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体验新版 GitCode,发现更多精彩内容 >>
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b6f9ba48
编写于
11月 08, 2017
作者:
C
chengduoZH
浏览文件
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电子邮件补丁
差异文件
fix conv2d doc
上级
97e9dd72
变更
2
隐藏空白更改
内联
并排
Showing
2 changed file
with
14 addition
and
5 deletion
+14
-5
paddle/operators/conv_op.cc
paddle/operators/conv_op.cc
+10
-4
python/paddle/v2/framework/tests/test_conv2d_op.py
python/paddle/v2/framework/tests/test_conv2d_op.py
+4
-1
未找到文件。
paddle/operators/conv_op.cc
浏览文件 @
b6f9ba48
...
...
@@ -54,6 +54,12 @@ void ConvOp::InferShape(framework::InferShapeContext* ctx) const {
std
::
vector
<
int64_t
>
output_shape
({
in_dims
[
0
],
filter_dims
[
0
]});
for
(
size_t
i
=
0
;
i
<
paddings
.
size
();
++
i
)
{
PADDLE_ENFORCE
(
in_dims
[
i
+
2
]
+
2
*
paddings
[
i
]
-
(
dilations
[
i
]
*
(
filter_dims
[
i
+
2
]
-
1
)
+
1
)
>
0
,
"Due to the settings of paddings, filter_dims and "
"dilations, the output size is less than 0, please check "
"again."
);
output_shape
.
push_back
(
OutputSize
(
in_dims
[
i
+
2
],
filter_dims
[
i
+
2
],
dilations
[
i
],
paddings
[
i
],
paddings
[
i
],
strides
[
i
]));
...
...
@@ -100,11 +106,11 @@ Conv2DOpMaker::Conv2DOpMaker(framework::OpProto* proto,
Convolution Operator.
The convolution operation calculates the output based on the input, filter
and strides, paddings, groups parameters. The size of each dimension of the
and strides, paddings, groups
, dilations
parameters. The size of each dimension of the
parameters is checked in the infer-shape.
Input(Input, Filter) and output(Output) are in NCHW format. Where N is batch
size, C is the number of channels, H is the height of the feature, and W is
the width of the feature. Parameters(ksize, strides, paddings) are two elements.
the width of the feature. Parameters(ksize, strides, paddings
, dilations
) are two elements.
These two elements represent height and width, respectively.
The input(X) size and output(Out) size may be different.
...
...
@@ -115,8 +121,8 @@ Example:
Output:
Output shape: (N, C_out, H_out, W_out)
where
H_out = (H_in
- filter_size[0] + 2 * paddings[0]
) / strides[0] + 1;
W_out = (W_in
- filter_size[1] + 2 * paddings[1]
) / strides[1] + 1;
H_out = (H_in
+ 2 * paddings[0] - (dilations[0]*(filter_size[0] - 1) + 1)
) / strides[0] + 1;
W_out = (W_in
+ 2 * paddings[1] - (dilations[1]*(filter_size[1] - 1) + 1)
) / strides[1] + 1;
)DOC"
);
}
...
...
python/paddle/v2/framework/tests/test_conv2d_op.py
浏览文件 @
b6f9ba48
...
...
@@ -39,6 +39,7 @@ class TestConv2dOp(OpTest):
def
setUp
(
self
):
self
.
init_op_type
()
self
.
init_group
()
self
.
init_dilation
()
self
.
init_test_case
()
conv2d_param
=
{
'stride'
:
self
.
stride
,
'pad'
:
self
.
pad
}
...
...
@@ -80,12 +81,14 @@ class TestConv2dOp(OpTest):
def
init_test_case
(
self
):
self
.
pad
=
[
0
,
0
]
self
.
stride
=
[
1
,
1
]
self
.
dilations
=
[
1
,
1
]
self
.
input_size
=
[
2
,
3
,
5
,
5
]
# NCHW
assert
np
.
mod
(
self
.
input_size
[
1
],
self
.
groups
)
==
0
f_c
=
self
.
input_size
[
1
]
/
self
.
groups
self
.
filter_size
=
[
6
,
f_c
,
3
,
3
]
def
init_dilation
(
self
):
self
.
dilations
=
[
1
,
1
]
def
init_group
(
self
):
self
.
groups
=
1
...
...
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