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15da2f9a
编写于
2月 13, 2019
作者:
T
tensor-tang
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
add embseqpool jitkernel refer code, test and benchmark
test=develop
上级
c2ccf145
变更
9
显示空白变更内容
内联
并排
Showing
9 changed file
with
200 addition
and
19 deletion
+200
-19
paddle/fluid/operators/jit/benchmark.cc
paddle/fluid/operators/jit/benchmark.cc
+36
-0
paddle/fluid/operators/jit/helper.cc
paddle/fluid/operators/jit/helper.cc
+1
-0
paddle/fluid/operators/jit/helper.h
paddle/fluid/operators/jit/helper.h
+9
-0
paddle/fluid/operators/jit/kernel_base.h
paddle/fluid/operators/jit/kernel_base.h
+47
-19
paddle/fluid/operators/jit/kernel_key.cc
paddle/fluid/operators/jit/kernel_key.cc
+5
-0
paddle/fluid/operators/jit/refer/CMakeLists.txt
paddle/fluid/operators/jit/refer/CMakeLists.txt
+1
-0
paddle/fluid/operators/jit/refer/refer.cc
paddle/fluid/operators/jit/refer/refer.cc
+2
-0
paddle/fluid/operators/jit/refer/refer.h
paddle/fluid/operators/jit/refer/refer.h
+34
-0
paddle/fluid/operators/jit/test.cc
paddle/fluid/operators/jit/test.cc
+65
-0
未找到文件。
paddle/fluid/operators/jit/benchmark.cc
浏览文件 @
15da2f9a
...
...
@@ -301,6 +301,37 @@ void BenchSeqPoolKernel() {
}
}
template
<
jit
::
KernelType
KT
,
typename
T
,
typename
PlaceType
>
void
BenchEmbSeqPoolKernel
()
{
std
::
vector
<
jit
::
SeqPoolType
>
pool_types
=
{
jit
::
SeqPoolType
::
kSum
};
int64_t
tbl_h
=
1e4
;
for
(
int
tbl_w
:
{
10
,
16
,
256
})
{
Tensor
table
;
table
.
Resize
({
tbl_h
,
tbl_w
});
RandomVec
<
T
>
(
tbl_h
*
tbl_w
,
table
.
mutable_data
<
T
>
(
PlaceType
()),
-
2.
f
,
2.
f
);
const
T
*
table_data
=
table
.
data
<
T
>
();
for
(
auto
type
:
pool_types
)
{
for
(
int
idx_w
:
{
1
,
2
,
10
,
16
})
{
for
(
int
idx_h
:
{
1
,
2
,
10
,
16
})
{
int64_t
out_w
=
tbl_w
*
idx_w
;
jit
::
emb_seq_pool_attr_t
attr
(
tbl_h
,
tbl_w
,
idx_h
,
idx_w
,
out_w
,
type
);
Tensor
idx
,
out
;
idx
.
Resize
({
idx_h
,
idx_w
});
out
.
Resize
({
out_w
});
RandomVec
<
int64_t
>
(
idx_h
*
idx_w
,
idx
.
mutable_data
<
int64_t
>
(
PlaceType
()),
0
,
tbl_h
-
1
);
const
int64_t
*
idx_data
=
idx
.
data
<
int64_t
>
();
T
*
o_data
=
out
.
mutable_data
<
T
>
(
PlaceType
());
BenchAllImpls
<
KT
,
jit
::
EmbSeqPoolTuples
<
T
>
,
PlaceType
>
(
attr
,
table_data
,
idx_data
,
o_data
,
&
attr
);
}
}
}
}
}
template
<
jit
::
KernelType
KT
,
typename
T
,
typename
PlaceType
>
void
BenchMatMulKernel
()
{
for
(
int
m
:
{
1
,
2
,
3
,
4
})
{
...
...
@@ -376,6 +407,11 @@ BENCH_FP32_CPU(kGRUHtPart2) { BenchGRUKernel<jit::kGRUHtPart2, T, CPUPlace>(); }
// seq pool function
BENCH_FP32_CPU
(
kSeqPool
)
{
BenchSeqPoolKernel
<
jit
::
kSeqPool
,
T
,
CPUPlace
>
();
}
// embedding seq pool function
BENCH_FP32_CPU
(
kEmbSeqPool
)
{
BenchEmbSeqPoolKernel
<
jit
::
kEmbSeqPool
,
T
,
CPUPlace
>
();
}
// matmul
BENCH_FP32_CPU
(
kMatMul
)
{
BenchMatMulKernel
<
jit
::
kMatMul
,
T
,
CPUPlace
>
();
}
...
...
paddle/fluid/operators/jit/helper.cc
浏览文件 @
15da2f9a
...
...
@@ -54,6 +54,7 @@ const char* to_string(KernelType kt) {
ONE_CASE
(
kHMax
);
ONE_CASE
(
kHSum
);
ONE_CASE
(
kSoftmax
);
ONE_CASE
(
kEmbSeqPool
);
default:
PADDLE_THROW
(
"Not support type: %d, or forget to add it."
,
kt
);
return
"NOT JITKernel"
;
...
...
paddle/fluid/operators/jit/helper.h
浏览文件 @
15da2f9a
...
...
@@ -172,6 +172,15 @@ inline std::ostream& operator<<(std::ostream& os, const seq_pool_attr_t& attr) {
return
os
;
}
inline
std
::
ostream
&
operator
<<
(
std
::
ostream
&
os
,
const
emb_seq_pool_attr_t
&
attr
)
{
os
<<
"table_height["
<<
attr
.
table_height
<<
"],table_width["
<<
attr
.
table_width
<<
"],index_height["
<<
attr
.
index_height
<<
"],index_width["
<<
attr
.
index_width
<<
"],output_width["
<<
attr
.
out_width
<<
"],pool_type["
<<
to_string
(
attr
.
pool_type
)
<<
"]"
;
return
os
;
}
inline
std
::
ostream
&
operator
<<
(
std
::
ostream
&
os
,
const
matmul_attr_t
&
attr
)
{
os
<<
"M["
<<
attr
.
m
<<
"],N["
<<
attr
.
n
<<
"],K["
<<
attr
.
k
<<
"]"
;
return
os
;
...
...
paddle/fluid/operators/jit/kernel_base.h
浏览文件 @
15da2f9a
...
...
@@ -13,6 +13,7 @@
* limitations under the License. */
#pragma once
#include <cstdint>
#include "paddle/fluid/operators/jit/macro.h"
#include "paddle/fluid/platform/macros.h"
...
...
@@ -20,34 +21,35 @@ namespace paddle {
namespace
operators
{
namespace
jit
{
// TODO(TJ): reorder by alphabet
typedef
enum
{
kNone
=
0
,
kVMul
=
1
,
kVAdd
=
2
,
kVAddRelu
,
kVSub
,
kVScal
,
kVAddBias
,
kVRelu
,
kVIdentity
,
kVSquare
,
kVExp
,
kVSigmoid
,
kVTanh
,
kLSTMCtHt
,
kLSTMC1H1
,
// sort by alphabet
kCRFDecoding
=
1
,
kEmbSeqPool
=
2
,
kGRUH1
,
kGRUHtPart1
,
kGRUHtPart2
,
kCRFDecoding
,
kHSum
,
// horizontal max
kHMax
,
// horizontal sum
kLSTMCtHt
,
kLSTMC1H1
,
kLayerNorm
,
kMatMul
,
kNCHW16CMulNC
,
kSeqPool
,
kMatMul
,
kHSum
,
// horizontal max
kHMax
,
// horizontal sum
kSoftmax
,
kVAdd
,
kVAddBias
,
kVAddRelu
,
kVExp
,
kVIdentity
,
kVMul
,
kVRelu
,
kVScal
,
kVSigmoid
,
kVSquare
,
kVSub
,
kVTanh
,
}
KernelType
;
typedef
enum
{
...
...
@@ -145,6 +147,32 @@ struct SeqPoolTuples {
typedef
void
(
*
func_type
)(
const
T
*
,
T
*
,
const
seq_pool_attr_t
*
);
};
typedef
struct
emb_seq_pool_attr_s
{
int64_t
table_height
,
table_width
;
int64_t
index_height
,
index_width
;
int64_t
out_width
;
SeqPoolType
pool_type
;
emb_seq_pool_attr_s
()
=
default
;
explicit
emb_seq_pool_attr_s
(
int64_t
tbl_height
,
int64_t
tbl_width
,
int64_t
idx_height
,
int64_t
idx_width
,
int64_t
output_width
,
SeqPoolType
seqpool_type
=
SeqPoolType
::
kSum
)
:
table_height
(
tbl_height
),
table_width
(
tbl_width
),
index_height
(
idx_height
),
index_width
(
idx_width
),
out_width
(
output_width
),
pool_type
(
seqpool_type
)
{}
}
emb_seq_pool_attr_t
;
template
<
typename
T
>
struct
EmbSeqPoolTuples
{
typedef
T
data_type
;
typedef
emb_seq_pool_attr_t
attr_type
;
typedef
void
(
*
func_type
)(
const
T
*
,
const
int64_t
*
,
T
*
,
const
emb_seq_pool_attr_t
*
);
};
typedef
struct
matmul_attr_s
{
int
m
,
n
,
k
;
void
*
packed_weight
{
nullptr
};
...
...
paddle/fluid/operators/jit/kernel_key.cc
浏览文件 @
15da2f9a
...
...
@@ -56,6 +56,11 @@ size_t JitCodeKey<matmul_attr_t>(const matmul_attr_t& attr) {
return
(
key
<<
shift
*
2
)
+
((
static_cast
<
size_t
>
(
attr
.
n
))
<<
shift
)
+
attr
.
k
;
}
template
<
>
size_t
JitCodeKey
<
emb_seq_pool_attr_t
>
(
const
emb_seq_pool_attr_t
&
attr
)
{
return
attr
.
table_width
;
}
}
// namespace jit
}
// namespace operators
}
// namespace paddle
paddle/fluid/operators/jit/refer/CMakeLists.txt
浏览文件 @
15da2f9a
...
...
@@ -32,3 +32,4 @@ USE_JITKERNEL_REFER(kVSquare)
USE_JITKERNEL_REFER
(
kHSum
)
USE_JITKERNEL_REFER
(
kHMax
)
USE_JITKERNEL_REFER
(
kSoftmax
)
USE_JITKERNEL_REFER
(
kEmbSeqPool
)
paddle/fluid/operators/jit/refer/refer.cc
浏览文件 @
15da2f9a
...
...
@@ -57,4 +57,6 @@ REGISTER_REFER_KERNEL(kHSum, HSum);
REGISTER_REFER_KERNEL
(
kSoftmax
,
Softmax
);
REGISTER_REFER_KERNEL
(
kEmbSeqPool
,
EmbSeqPool
);
#undef REGISTER_REFER_KERNEL
paddle/fluid/operators/jit/refer/refer.h
浏览文件 @
15da2f9a
...
...
@@ -16,6 +16,7 @@
#include <cmath>
#include <limits>
#include <string>
#include "paddle/fluid/operators/jit/helper.h"
#include "paddle/fluid/operators/jit/kernel_base.h"
#include "paddle/fluid/platform/enforce.h"
...
...
@@ -414,6 +415,37 @@ void Softmax(const T* x, T* y, int n, int bs = 1) {
}
}
// embedding seq pool
// table is a matrix with (tbl_h, tbl_w)
// idx is a matrix with (idx_h, idx_w)
// output is a vector with length tbl_w * idx_w
template
<
typename
T
>
void
EmbSeqPool
(
const
T
*
table
,
const
int64_t
*
idx
,
T
*
out
,
const
emb_seq_pool_attr_t
*
attr
)
{
PADDLE_ENFORCE_EQ
(
attr
->
table_width
*
attr
->
index_width
,
attr
->
out_width
);
auto
check_idx_value_valid
=
[
&
](
int64_t
i
)
{
PADDLE_ENFORCE_LT
(
idx
[
i
],
attr
->
table_height
,
"idx value: %d, i: %d"
,
idx
[
i
],
i
);
PADDLE_ENFORCE_GE
(
idx
[
i
],
0
,
"idx value: %d, i: %d"
,
idx
[
i
],
i
);
};
for
(
int64_t
w
=
0
;
w
!=
attr
->
index_width
;
++
w
)
{
check_idx_value_valid
(
w
);
std
::
memcpy
(
out
+
w
*
attr
->
table_width
,
table
+
idx
[
w
]
*
attr
->
table_width
,
attr
->
table_width
*
sizeof
(
T
));
}
for
(
int64_t
h
=
1
;
h
<
attr
->
index_height
;
++
h
)
{
for
(
int64_t
w
=
0
;
w
<
attr
->
index_width
;
++
w
)
{
int64_t
i
=
h
*
attr
->
index_width
+
w
;
check_idx_value_valid
(
i
);
VAdd
(
table
+
idx
[
i
]
*
attr
->
table_width
,
out
+
w
*
attr
->
table_width
,
out
+
w
*
attr
->
table_width
,
attr
->
table_width
);
}
}
}
#define DECLARE_REFER_KERNEL(name, tuples) \
template <typename T> \
class name##Kernel : public ReferKernel<tuples<T>> { \
...
...
@@ -462,6 +494,8 @@ DECLARE_REFER_KERNEL(HSum, XRNTuples);
DECLARE_REFER_KERNEL
(
Softmax
,
SoftmaxTuples
);
DECLARE_REFER_KERNEL
(
EmbSeqPool
,
EmbSeqPoolTuples
);
#undef DECLARE_REFER_KERNEL
}
// namespace refer
...
...
paddle/fluid/operators/jit/test.cc
浏览文件 @
15da2f9a
...
...
@@ -270,6 +270,32 @@ struct TestFuncWithRefer<jit::SeqPoolTuples<T>, std::vector<T>, std::vector<T>,
}
};
template
<
typename
T
>
struct
TestFuncWithRefer
<
jit
::
EmbSeqPoolTuples
<
T
>
,
std
::
vector
<
T
>
,
std
::
vector
<
int64_t
>
,
std
::
vector
<
T
>
,
typename
jit
::
EmbSeqPoolTuples
<
T
>::
attr_type
>
{
void
operator
()(
const
typename
jit
::
EmbSeqPoolTuples
<
T
>::
func_type
tgt
,
const
std
::
vector
<
T
>&
table
,
const
std
::
vector
<
int64_t
>&
idx
,
const
std
::
vector
<
T
>&
oref
,
const
typename
jit
::
EmbSeqPoolTuples
<
T
>::
attr_type
&
attr
)
{
EXPECT_TRUE
(
tgt
!=
nullptr
);
EXPECT_EQ
(
table
.
size
(),
static_cast
<
size_t
>
(
attr
.
table_height
*
attr
.
table_width
));
EXPECT_EQ
(
idx
.
size
(),
static_cast
<
size_t
>
(
attr
.
index_height
*
attr
.
index_width
));
EXPECT_EQ
(
oref
.
size
(),
static_cast
<
size_t
>
(
attr
.
table_width
*
attr
.
index_width
));
const
T
*
table_data
=
table
.
data
();
const
int64_t
*
idx_data
=
idx
.
data
();
const
T
*
oref_data
=
oref
.
data
();
int
o_w
=
oref
.
size
();
std
::
vector
<
T
>
out
(
o_w
);
T
*
o_data
=
out
.
data
();
tgt
(
table_data
,
idx_data
,
o_data
,
&
attr
);
ExpectEQ
<
T
>
(
o_data
,
oref_data
,
o_w
);
}
};
template
<
typename
T
>
struct
TestFuncWithRefer
<
jit
::
MatMulTuples
<
T
>
,
std
::
vector
<
T
>
,
std
::
vector
<
T
>
,
std
::
vector
<
T
>
,
...
...
@@ -587,6 +613,40 @@ void TestSoftmaxKernel() {
}
}
template
<
jit
::
KernelType
KT
,
typename
T
,
typename
PlaceType
>
void
TestEmbSeqPoolKernel
()
{
VLOG
(
10
)
<<
"===== Test JITKernel "
<<
jit
::
to_string
(
KT
);
int64_t
tbl_h
=
1e4
;
std
::
vector
<
jit
::
SeqPoolType
>
pool_types
=
{
jit
::
SeqPoolType
::
kSum
};
// only support sum yet
for
(
int
tbl_w
:
TestSizes
())
{
std
::
vector
<
T
>
table
(
tbl_h
*
tbl_w
);
RandomVec
<
T
>
(
tbl_h
*
tbl_w
,
table
.
data
(),
-
2.
f
,
2.
f
);
const
T
*
table_data
=
table
.
data
();
for
(
auto
type
:
pool_types
)
{
for
(
int
idx_w
:
{
1
,
2
,
10
,
16
})
{
for
(
int
idx_h
:
{
1
,
2
,
10
,
16
})
{
auto
ref
=
jit
::
GetRefer
<
KT
,
jit
::
EmbSeqPoolTuples
<
T
>>
();
EXPECT_TRUE
(
ref
!=
nullptr
);
std
::
vector
<
int64_t
>
idx
(
idx_h
*
idx_w
);
RandomVec
<
int64_t
>
(
idx_h
*
idx_w
,
idx
.
data
(),
0
,
tbl_h
-
1
);
int64_t
out_w
=
tbl_w
*
idx_w
;
std
::
vector
<
T
>
oref
(
out_w
);
const
int64_t
*
idx_data
=
idx
.
data
();
T
*
o_data
=
oref
.
data
();
jit
::
emb_seq_pool_attr_t
attr
(
tbl_h
,
tbl_w
,
idx_h
,
idx_w
,
out_w
,
type
);
ref
(
table_data
,
idx_data
,
o_data
,
&
attr
);
TestAllImpls
<
KT
,
jit
::
EmbSeqPoolTuples
<
T
>
,
PlaceType
,
std
::
vector
<
T
>
,
std
::
vector
<
int64_t
>
,
std
::
vector
<
T
>>
(
attr
,
table
,
idx
,
oref
,
attr
);
}
}
}
}
}
template
<
jit
::
KernelType
KT
,
typename
T
,
typename
PlaceType
>
void
TestNCHW16CMulNCKernel
()
{
VLOG
(
10
)
<<
"===== Test JITKernel "
<<
jit
::
to_string
(
KT
);
...
...
@@ -756,6 +816,11 @@ TEST(JITKernel, kSoftmax) {
TestSoftmaxKernel
<
jit
::
kSoftmax
,
double
,
CPUPlace
>
();
}
TEST
(
JITKernel
,
kEmbSeqPool
)
{
TestEmbSeqPoolKernel
<
jit
::
kEmbSeqPool
,
float
,
CPUPlace
>
();
TestEmbSeqPoolKernel
<
jit
::
kEmbSeqPool
,
double
,
CPUPlace
>
();
}
TEST
(
JITKernel
,
kNCHW16CMulNC
)
{
TestNCHW16CMulNCKernel
<
jit
::
kNCHW16CMulNC
,
float
,
CPUPlace
>
();
TestNCHW16CMulNCKernel
<
jit
::
kNCHW16CMulNC
,
double
,
CPUPlace
>
();
...
...
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