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eb3bf9ea
编写于
11月 11, 2016
作者:
T
Tao Luo
提交者:
GitHub
11月 11, 2016
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差异文件
Merge pull request #360 from emailweixu/sum_cost
Add SumCost
上级
a2766842
38764bf9
变更
9
隐藏空白更改
内联
并排
Showing
9 changed file
with
122 addition
and
20 deletion
+122
-20
doc/source/gserver/layers/layer.rst
doc/source/gserver/layers/layer.rst
+5
-0
doc/ui/api/trainer_config_helpers/layers.rst
doc/ui/api/trainer_config_helpers/layers.rst
+6
-0
paddle/gserver/layers/CostLayer.cpp
paddle/gserver/layers/CostLayer.cpp
+35
-0
paddle/gserver/layers/CostLayer.h
paddle/gserver/layers/CostLayer.h
+1
-1
paddle/gserver/tests/test_LayerGrad.cpp
paddle/gserver/tests/test_LayerGrad.cpp
+13
-0
python/paddle/trainer/config_parser.py
python/paddle/trainer/config_parser.py
+1
-0
python/paddle/trainer_config_helpers/layers.py
python/paddle/trainer_config_helpers/layers.py
+32
-5
python/paddle/trainer_config_helpers/tests/configs/protostr/test_cost_layers.protostr
..._helpers/tests/configs/protostr/test_cost_layers.protostr
+25
-12
python/paddle/trainer_config_helpers/tests/configs/test_cost_layers.py
.../trainer_config_helpers/tests/configs/test_cost_layers.py
+4
-2
未找到文件。
doc/source/gserver/layers/layer.rst
浏览文件 @
eb3bf9ea
...
...
@@ -465,6 +465,11 @@ SumOfSquaresCostLayer
.. doxygenclass:: paddle::SumOfSquaresCostLayer
:members:
SumCostLayer
`````````````````````
.. doxygenclass:: paddle::SumCostLayer
:members:
CosSimLayer
-----------
.. doxygenclass:: paddle::CosSimLayer
...
...
doc/ui/api/trainer_config_helpers/layers.rst
浏览文件 @
eb3bf9ea
...
...
@@ -407,6 +407,12 @@ hsigmoid
:members: hsigmoid
:noindex:
sum_cost
---------
.. automodule:: paddle.trainer_config_helpers.layers
:members: sum_cost
:noindex:
Check Layer
============
...
...
paddle/gserver/layers/CostLayer.cpp
浏览文件 @
eb3bf9ea
...
...
@@ -562,4 +562,39 @@ void HuberTwoClass::backwardImpIn(
}
}
/**
* This cost layer compute the sum of its input as loss.
* \f[
* o(i) = \sum_{j=1}^D y_{ij}
* \f]
*/
class
SumCostLayer
:
public
Layer
{
public:
explicit
SumCostLayer
(
const
LayerConfig
&
config
)
:
Layer
(
config
)
{}
bool
init
(
const
LayerMap
&
layerMap
,
const
ParameterMap
&
parameterMap
)
{
bool
ret
=
Layer
::
init
(
layerMap
,
parameterMap
);
if
(
!
ret
)
return
ret
;
CHECK_EQ
(
inputLayers_
.
size
(),
1UL
);
return
true
;
}
virtual
void
forward
(
PassType
passType
)
{
Layer
::
forward
(
passType
);
const
MatrixPtr
&
input
=
getInputValue
(
0
);
/* malloc memory for the output_ if necessary */
int
batchSize
=
input
->
getHeight
();
int
size
=
1
;
resizeOutput
(
batchSize
,
size
);
output_
.
value
->
sumRows
(
*
input
);
}
virtual
void
backward
(
const
UpdateCallback
&
callback
=
nullptr
)
{
getInputGrad
(
0
)
->
add
((
real
)
1
);
}
};
REGISTER_LAYER
(
sum_cost
,
SumCostLayer
);
}
// namespace paddle
paddle/gserver/layers/CostLayer.h
浏览文件 @
eb3bf9ea
...
...
@@ -129,7 +129,7 @@ protected:
* This cost layer compute Euclidean (L2) loss for real-valued regression
* tasks.
* \f[
* L = \
frac{1}{2N} \
sum_{i=1}^N {|| \hat{y}_i - y_i||_2^2}
* L = \sum_{i=1}^N {|| \hat{y}_i - y_i||_2^2}
* \f]
*/
class
SumOfSquaresCostLayer
:
public
CostLayer
{
...
...
paddle/gserver/tests/test_LayerGrad.cpp
浏览文件 @
eb3bf9ea
...
...
@@ -998,6 +998,19 @@ TEST(Layer, rankCostLayer) {
}
}
TEST
(
Layer
,
sumCostLayer
)
{
TestConfig
config
;
config
.
layerConfig
.
set_type
(
"sum_cost"
);
config
.
biasSize
=
0
;
config
.
inputDefs
.
push_back
({
INPUT_DATA
,
"layer_0"
,
1
,
0
});
config
.
layerConfig
.
add_inputs
();
for
(
auto
useGpu
:
{
false
,
true
})
{
testLayerGrad
(
config
,
"sum_cost"
,
100
,
false
,
useGpu
);
}
}
TEST
(
Layer
,
weightedRankCostLayer
)
{
TestConfig
config
;
config
.
layerConfig
.
set_type
(
"rank-cost"
);
...
...
python/paddle/trainer/config_parser.py
浏览文件 @
eb3bf9ea
...
...
@@ -1903,6 +1903,7 @@ define_cost('SumOfSquaresCostLayer', 'square_error')
define_cost
(
'MultiBinaryLabelCrossEntropy'
,
'multi_binary_label_cross_entropy'
)
define_cost
(
'SoftBinaryClassCrossEntropy'
,
'soft_binary_class_cross_entropy'
)
define_cost
(
'HuberTwoClass'
,
'huber'
)
define_cost
(
'SumCost'
,
'sum_cost'
)
@
config_layer
(
'hsigmoid'
)
class
HierarchicalSigmoidLayer
(
LayerBase
):
...
...
python/paddle/trainer_config_helpers/layers.py
浏览文件 @
eb3bf9ea
...
...
@@ -53,7 +53,7 @@ __all__ = ["full_matrix_projection", "AggregateLevel", "ExpandLevel",
'convex_comb_layer'
,
'ctc_layer'
,
'crf_layer'
,
'crf_decoding_layer'
,
'nce_layer'
,
'cross_entropy_with_selfnorm'
,
'cross_entropy'
,
'multi_binary_label_cross_entropy'
,
'multi_binary_label_cross_entropy'
,
'sum_cost'
,
'rank_cost'
,
'lambda_cost'
,
'huber_cost'
,
'block_expand_layer'
,
'maxout_layer'
,
'out_prod_layer'
,
'print_layer'
...
...
@@ -130,6 +130,7 @@ class LayerType(object):
CROSS_ENTROPY_WITH_SELFNORM
=
"multi_class_cross_entropy_with_selfnorm"
SOFT_BIN_CLASS_CROSS_ENTROPY
=
"soft_binary_class_cross_entropy"
MULTI_BIN_LABEL_CROSS_ENTROPY
=
"multi_binary_label_cross_entropy"
SUM_COST
=
"sum_cost"
@
staticmethod
def
is_layer_type
(
type_name
):
...
...
@@ -4053,8 +4054,6 @@ def cross_entropy(input, label, name=None, coeff=1.0, layer_attr=None):
:type input: LayerOutput.
:param label: The input label.
:type input: LayerOutput.
:param type: The type of cost.
:type type: basestring.
:param name: The name of this layers. It is not necessary.
:type name: None|basestring.
:param coeff: The coefficient affects the gradient in the backward.
...
...
@@ -4091,8 +4090,6 @@ def cross_entropy_with_selfnorm(input, label, name=None, coeff=1.0,
:type input: LayerOutput.
:param label: The input label.
:type input: LayerOutput.
:param type: The type of cost.
:type type: basestring.
:param name: The name of this layers. It is not necessary.
:type name: None|basestring.
:param coeff: The coefficient affects the gradient in the backward.
...
...
@@ -4117,6 +4114,36 @@ def cross_entropy_with_selfnorm(input, label, name=None, coeff=1.0,
parents
=
[
input
,
label
],
size
=
1
)
@
wrap_name_default
()
@
layer_support
()
def
sum_cost
(
input
,
name
=
None
,
layer_attr
=
None
):
"""
A loss layer which calculate the sum of the input as loss
.. code-block:: python
cost = sum_cost(input)
:param input: The first input layer.
:type input: LayerOutput.
:param name: The name of this layers. It is not necessary.
:type name: None|basestring.
:param layer_attr: Extra Layer Attribute.
:type layer_attr: ExtraLayerAttribute
:return: LayerOutput object.
:rtype: LayerOutput.
"""
Layer
(
name
=
name
,
type
=
LayerType
.
SUM_COST
,
inputs
=
[
input
.
name
],
**
ExtraLayerAttribute
.
to_kwargs
(
layer_attr
)
)
return
LayerOutput
(
name
,
LayerType
.
SUM_COST
,
parents
=
[
input
])
@
wrap_name_default
()
@
layer_support
()
def
huber_cost
(
input
,
label
,
name
=
None
,
coeff
=
1.0
,
layer_attr
=
None
):
...
...
python/paddle/trainer_config_helpers/tests/configs/protostr/test_cost_layers.protostr
浏览文件 @
eb3bf9ea
...
...
@@ -23,6 +23,17 @@ layers {
size: 10
active_type: ""
}
layers {
name: "__fc_layer_0__"
type: "fc"
size: 4
active_type: "tanh"
inputs {
input_layer_name: "input"
input_parameter_name: "___fc_layer_0__.w0"
}
bias_parameter_name: "___fc_layer_0__.wbias"
}
layers {
name: "__ctc_layer_0__"
type: "ctc"
...
...
@@ -36,17 +47,6 @@ layers {
}
norm_by_times: false
}
layers {
name: "__fc_layer_0__"
type: "fc"
size: 4
active_type: "tanh"
inputs {
input_layer_name: "input"
input_parameter_name: "___fc_layer_0__.w0"
}
bias_parameter_name: "___fc_layer_0__.wbias"
}
layers {
name: "crf_label"
type: "data"
...
...
@@ -191,6 +191,16 @@ layers {
}
coeff: 1.0
}
layers {
name: "__sum_cost_0__"
type: "sum_cost"
size: 1
active_type: ""
inputs {
input_layer_name: "__fc_layer_0__"
}
coeff: 1.0
}
parameters {
name: "___fc_layer_0__.w0"
size: 800
...
...
@@ -241,14 +251,15 @@ output_layer_names: "__cross_entropy_0__"
output_layer_names: "__cross_entropy_with_selfnorm_0__"
output_layer_names: "__huber_cost_0__"
output_layer_names: "__multi_binary_label_cross_entropy_0__"
output_layer_names: "__sum_cost_0__"
sub_models {
name: "root"
layer_names: "input"
layer_names: "labels"
layer_names: "probs"
layer_names: "xe-label"
layer_names: "__ctc_layer_0__"
layer_names: "__fc_layer_0__"
layer_names: "__ctc_layer_0__"
layer_names: "crf_label"
layer_names: "__crf_layer_0__"
layer_names: "left"
...
...
@@ -264,6 +275,7 @@ sub_models {
layer_names: "huber_label"
layer_names: "__huber_cost_0__"
layer_names: "__multi_binary_label_cross_entropy_0__"
layer_names: "__sum_cost_0__"
input_layer_names: "input"
input_layer_names: "labels"
input_layer_names: "crf_label"
...
...
@@ -284,6 +296,7 @@ sub_models {
output_layer_names: "__cross_entropy_with_selfnorm_0__"
output_layer_names: "__huber_cost_0__"
output_layer_names: "__multi_binary_label_cross_entropy_0__"
output_layer_names: "__sum_cost_0__"
is_recurrent_layer_group: false
}
python/paddle/trainer_config_helpers/tests/configs/test_cost_layers.py
浏览文件 @
eb3bf9ea
...
...
@@ -11,8 +11,9 @@ labels = data_layer(name='labels', size=5000)
probs
=
data_layer
(
name
=
'probs'
,
size
=
10
)
xe_label
=
data_layer
(
name
=
'xe-label'
,
size
=
10
)
hidden
=
fc_layer
(
input
=
seq_in
,
size
=
4
)
outputs
(
ctc_layer
(
input
=
seq_in
,
label
=
labels
),
crf_layer
(
input
=
fc_layer
(
input
=
seq_in
,
size
=
4
)
,
crf_layer
(
input
=
hidden
,
label
=
data_layer
(
name
=
'crf_label'
,
size
=
4
)),
rank_cost
(
left
=
data_layer
(
name
=
'left'
,
size
=
1
),
right
=
data_layer
(
name
=
'right'
,
size
=
1
),
...
...
@@ -23,4 +24,5 @@ outputs(ctc_layer(input=seq_in, label=labels),
cross_entropy_with_selfnorm
(
input
=
probs
,
label
=
xe_label
),
huber_cost
(
input
=
data_layer
(
name
=
'huber_probs'
,
size
=
1
),
label
=
data_layer
(
name
=
'huber_label'
,
size
=
1
)),
multi_binary_label_cross_entropy
(
input
=
probs
,
label
=
xe_label
))
multi_binary_label_cross_entropy
(
input
=
probs
,
label
=
xe_label
),
sum_cost
(
hidden
))
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