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1bfc565f
编写于
2月 25, 2019
作者:
T
tensor-tang
提交者:
ceci3
3月 04, 2019
浏览文件
操作
浏览文件
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电子邮件补丁
差异文件
add benchmark and mkl sgd implement
test=develop
上级
a0834044
变更
4
隐藏空白更改
内联
并排
Showing
4 changed file
with
82 addition
and
0 deletion
+82
-0
paddle/fluid/operators/jit/benchmark.cc
paddle/fluid/operators/jit/benchmark.cc
+42
-0
paddle/fluid/operators/jit/more/mkl/CMakeLists.txt
paddle/fluid/operators/jit/more/mkl/CMakeLists.txt
+1
-0
paddle/fluid/operators/jit/more/mkl/mkl.cc
paddle/fluid/operators/jit/more/mkl/mkl.cc
+11
-0
paddle/fluid/operators/jit/more/mkl/mkl.h
paddle/fluid/operators/jit/more/mkl/mkl.h
+28
-0
未找到文件。
paddle/fluid/operators/jit/benchmark.cc
浏览文件 @
1bfc565f
...
...
@@ -332,6 +332,45 @@ void BenchEmbSeqPoolKernel() {
}
}
template
<
jit
::
KernelType
KT
,
typename
T
,
typename
PlaceType
>
void
BenchSgdKernel
()
{
const
T
lr
=
0.1
;
auto
UnDuplicatedRandomVec
=
[](
int
n
,
const
int64_t
lower
,
const
int64_t
upper
)
->
std
::
vector
<
int64_t
>
{
PADDLE_ENFORCE_LE
(
static_cast
<
size_t
>
(
upper
-
lower
),
n
-
1
);
PADDLE_ENFORCE_GT
(
n
,
0
);
std
::
vector
<
int64_t
>
all
,
out
;
for
(
int
i
=
0
;
i
<
n
;
++
i
)
{
all
.
push_back
(
i
);
}
std
::
random_shuffle
(
all
.
begin
(),
all
.
end
());
out
.
insert
(
out
.
begin
(),
all
.
begin
(),
all
.
begin
()
+
n
);
return
out
;
};
for
(
int
param_h
:
{
1
,
1000
})
{
for
(
int
grad_w
:
{
1
,
2
,
8
,
16
,
30
,
256
})
{
// only benchmark inplace
Tensor
param
;
param
.
Resize
({
param_h
,
grad_w
});
T
*
param_data
=
param
.
mutable_data
<
T
>
(
PlaceType
());
RandomVec
<
T
>
(
param_h
*
grad_w
,
param_data
,
-
2.
f
,
2.
f
);
for
(
int
rows_size
=
1
;
rows_size
<=
std
::
min
(
param_h
,
10
);
++
rows_size
)
{
Tensor
grad
;
grad
.
Resize
({
rows_size
,
grad_w
});
std
::
vector
<
int64_t
>
rows
=
UnDuplicatedRandomVec
(
rows_size
,
0
,
rows_size
-
1
);
RandomVec
<
T
>
(
rows_size
*
grad_w
,
grad
.
mutable_data
<
T
>
(
PlaceType
()),
-
2.
f
,
2.
f
);
const
T
*
grad_data
=
grad
.
data
<
T
>
();
const
int64_t
*
rows_data
=
rows
.
data
();
jit
::
sgd_attr_t
attr
(
param_h
,
grad_w
,
rows_size
,
grad_w
,
rows_size
);
BenchAllImpls
<
KT
,
jit
::
SgdTuples
<
T
>
,
PlaceType
>
(
attr
,
&
lr
,
param_data
,
grad_data
,
rows_data
,
param_data
,
&
attr
);
}
}
}
}
template
<
jit
::
KernelType
KT
,
typename
T
,
typename
PlaceType
>
void
BenchMatMulKernel
()
{
for
(
int
m
:
{
1
,
2
,
3
,
4
})
{
...
...
@@ -477,6 +516,9 @@ BENCH_FP32_CPU(kEmbSeqPool) {
BenchEmbSeqPoolKernel
<
jit
::
kEmbSeqPool
,
T
,
CPUPlace
>
();
}
// sgd function
BENCH_FP32_CPU
(
kSgd
)
{
BenchSgdKernel
<
jit
::
kSgd
,
T
,
CPUPlace
>
();
}
// matmul
BENCH_FP32_CPU
(
kMatMul
)
{
BenchMatMulKernel
<
jit
::
kMatMul
,
T
,
CPUPlace
>
();
}
...
...
paddle/fluid/operators/jit/more/mkl/CMakeLists.txt
浏览文件 @
1bfc565f
...
...
@@ -14,3 +14,4 @@ USE_JITKERNEL_MORE(kVTanh, mkl)
USE_JITKERNEL_MORE
(
kSeqPool, mkl
)
USE_JITKERNEL_MORE
(
kSoftmax, mkl
)
USE_JITKERNEL_MORE
(
kEmbSeqPool, mkl
)
USE_JITKERNEL_MORE
(
kSgd, mkl
)
paddle/fluid/operators/jit/more/mkl/mkl.cc
浏览文件 @
1bfc565f
...
...
@@ -184,6 +184,16 @@ bool EmbSeqPoolKernel<double>::UseMe(const emb_seq_pool_attr_t& attr) const {
return
true
;
}
template
<
>
bool
SgdKernel
<
float
>::
UseMe
(
const
sgd_attr_t
&
attr
)
const
{
return
true
;
}
template
<
>
bool
SgdKernel
<
double
>::
UseMe
(
const
sgd_attr_t
&
attr
)
const
{
return
true
;
}
template
<
>
bool
MatMulKernel
<
float
>::
UseMe
(
const
matmul_attr_t
&
attr
)
const
{
return
platform
::
MayIUse
(
platform
::
avx
);
...
...
@@ -239,5 +249,6 @@ REGISTER_MKL_KERNEL(kVTanh, VTanh);
REGISTER_MKL_KERNEL
(
kSeqPool
,
SeqPool
);
REGISTER_MKL_KERNEL
(
kEmbSeqPool
,
EmbSeqPool
);
REGISTER_MKL_KERNEL
(
kSoftmax
,
Softmax
);
REGISTER_MKL_KERNEL
(
kSgd
,
Sgd
);
#undef REGISTER_MKL_KERNEL
paddle/fluid/operators/jit/more/mkl/mkl.h
浏览文件 @
1bfc565f
...
...
@@ -142,6 +142,32 @@ void Softmax(const T* x, T* y, int n, int bs) {
}
}
template
<
typename
T
>
void
Sgd
(
const
T
*
lr
,
const
T
*
param
,
const
T
*
grad
,
const
int64_t
*
rows
,
T
*
out
,
const
sgd_attr_t
*
attr
)
{
PADDLE_ENFORCE_EQ
(
attr
->
param_width
,
attr
->
grad_width
);
PADDLE_ENFORCE_LE
(
attr
->
selected_rows_size
,
attr
->
grad_height
);
T
scalar
=
-
lr
[
0
];
int
width
=
attr
->
grad_width
;
if
(
out
==
param
)
{
for
(
int64_t
i
=
0
;
i
<
attr
->
selected_rows_size
;
++
i
)
{
auto
h_idx
=
rows
[
i
];
PADDLE_ENFORCE_LT
(
h_idx
,
attr
->
param_height
);
PADDLE_ENFORCE_GE
(
h_idx
,
0
);
VAXPY
(
scalar
,
grad
+
i
*
width
,
out
+
h_idx
*
width
,
width
);
}
}
else
{
for
(
int64_t
i
=
0
;
i
<
attr
->
selected_rows_size
;
++
i
)
{
auto
h_idx
=
rows
[
i
];
PADDLE_ENFORCE_LT
(
h_idx
,
attr
->
param_height
);
PADDLE_ENFORCE_GE
(
h_idx
,
0
);
VScal
(
&
scalar
,
grad
+
i
*
width
,
out
+
h_idx
*
width
,
width
);
VAdd
(
param
+
h_idx
*
width
,
out
+
h_idx
*
width
,
out
+
h_idx
*
width
,
width
);
}
}
}
#define DECLARE_MKL_KERNEL(name, tuples) \
template <typename T> \
class name##Kernel : public KernelMore<tuples<T>> { \
...
...
@@ -173,6 +199,8 @@ DECLARE_MKL_KERNEL(EmbSeqPool, EmbSeqPoolTuples);
DECLARE_MKL_KERNEL
(
Softmax
,
SoftmaxTuples
);
DECLARE_MKL_KERNEL
(
Sgd
,
SgdTuples
);
#undef DECLARE_MKL_KERNEL
}
// namespace mkl
...
...
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