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40aee48a
编写于
9月 26, 2017
作者:
C
caoying03
浏览文件
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电子邮件补丁
差异文件
follow comments.
上级
3d77360b
变更
1
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Showing
1 changed file
with
14 addition
and
14 deletion
+14
-14
paddle/operators/softmax_with_cross_entropy_op.cc
paddle/operators/softmax_with_cross_entropy_op.cc
+14
-14
未找到文件。
paddle/operators/softmax_with_cross_entropy_op.cc
浏览文件 @
40aee48a
...
@@ -23,11 +23,6 @@ class SoftmaxWithCrossEntropyOpMaker
...
@@ -23,11 +23,6 @@ class SoftmaxWithCrossEntropyOpMaker
SoftmaxWithCrossEntropyOpMaker
(
framework
::
OpProto
*
proto
,
SoftmaxWithCrossEntropyOpMaker
(
framework
::
OpProto
*
proto
,
framework
::
OpAttrChecker
*
op_checker
)
framework
::
OpAttrChecker
*
op_checker
)
:
OpProtoAndCheckerMaker
(
proto
,
op_checker
)
{
:
OpProtoAndCheckerMaker
(
proto
,
op_checker
)
{
AddAttr
<
bool
>
(
"softLabel"
,
"(bool, default: false), A flag to indicate whether to interpretate "
"the given labels as soft labels."
)
.
SetDefault
(
false
);
AddInput
(
"Logits"
,
AddInput
(
"Logits"
,
"(Tensor, default: Tensor<float>), The unscaled log probabilities "
"(Tensor, default: Tensor<float>), The unscaled log probabilities "
"which is a 2-D tensor with shape [N x K]. N is the batch_size, "
"which is a 2-D tensor with shape [N x K]. N is the batch_size, "
...
@@ -49,6 +44,11 @@ class SoftmaxWithCrossEntropyOpMaker
...
@@ -49,6 +44,11 @@ class SoftmaxWithCrossEntropyOpMaker
AddOutput
(
"Loss"
,
AddOutput
(
"Loss"
,
"(Tensor, default: Tensor<float>), A 2-D tensor. The cross "
"(Tensor, default: Tensor<float>), A 2-D tensor. The cross "
"entropy loss with shape [N x 1]."
);
"entropy loss with shape [N x 1]."
);
AddAttr
<
bool
>
(
"softLabel"
,
"(bool, default: false), A flag to indicate whether to interpretate "
"the given labels as soft labels."
)
.
SetDefault
(
false
);
AddComment
(
R"DOC(
AddComment
(
R"DOC(
Cross entropy loss with softmax are used as the output layer extensively. This
Cross entropy loss with softmax are used as the output layer extensively. This
operator computes the softmax normalized values for each row of the input
operator computes the softmax normalized values for each row of the input
...
@@ -95,18 +95,18 @@ class SoftmaxWithCrossEntropyOp : public framework::OperatorWithKernel {
...
@@ -95,18 +95,18 @@ class SoftmaxWithCrossEntropyOp : public framework::OperatorWithKernel {
const
Tensor
*
logits
=
ctx
.
Input
<
Tensor
>
(
"Logits"
);
const
Tensor
*
logits
=
ctx
.
Input
<
Tensor
>
(
"Logits"
);
const
Tensor
*
labels
=
ctx
.
Input
<
Tensor
>
(
"Label"
);
const
Tensor
*
labels
=
ctx
.
Input
<
Tensor
>
(
"Label"
);
PADDLE_ENFORCE
(
PADDLE_ENFORCE
_EQ
(
logits
->
dims
().
size
()
==
2UL
,
logits
->
dims
().
size
()
,
2UL
,
"The input of softmax_with_cross_entropy should be a 2-D tensor."
);
"The input of softmax_with_cross_entropy should be a 2-D tensor."
);
PADDLE_ENFORCE
(
ctx
.
Input
<
Tensor
>
(
"Label"
)
->
dims
().
size
()
==
2UL
,
PADDLE_ENFORCE
_EQ
(
ctx
.
Input
<
Tensor
>
(
"Label"
)
->
dims
().
size
(),
2UL
,
"The labels should be a 2-D tensor."
);
"The labels should be a 2-D tensor."
);
if
(
ctx
.
Attr
<
bool
>
(
"softLabel"
))
{
if
(
ctx
.
Attr
<
bool
>
(
"softLabel"
))
{
PADDLE_ENFORCE_EQ
(
logits
->
dims
()[
1
],
labels
->
dims
()[
1
],
PADDLE_ENFORCE_EQ
(
logits
->
dims
()[
1
],
labels
->
dims
()[
1
],
"If Attr(softLabel) == true, the 2nd dimension of "
"If Attr(softLabel) == true, the 2nd dimension of "
"Input(X) and Input(Label) should be equal."
);
"Input(X) and Input(Label) should be equal."
);
}
else
{
}
else
{
PADDLE_ENFORCE_EQ
(
labels
->
dims
()[
1
],
1
,
PADDLE_ENFORCE_EQ
(
labels
->
dims
()[
1
],
1
UL
,
"If Attr(softLabel) == false, the 2nd dimension of "
"If Attr(softLabel) == false, the 2nd dimension of "
"Input(Label) should be 1."
);
"Input(Label) should be 1."
);
}
}
...
@@ -130,21 +130,21 @@ class SoftmaxWithCrossEntropyOpGrad : public framework::OperatorWithKernel {
...
@@ -130,21 +130,21 @@ class SoftmaxWithCrossEntropyOpGrad : public framework::OperatorWithKernel {
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Softmax"
),
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Softmax"
),
"Input(Softmax) should be not null."
);
"Input(Softmax) should be not null."
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Label"
),
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Label"
),
"Input(Lab
le
) should be not null."
);
"Input(Lab
el
) should be not null."
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
OutputVar
(
framework
::
GradVarName
(
"Logits"
)),
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
OutputVar
(
framework
::
GradVarName
(
"Logits"
)),
"Output(Logits@Grad) should be not null."
);
"Output(Logits@Grad) should be not null."
);
const
Tensor
*
softmax
=
ctx
.
Input
<
Tensor
>
(
"Softmax"
);
const
Tensor
*
softmax
=
ctx
.
Input
<
Tensor
>
(
"Softmax"
);
const
Tensor
*
labels
=
ctx
.
Input
<
Tensor
>
(
"Label"
);
const
Tensor
*
labels
=
ctx
.
Input
<
Tensor
>
(
"Label"
);
PADDLE_ENFORCE
(
ctx
.
Input
<
Tensor
>
(
"Label"
)
->
dims
().
size
()
==
2UL
,
PADDLE_ENFORCE
_EQ
(
ctx
.
Input
<
Tensor
>
(
"Label"
)
->
dims
().
size
(),
2UL
,
"The labels should be a 2-D tensor."
);
"The labels should be a 2-D tensor."
);
if
(
ctx
.
Attr
<
bool
>
(
"softLabel"
))
{
if
(
ctx
.
Attr
<
bool
>
(
"softLabel"
))
{
PADDLE_ENFORCE_EQ
(
softmax
->
dims
()[
1
],
labels
->
dims
()[
1
],
PADDLE_ENFORCE_EQ
(
softmax
->
dims
()[
1
],
labels
->
dims
()[
1
],
"When Attr(softLabel) == true, the 2nd dimension of "
"When Attr(softLabel) == true, the 2nd dimension of "
"Input(X) and Input(Label) should be equal."
);
"Input(X) and Input(Label) should be equal."
);
}
else
{
}
else
{
PADDLE_ENFORCE_EQ
(
labels
->
dims
()[
1
],
1
,
PADDLE_ENFORCE_EQ
(
labels
->
dims
()[
1
],
1
UL
,
"When Attr(softLabel) == false, the 2nd dimension of "
"When Attr(softLabel) == false, the 2nd dimension of "
"Input(Label) should be 1."
);
"Input(Label) should be 1."
);
}
}
...
...
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