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b8de1401
编写于
12月 24, 2017
作者:
C
Cao Ying
提交者:
GitHub
12月 24, 2017
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差异文件
Merge pull request #6919 from lcy-seso/fix_doc
fix doc.
上级
7d8e8d90
515e44e5
变更
2
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2 changed file
with
15 addition
and
15 deletion
+15
-15
paddle/operators/transpose_op.cc
paddle/operators/transpose_op.cc
+13
-12
paddle/operators/unpool_op.cc
paddle/operators/unpool_op.cc
+2
-3
未找到文件。
paddle/operators/transpose_op.cc
浏览文件 @
b8de1401
...
@@ -70,16 +70,17 @@ class TransposeOpMaker : public framework::OpProtoAndCheckerMaker {
...
@@ -70,16 +70,17 @@ class TransposeOpMaker : public framework::OpProtoAndCheckerMaker {
Transpose Operator.
Transpose Operator.
The input tensor will be permuted according to the axis values given.
The input tensor will be permuted according to the axis values given.
The op functions similar to how numpy.transpose works in python.
The op functions
is
similar to how numpy.transpose works in python.
For example:
>>
input = numpy.arange(6).reshape((2,3))
For example:
input = numpy.arange(6).reshape((2,3))
>> input
the input is:
array([[0, 1, 2],
array([[0, 1, 2],
[3, 4, 5]])
[3, 4, 5]])
>> axis = [1, 0]
given axis is: [1, 0]
>> output = input.transpose(axis)
>> output
output = input.transpose(axis)
array([[0, 3],
then the output is:
array([[0, 3],
[1, 4],
[1, 4],
[2, 5]])
[2, 5]])
So, given a input tensor of shape(N, C, H, W) and the axis is {0, 2, 3, 1},
So, given a input tensor of shape(N, C, H, W) and the axis is {0, 2, 3, 1},
...
...
paddle/operators/unpool_op.cc
浏览文件 @
b8de1401
...
@@ -53,9 +53,8 @@ class Unpool2dOpMaker : public framework::OpProtoAndCheckerMaker {
...
@@ -53,9 +53,8 @@ class Unpool2dOpMaker : public framework::OpProtoAndCheckerMaker {
"(string), unpooling type, can be
\"
max
\"
for max-unpooling "
)
"(string), unpooling type, can be
\"
max
\"
for max-unpooling "
)
.
InEnum
({
"max"
});
.
InEnum
({
"max"
});
AddComment
(
R"DOC(
AddComment
(
R"DOC(
"Input shape: $(N, C_{in}, H_{in}, W_{in})$,
Input shape is: $(N, C_{in}, H_{in}, W_{in})$, Output shape is:
Output shape: $(N, C_{out}, H_{out}, W_{out})$
$(N, C_{out}, H_{out}, W_{out})$, where
Where
$$
$$
H_{out} = (H_{in}−1) * strides[0] − 2 * paddings[0] + ksize[0] \\
H_{out} = (H_{in}−1) * strides[0] − 2 * paddings[0] + ksize[0] \\
W_{out} = (W_{in}−1) * strides[1] − 2 * paddings[1] + ksize[1]
W_{out} = (W_{in}−1) * strides[1] − 2 * paddings[1] + ksize[1]
...
...
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