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55d6b87c
编写于
1月 26, 2022
作者:
J
joeqiao12
提交者:
GitHub
1月 26, 2022
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电子邮件补丁
差异文件
sum op (#39165)
上级
b75507d3
变更
2
显示空白变更内容
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Showing
2 changed file
with
190 addition
and
0 deletion
+190
-0
paddle/fluid/operators/sum_op_mlu.cc
paddle/fluid/operators/sum_op_mlu.cc
+74
-0
python/paddle/fluid/tests/unittests/mlu/test_sum_op_mlu.py
python/paddle/fluid/tests/unittests/mlu/test_sum_op_mlu.py
+116
-0
未找到文件。
paddle/fluid/operators/sum_op_mlu.cc
0 → 100644
浏览文件 @
55d6b87c
/* Copyright (c) 2022 PaddlePaddle Authors. All Rights Reserved.
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
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 "paddle/fluid/operators/sum_op.h"
#include "paddle/fluid/operators/mlu/mlu_baseop.h"
namespace
paddle
{
namespace
operators
{
using
Tensor
=
framework
::
Tensor
;
template
<
typename
DeviceContext
,
typename
T
>
class
SumMLUKernel
:
public
framework
::
OpKernel
<
T
>
{
public:
void
Compute
(
const
framework
::
ExecutionContext
&
ctx
)
const
override
{
auto
out_var
=
ctx
.
OutputVar
(
"Out"
);
if
(
out_var
->
IsType
<
framework
::
LoDTensor
>
())
{
// init
auto
*
out
=
out_var
->
GetMutable
<
framework
::
LoDTensor
>
();
auto
ins
=
ctx
.
MultiInput
<
Tensor
>
(
"X"
);
out
->
mutable_data
<
T
>
(
ctx
.
GetPlace
());
auto
place
=
ctx
.
GetPlace
();
int
ins_size
=
static_cast
<
int
>
(
ins
.
size
());
if
(
ins_size
==
1
)
{
TensorCopy
(
*
ins
[
0
],
place
,
out
);
return
;
}
// MLU shoul do sth
std
::
vector
<
const
void
*>
inputs
;
std
::
vector
<
MLUCnnlTensorDesc
>
input_descs
;
std
::
vector
<
cnnlTensorDescriptor_t
>
desc_vector
;
for
(
int
i
=
0
;
i
<
ins_size
;
i
++
)
{
input_descs
.
emplace_back
(
MLUCnnlTensorDesc
(
*
ins
[
i
],
CNNL_LAYOUT_ARRAY
,
ToCnnlDataType
(
ins
[
i
]
->
type
())));
desc_vector
.
push_back
(
input_descs
.
back
().
get
());
inputs
.
push_back
(
GetBasePtr
(
ins
[
i
]));
}
// init out tensors
MLUCnnlTensorDesc
output_desc
(
*
out
,
CNNL_LAYOUT_ARRAY
,
ToCnnlDataType
(
out
->
type
()));
uint32_t
ins_size_t
=
static_cast
<
uint32_t
>
(
ins_size
);
MLUCnnl
::
AddN
(
ctx
,
ins_size_t
,
desc_vector
.
data
(),
inputs
.
data
(),
output_desc
.
get
(),
GetBasePtr
(
out
));
}
else
{
PADDLE_THROW
(
platform
::
errors
::
InvalidArgument
(
"Expected type of Output(out) must be Tensor or But got "
"unsupport type: %s."
,
framework
::
ToTypeName
(
out_var
->
Type
())));
}
}
};
}
// namespace operators
}
// namespace paddle
namespace
ops
=
paddle
::
operators
;
REGISTER_OP_MLU_KERNEL
(
sum
,
ops
::
SumMLUKernel
<
paddle
::
platform
::
MLUDeviceContext
,
float
>
,
ops
::
SumMLUKernel
<
paddle
::
platform
::
MLUDeviceContext
,
paddle
::
platform
::
float16
>
);
python/paddle/fluid/tests/unittests/mlu/test_sum_op_mlu.py
0 → 100755
浏览文件 @
55d6b87c
# Copyright (c) 2022 PaddlePaddle Authors. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# 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.
from
__future__
import
print_function
import
numpy
as
np
import
unittest
import
sys
sys
.
path
.
append
(
".."
)
from
op_test
import
OpTest
import
paddle
import
paddle.fluid
as
fluid
import
paddle.fluid.core
as
core
paddle
.
enable_static
()
SEED
=
2021
class
TestSum1
(
OpTest
):
def
setUp
(
self
):
self
.
set_mlu
()
self
.
init_dtype
()
self
.
op_type
=
"sum"
self
.
place
=
paddle
.
MLUPlace
(
0
)
x0
=
np
.
random
.
random
((
3
,
40
)).
astype
(
self
.
dtype
)
x1
=
np
.
random
.
random
((
3
,
40
)).
astype
(
self
.
dtype
)
x2
=
np
.
random
.
random
((
3
,
40
)).
astype
(
self
.
dtype
)
self
.
inputs
=
{
'X'
:
[(
"x0"
,
x0
),
(
"x1"
,
x1
),
(
"x2"
,
x2
)]}
y
=
x0
+
x1
+
x2
self
.
outputs
=
{
'Out'
:
y
}
self
.
attrs
=
{
'use_mkldnn'
:
False
}
def
init_dtype
(
self
):
self
.
dtype
=
np
.
float32
def
set_mlu
(
self
):
self
.
__class__
.
use_mlu
=
True
def
test_check_output
(
self
):
self
.
check_output_with_place
(
self
.
place
)
class
TestSum2
(
OpTest
):
def
setUp
(
self
):
self
.
set_mlu
()
self
.
init_dtype
()
self
.
op_type
=
"sum"
self
.
place
=
paddle
.
MLUPlace
(
0
)
x0
=
np
.
random
.
random
((
3
,
3
)).
astype
(
self
.
dtype
)
x1
=
np
.
random
.
random
((
3
,
3
)).
astype
(
self
.
dtype
)
x2
=
np
.
random
.
random
((
3
,
3
)).
astype
(
self
.
dtype
)
x3
=
np
.
random
.
random
((
3
,
3
)).
astype
(
self
.
dtype
)
self
.
inputs
=
{
'X'
:
[(
"x0"
,
x0
),
(
"x1"
,
x1
),
(
"x2"
,
x2
),
(
"x3"
,
x3
)]}
# There will be a problem if just using `y=x0+x1+x2+x3` to calculate the
# summation result as the reference standard result. The reason is that
# numpy's fp16 data has precision loss when doing `add` operation.
# For example, the results of `x0+x1+x2+x3` is different from that of
# `x3+x2+x1+x0` if the dtype is fp16.
# Therefore, converting the input to fp32 for calculation.
y
=
(
x0
.
astype
(
np
.
float32
)
+
x1
.
astype
(
np
.
float32
)
+
x2
.
astype
(
np
.
float32
)
+
x3
.
astype
(
np
.
float32
)).
astype
(
self
.
dtype
)
self
.
outputs
=
{
'Out'
:
y
}
self
.
attrs
=
{
'use_mkldnn'
:
False
}
def
init_dtype
(
self
):
self
.
dtype
=
np
.
float16
def
set_mlu
(
self
):
self
.
__class__
.
use_mlu
=
True
def
test_check_output
(
self
):
self
.
check_output_with_place
(
self
.
place
)
class
TestSum3
(
OpTest
):
def
setUp
(
self
):
self
.
set_mlu
()
self
.
init_dtype
()
self
.
op_type
=
"sum"
self
.
place
=
paddle
.
MLUPlace
(
0
)
x0
=
np
.
random
.
random
((
3
,
3
)).
astype
(
self
.
dtype
)
self
.
inputs
=
{
'X'
:
[(
"x0"
,
x0
)]}
y
=
x0
self
.
outputs
=
{
'Out'
:
y
}
self
.
attrs
=
{
'use_mkldnn'
:
False
}
def
init_dtype
(
self
):
self
.
dtype
=
np
.
float16
def
set_mlu
(
self
):
self
.
__class__
.
use_mlu
=
True
def
test_check_output
(
self
):
self
.
check_output_with_place
(
self
.
place
)
if
__name__
==
'__main__'
:
unittest
.
main
()
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