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c550e0ce
编写于
12月 14, 2018
作者:
M
minqiyang
浏览文件
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电子邮件补丁
差异文件
Add python interface for huber regression loss
test=develop
上级
6776e928
变更
2
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并排
Showing
2 changed file
with
63 addition
and
13 deletion
+63
-13
paddle/fluid/operators/huber_loss_op.cc
paddle/fluid/operators/huber_loss_op.cc
+4
-3
python/paddle/fluid/layers/nn.py
python/paddle/fluid/layers/nn.py
+59
-10
未找到文件。
paddle/fluid/operators/huber_loss_op.cc
浏览文件 @
c550e0ce
...
...
@@ -124,8 +124,9 @@ REGISTER_OPERATOR(huber_loss, ops::HuberLossOp, ops::HuberLossOpMaker<float>,
paddle
::
framework
::
DefaultGradOpDescMaker
<
true
>
);
REGISTER_OPERATOR
(
huber_loss_grad
,
ops
::
HuberLossGradOp
);
REGISTER_OP_CPU_KERNEL
(
huber_loss
,
ops
::
HuberLossKernel
<
paddle
::
platform
::
CPUDeviceContext
,
float
>
);
huber_loss
,
ops
::
HuberLossKernel
<
paddle
::
platform
::
CPUDeviceContext
,
float
>
,
ops
::
HuberLossKernel
<
paddle
::
platform
::
CPUDeviceContext
,
double
>
);
REGISTER_OP_CPU_KERNEL
(
huber_loss_grad
,
ops
::
HuberLossGradKernel
<
paddle
::
platform
::
CPUDeviceContext
,
float
>
);
ops
::
HuberLossGradKernel
<
paddle
::
platform
::
CPUDeviceContext
,
float
>
,
ops
::
HuberLossGradKernel
<
paddle
::
platform
::
CPUDeviceContext
,
double
>
);
python/paddle/fluid/layers/nn.py
浏览文件 @
c550e0ce
...
...
@@ -169,6 +169,7 @@ __all__ = [
'log_loss'
,
'add_position_encoding'
,
'bilinear_tensor_product'
,
'huber_regression_loss'
,
]
...
...
@@ -8770,3 +8771,51 @@ def bilinear_tensor_product(x,
# add activation
return
helper
.
append_activation
(
out
)
def
huber_regression_loss
(
input
,
label
,
delta
):
"""
Huber regression loss is a loss function used in robust regression.
Huber regression loss can evaluate the fitness of input to label.
Different from MSE loss, Huber regression loss is more robust for outliers.
When the difference between input and label is large than delta
.. math::
huber\_regression\_loss = delta * (label - input) - 0.5 * delta * delta
When the difference between input and label is less than delta
.. math::
huber\_regression\_loss = 0.5 * (label - input) * (label - input)
Args:
input (Variable): This input is a probability computed by the previous operator.
The first dimension is batch size, and the last dimension is 1.
label (Variable): The groud truth whose first dimension is batch size
and last dimension is 1.
delta (float): The parameter of huber regression loss, which controls
the range of outliers
Returns:
huber\_regression\_loss (Variable): The huber regression loss with shape [batch_size, 1].
Examples:
.. code-block:: python
predictions = fluid.layers.softmax(x)
loss = fluid.layers.huber_regression_loss(input=predictions, label=label, 1.0)
"""
helper
=
LayerHelper
(
'huber_regression_loss'
,
**
locals
())
residual
=
helper
.
create_variable_for_type_inference
(
dtype
=
helper
.
input_dtype
())
out
=
helper
.
create_variable_for_type_inference
(
dtype
=
helper
.
input_dtype
())
helper
.
append_op
(
type
=
'huber_loss'
,
inputs
=
{
'X'
:
input
,
'Y'
:
label
},
outputs
=
{
'Out'
:
out
,
'Residual'
:
residual
},
attrs
=
{
'delta'
:
delta
})
return
out
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