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df0c6956
编写于
9月 07, 2018
作者:
T
tensor-tang
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
fix fusion gru pass and enable it
上级
c9bd2d50
变更
2
显示空白变更内容
内联
并排
Showing
2 changed file
with
56 addition
and
43 deletion
+56
-43
paddle/fluid/framework/ir/fc_gru_fuse_pass.cc
paddle/fluid/framework/ir/fc_gru_fuse_pass.cc
+56
-42
paddle/fluid/inference/analysis/analyzer_lac_tester.cc
paddle/fluid/inference/analysis/analyzer_lac_tester.cc
+0
-1
未找到文件。
paddle/fluid/framework/ir/fc_gru_fuse_pass.cc
浏览文件 @
df0c6956
...
...
@@ -28,7 +28,7 @@ static void BuildPattern(PDPattern* pattern, const std::string& name_scope,
auto
*
fc_out
=
patterns
::
FC
(
pattern
,
name_scope
,
x
,
with_fc_bias
);
fc_out
->
AsIntermediate
();
// fc_out is a tmp var, will be removed after fuse.
patterns
::
GRU
(
pattern
,
name_scope
,
fc_out
);
VLOG
(
3
)
<<
"
\n
"
<<
pattern
->
DotString
();
VLOG
(
3
)
<<
"
fc_gru pattern
\n
"
<<
pattern
->
DotString
();
}
static
int
BuildFusion
(
Graph
*
graph
,
const
std
::
string
&
name_scope
,
...
...
@@ -51,65 +51,72 @@ static int BuildFusion(Graph* graph, const std::string& name_scope,
OpDesc
op_desc
;
op_desc
.
SetType
(
"fusion_gru"
);
#define NEW_NAME(x) name_scope + "/at." #x ".new"
#define SET_IN(Key, node__) op_desc.SetInput(#Key, {node__##_n->Name()});
SET_IN
(
X
,
x
);
SET_IN
(
WeightX
,
weight_x
);
SET_IN
(
WeightH
,
weight_h
);
if
(
with_fc_bias
)
{
op_desc
.
SetInput
(
"Bias"
,
{
NEW_NAME
(
bias
)
+
bias_n
->
Name
()});
}
else
{
SET_IN
(
Bias
,
bias
);
}
#undef SET_IN
if
(
with_fc_bias
)
{
// Add FC-bias with LSTM-bias and create a new weight
op_desc
.
SetInput
(
"H0"
,
{});
op_desc
.
SetOutput
(
"Hidden"
,
{
hidden_n
->
Name
()});
op_desc
.
SetAttr
(
"is_reverse"
,
gru_n
->
Op
()
->
GetAttr
(
"is_reverse"
));
// TODO(TJ): This should be a option for infer
op_desc
.
SetAttr
(
"use_seq"
,
true
);
#define SET_IMTERMEDIATE_OUT(key) op_desc.SetOutput(#key, {NEW_NAME(key)})
SET_IMTERMEDIATE_OUT
(
ReorderedH0
);
SET_IMTERMEDIATE_OUT
(
XX
);
SET_IMTERMEDIATE_OUT
(
BatchedInput
);
SET_IMTERMEDIATE_OUT
(
BatchedOut
);
#undef SET_IMTERMEDIATE_OUT
auto
*
op
=
graph
->
CreateOpNode
(
&
op_desc
);
PADDLE_ENFORCE
(
graph
->
Has
(
kParamScopeAttr
));
auto
*
scope
=
graph
->
Get
<
Scope
*>
(
kParamScopeAttr
);
PADDLE_ENFORCE
(
scope
);
const
std
::
string
&
new_bias_var
=
name_scope
+
"_bias.new"
;
auto
*
bias_var
=
scope
->
Var
(
new_bias_var
);
PADDLE_ENFORCE
(
bias_var
);
auto
*
bias_tensor
=
bias_var
->
GetMutable
<
framework
::
LoDTensor
>
();
if
(
with_fc_bias
)
{
// Fusion GRU bias = fcbias + grubias
auto
*
fusion_bias_var
=
scope
->
Var
(
NEW_NAME
(
bias
)
+
bias_n
->
Name
());
auto
*
out_bias_tensor
=
fusion_bias_var
->
GetMutable
<
framework
::
LoDTensor
>
();
PADDLE_ENFORCE
(
fusion_bias_var
);
GET_NODE
(
fc_bias
);
PADDLE_ENFORCE
(
fc_bias_n
);
auto
*
gru_bias_var
=
scope
->
FindVar
(
bias_n
->
Name
());
auto
*
fc_bias_var
=
scope
->
FindVar
(
fc_bias_n
->
Name
());
PADDLE_ENFORCE
(
gru_bias_var
);
PADDLE_ENFORCE
(
fc_bias_var
);
const
auto
&
gru_bias_tenosr
=
gru_bias_var
->
Get
<
framework
::
LoDTensor
>
();
bias_tensor
->
Resize
(
gru_bias_tenosr
.
dims
());
GET_NODE
(
fc_bias
);
auto
*
fc_bias_var
=
scope
->
FindVar
(
fc_bias_n
->
Name
());
const
auto
&
fc_bias_tensor
=
fc_bias_var
->
Get
<
framework
::
LoDTensor
>
();
// new bias = fc bias + gru bias
auto
*
data
=
bias_tensor
->
mutable_data
<
float
>
(
platform
::
CPUPlace
());
for
(
int
i
=
0
;
i
<
bias_tensor
->
numel
();
i
++
)
{
out_bias_tensor
->
Resize
(
gru_bias_tenosr
.
dims
());
auto
*
data
=
out_bias_tensor
->
mutable_data
<
float
>
(
platform
::
CPUPlace
());
for
(
int
i
=
0
;
i
<
out_bias_tensor
->
numel
();
i
++
)
{
data
[
i
]
=
fc_bias_tensor
.
data
<
float
>
()[
i
]
+
gru_bias_tenosr
.
data
<
float
>
()[
i
];
}
op_desc
.
SetInput
(
"Bias"
,
{
new_bias_var
});
}
#undef GET_NODE
op_desc
.
SetInput
(
"H0"
,
{});
op_desc
.
SetOutput
(
"Hidden"
,
{
hidden_n
->
Name
()});
op_desc
.
SetAttr
(
"is_reverse"
,
gru_n
->
Op
()
->
GetAttr
(
"is_reverse"
));
// TODO(TJ): This should be a option for infer
op_desc
.
SetAttr
(
"use_seq"
,
true
);
// Create temp variables.
// TODO(TJ): clean code
scope
->
Var
(
name_scope
+
"/ReorderedH0.new"
)
->
GetMutable
<
framework
::
LoDTensor
>
();
scope
->
Var
(
name_scope
+
"/XX.new"
)
->
GetMutable
<
framework
::
LoDTensor
>
();
scope
->
Var
(
name_scope
+
"/BatchedInput.new"
)
->
GetMutable
<
framework
::
LoDTensor
>
();
scope
->
Var
(
name_scope
+
"/BatchedOut.new"
)
->
GetMutable
<
framework
::
LoDTensor
>
();
op_desc
.
SetOutput
(
"ReorderedH0"
,
{
name_scope
+
"/ReorderedH0.new"
});
op_desc
.
SetOutput
(
"XX"
,
{
name_scope
+
"/XX.new"
});
op_desc
.
SetOutput
(
"BatchedInput"
,
{
name_scope
+
"/BatchedInput.new"
});
op_desc
.
SetOutput
(
"BatchedOut"
,
{
name_scope
+
"/BatchedOut.new"
});
auto
*
op
=
graph
->
CreateOpNode
(
&
op_desc
);
PADDLE_ENFORCE
(
graph
->
Has
(
kParamScopeAttr
));
// auto* scope = graph->Get<Scope*>(kParamScopeAttr);
#define NEW_IMTERMEDIATE_OUT(key) \
scope->Var(NEW_NAME(key))->GetMutable<framework::LoDTensor>()
NEW_IMTERMEDIATE_OUT
(
ReorderedH0
);
NEW_IMTERMEDIATE_OUT
(
XX
);
NEW_IMTERMEDIATE_OUT
(
BatchedInput
);
NEW_IMTERMEDIATE_OUT
(
BatchedOut
);
#undef NEW_NAME
#undef NEW_IMTERMEDIATE_OUT
IR_NODE_LINK_TO
(
x_n
,
op
);
IR_NODE_LINK_TO
(
weight_x_n
,
op
);
IR_NODE_LINK_TO
(
weight_h_n
,
op
);
IR_NODE_LINK_TO
(
bias_n
,
op
);
IR_NODE_LINK_TO
(
bias_n
,
op
);
// actually should link to new bias if have
IR_NODE_LINK_TO
(
op
,
hidden_n
);
// h0?
return
op
;
...
...
@@ -127,26 +134,33 @@ static int BuildFusion(Graph* graph, const std::string& name_scope,
int name__ __attribute__((unused)) = name__##_n->id();
GET_NODE
(
x
);
GET_NODE
(
w
);
GET_NODE
(
w
);
// fc weight
GET_NODE
(
mul
);
GET_NODE
(
fc_out
);
GET_NODE
(
Weight
);
GET_NODE
(
gru
);
GET_NODE
(
Bias
);
GET_NODE
(
Hidden
);
// nodes need be removed
GET_NODE
(
BatchGate
);
GET_NODE
(
BatchResetHiddenPrev
);
GET_NODE
(
BatchHidden
);
if
(
with_fc_bias
)
{
GET_NODE
(
mul_out
);
GET_NODE
(
fc_bias
);
GET_NODE
(
elementwise_add
);
gru_creater
(
gru
,
x
,
w
,
Weight
,
Bias
,
Hidden
,
fc_bias
);
// Remove unneeded nodes.
std
::
unordered_set
<
const
Node
*>
marked_nodes
(
{
mul_n
,
gru_n
,
elementwise_add_n
});
{
mul_n
,
gru_n
,
elementwise_add_n
,
fc_bias_n
,
fc_out_n
,
mul_out_n
,
BatchGate_n
,
BatchResetHiddenPrev_n
,
BatchHidden_n
});
GraphSafeRemoveNodes
(
graph
,
marked_nodes
);
}
else
{
gru_creater
(
gru
,
x
,
w
,
Weight
,
Bias
,
Hidden
,
-
1
);
// Remove unneeded nodes.
std
::
unordered_set
<
const
Node
*>
marked_nodes
({
mul_n
,
gru_n
});
std
::
unordered_set
<
const
Node
*>
marked_nodes
(
{
mul_n
,
gru_n
,
BatchGate_n
,
BatchResetHiddenPrev_n
,
BatchHidden_n
});
GraphSafeRemoveNodes
(
graph
,
marked_nodes
);
}
#undef GET_NODE
...
...
paddle/fluid/inference/analysis/analyzer_lac_tester.cc
浏览文件 @
df0c6956
...
...
@@ -171,7 +171,6 @@ void TestLACPrediction(const std::string &model_path,
cfg
.
device
=
0
;
cfg
.
specify_input_name
=
true
;
cfg
.
enable_ir_optim
=
true
;
cfg
.
ir_passes
.
push_back
(
"fc_gru_fuse_pass"
);
predictor
=
CreatePaddlePredictor
<
AnalysisConfig
,
PaddleEngineKind
::
kAnalysis
>
(
cfg
);
}
else
{
...
...
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