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PaddleDetection
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73a9c853
P
PaddleDetection
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73a9c853
编写于
12月 12, 2017
作者:
S
sweetsky0901
浏览文件
操作
浏览文件
下载
差异文件
Merge branch 'develop' of
https://github.com/PaddlePaddle/Paddle
into detection_output
上级
a3addcdc
a91efdde
变更
6
隐藏空白更改
内联
并排
Showing
6 changed file
with
74 addition
and
4 deletion
+74
-4
paddle/math/Matrix.cpp
paddle/math/Matrix.cpp
+22
-1
paddle/math/NEONFunctions.cpp
paddle/math/NEONFunctions.cpp
+40
-0
paddle/math/NEONFunctions.h
paddle/math/NEONFunctions.h
+1
-0
paddle/operators/row_conv_op.cu
paddle/operators/row_conv_op.cu
+0
-1
python/paddle/v2/fluid/layers.py
python/paddle/v2/fluid/layers.py
+4
-2
python/paddle/v2/fluid/nets.py
python/paddle/v2/fluid/nets.py
+7
-0
未找到文件。
paddle/math/Matrix.cpp
浏览文件 @
73a9c853
...
...
@@ -28,6 +28,7 @@ limitations under the License. */
#include "hl_top_k.h"
#include "paddle/utils/Logging.h"
#include "NEONFunctions.h"
#include "paddle/function/GemmFunctor.h"
#include "paddle/utils/ThreadLocal.h"
...
...
@@ -4165,16 +4166,36 @@ void CpuMatrix::print(std::ostream& os) const {
void
CpuMatrix
::
paramReluForward
(
Matrix
&
data
,
Matrix
&
W
)
{
real
*
input
=
data
.
getData
();
real
*
w
=
W
.
getData
();
real
*
output
=
data_
;
size_t
numElements
=
data
.
getWidth
();
size_t
numSamples
=
data
.
getHeight
();
size_t
paraSize
=
W
.
getHeight
()
*
W
.
getWidth
();
CHECK
(
!
(
numElements
%
paraSize
));
// this check from ParameterReluLayer::init
size_t
partial_sum
=
numElements
/
paraSize
;
if
(
paraSize
==
numElements
)
{
for
(
size_t
n
=
0
;
n
<
numSamples
*
numElements
;
++
n
)
{
output
[
n
]
=
input
[
n
]
>
0
?
input
[
n
]
:
input
[
n
]
*
w
[
n
%
numElements
];
}
return
;
}
#if defined(__ARM_NEON__) || defined(__ARM_NEON)
for
(
size_t
n
=
0
;
n
<
numSamples
;
++
n
)
{
for
(
size_t
i
=
0
;
i
<
paraSize
;
i
++
)
{
neon
::
prelu
(
input
+
i
*
partial_sum
,
w
[
i
],
output
+
i
*
partial_sum
,
partial_sum
);
}
input
=
input
+
numElements
;
output
=
output
+
numElements
;
}
#else
for
(
size_t
n
=
0
,
k
=
0
;
n
<
numSamples
;
++
n
)
{
for
(
size_t
i
=
0
;
i
<
numElements
;
++
i
,
++
k
)
{
data_
[
k
]
=
input
[
k
]
>
0
?
input
[
k
]
:
input
[
k
]
*
w
[
i
/
partial_sum
];
output
[
k
]
=
input
[
k
]
>
0
?
input
[
k
]
:
input
[
k
]
*
w
[
i
/
partial_sum
];
}
}
#endif
}
void
CpuMatrix
::
paramReluBackwardW
(
Matrix
&
oGrad
,
Matrix
&
data
)
{
...
...
paddle/math/NEONFunctions.cpp
浏览文件 @
73a9c853
...
...
@@ -49,6 +49,46 @@ void relu(const float* a, float* b, int len) {
}
}
// b[i] = a[i] > 0.0f ? a[i] : a[i] * w
void
prelu
(
const
float
*
a
,
float
w
,
float
*
b
,
int
len
)
{
int
offset
=
len
%
16
;
float32x4_t
ma0
,
ma1
,
ma2
,
ma3
;
float32x4_t
zero
=
vdupq_n_f32
(
0.
f
);
float32x4_t
vw
=
vdupq_n_f32
(
w
);
for
(
int
k
=
0
;
k
<
len
/
16
;
k
++
,
a
+=
16
,
b
+=
16
)
{
ma0
=
vld1q_f32
(
a
);
ma1
=
vld1q_f32
(
a
+
4
);
ma2
=
vld1q_f32
(
a
+
8
);
ma3
=
vld1q_f32
(
a
+
12
);
uint32x4_t
flag0
=
vcgtq_f32
(
ma0
,
zero
);
uint32x4_t
flag1
=
vcgtq_f32
(
ma1
,
zero
);
uint32x4_t
flag2
=
vcgtq_f32
(
ma2
,
zero
);
uint32x4_t
flag3
=
vcgtq_f32
(
ma3
,
zero
);
float32x4_t
mul0
=
vmulq_f32
(
ma0
,
vw
);
float32x4_t
mul1
=
vmulq_f32
(
ma1
,
vw
);
float32x4_t
mul2
=
vmulq_f32
(
ma2
,
vw
);
float32x4_t
mul3
=
vmulq_f32
(
ma3
,
vw
);
ma0
=
vbslq_f32
(
flag0
,
ma0
,
mul0
);
ma1
=
vbslq_f32
(
flag1
,
ma1
,
mul1
);
ma2
=
vbslq_f32
(
flag2
,
ma2
,
mul2
);
ma3
=
vbslq_f32
(
flag3
,
ma3
,
mul3
);
vst1q_f32
(
b
,
ma0
);
vst1q_f32
(
b
+
4
,
ma1
);
vst1q_f32
(
b
+
8
,
ma2
);
vst1q_f32
(
b
+
12
,
ma3
);
}
for
(
int
i
=
0
;
i
<
offset
;
i
++
)
{
b
[
i
]
=
a
[
i
]
>
0.0
f
?
a
[
i
]
:
a
[
i
]
*
w
;
}
}
}
// namespace neon
}
// namespace paddle
...
...
paddle/math/NEONFunctions.h
浏览文件 @
73a9c853
...
...
@@ -18,6 +18,7 @@ namespace paddle {
namespace
neon
{
void
relu
(
const
float
*
a
,
float
*
b
,
int
len
);
void
prelu
(
const
float
*
a
,
float
w
,
float
*
b
,
int
len
);
}
// namespace neon
}
// namespace paddle
paddle/operators/row_conv_op.cu
浏览文件 @
73a9c853
...
...
@@ -243,7 +243,6 @@ __global__ void RowConvGradFilter(const T *in, const T *dout, int num_sequence,
int
block_x
,
int
block_y
,
const
size_t
*
batch_indices
,
T
*
dfilter
)
{
int
blx
=
blockDim
.
x
;
int
bly
=
blockDim
.
y
;
int
thx
=
threadIdx
.
x
;
int
thy
=
threadIdx
.
y
;
int
gx
=
blockIdx
.
x
*
blx
;
...
...
python/paddle/v2/fluid/layers.py
浏览文件 @
73a9c853
...
...
@@ -1732,8 +1732,10 @@ def conv2d_transpose(input,
h_in
=
input
.
shape
[
2
]
w_in
=
input
.
shape
[
3
]
filter_size_h
=
output_size
[
0
]
-
(
h_in
-
1
)
*
stride
[
0
]
+
2
*
padding
[
0
]
filter_size_w
=
output_size
[
1
]
-
(
w_in
-
1
)
*
stride
[
1
]
+
2
*
padding
[
1
]
filter_size_h
=
output_size
[
0
]
-
\
(
h_in
-
1
)
*
stride
[
0
]
+
2
*
padding
[
0
]
filter_size_w
=
output_size
[
1
]
-
\
(
w_in
-
1
)
*
stride
[
1
]
+
2
*
padding
[
1
]
filter_size
=
[
filter_size_h
,
filter_size_w
]
elif
isinstance
(
filter_size
,
int
):
filter_size
=
[
filter_size
,
filter_size
]
...
...
python/paddle/v2/fluid/nets.py
浏览文件 @
73a9c853
...
...
@@ -9,6 +9,7 @@ def simple_img_conv_pool(input,
pool_size
,
pool_stride
,
act
,
param_attr
=
None
,
pool_type
=
'max'
,
main_program
=
None
,
startup_program
=
None
):
...
...
@@ -16,6 +17,7 @@ def simple_img_conv_pool(input,
input
=
input
,
num_filters
=
num_filters
,
filter_size
=
filter_size
,
param_attr
=
param_attr
,
act
=
act
,
main_program
=
main_program
,
startup_program
=
startup_program
)
...
...
@@ -36,6 +38,7 @@ def img_conv_group(input,
conv_padding
=
1
,
conv_filter_size
=
3
,
conv_act
=
None
,
param_attr
=
None
,
conv_with_batchnorm
=
False
,
conv_batchnorm_drop_rate
=
None
,
pool_stride
=
1
,
...
...
@@ -57,6 +60,7 @@ def img_conv_group(input,
conv_padding
=
__extend_list__
(
conv_padding
)
conv_filter_size
=
__extend_list__
(
conv_filter_size
)
param_attr
=
__extend_list__
(
param_attr
)
conv_with_batchnorm
=
__extend_list__
(
conv_with_batchnorm
)
conv_batchnorm_drop_rate
=
__extend_list__
(
conv_batchnorm_drop_rate
)
...
...
@@ -70,6 +74,7 @@ def img_conv_group(input,
num_filters
=
conv_num_filter
[
i
],
filter_size
=
conv_filter_size
[
i
],
padding
=
conv_padding
[
i
],
param_attr
=
param_attr
[
i
],
act
=
local_conv_act
,
main_program
=
main_program
,
startup_program
=
startup_program
)
...
...
@@ -101,6 +106,7 @@ def img_conv_group(input,
def
sequence_conv_pool
(
input
,
num_filters
,
filter_size
,
param_attr
=
None
,
act
=
"sigmoid"
,
pool_type
=
"max"
,
main_program
=
None
,
...
...
@@ -109,6 +115,7 @@ def sequence_conv_pool(input,
input
=
input
,
num_filters
=
num_filters
,
filter_size
=
filter_size
,
param_attr
=
param_attr
,
act
=
act
,
main_program
=
main_program
,
startup_program
=
startup_program
)
...
...
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