(
FLAGS_cudnn_algo_use_autotune
)
{
PADDLE_ENFORCE
(
platform
::
dynload
::
cudnnGetConvolutionBackwardFilterAlgorithm
(
handle
,
cudnn_input_desc
,
cudnn_output_grad_desc
,
cudnn_conv
_desc
,
cudnn_filter_desc
,
handle
,
cudnn_input_desc
,
cudnn_output_grad
_desc
,
cudnn_conv_desc
,
cudnn_filter_desc
,
CUDNN_CONVOLUTION_BWD_FILTER_SPECIFY_WORKSPACE_LIMIT
,
workspace_size_limit
,
&
filter_algo
));
}
else
{
filter_algo
=
CUDNN_CONVOLUTION_BWD_FILTER_ALGO_1
;
}
PADDLE_ENFORCE
(
platform
::
dynload
::
cudnnGetConvolutionBackwardFilterWorkspaceSize
(
...
...
python/paddle/fluid/__init__.py
浏览文件 @
f61dfeed
...
...
@@ -111,7 +111,9 @@ def __bootstrap__():
'eager_delete_scope'
]
if
core
.
is_compiled_with_cuda
():
read_env_flags
+=
[
'fraction_of_gpu_memory_to_use'
]
read_env_flags
+=
[
'fraction_of_gpu_memory_to_use'
,
'cudnn_algo_use_autotune'
]
core
.
init_gflags
([
sys
.
argv
[
0
]]
+
[
"--tryfromenv="
+
","
.
join
(
read_env_flags
)])
core
.
init_glog
(
sys
.
argv
[
0
])
...
...
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