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NiuTrans.Tensor
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Emmay
NiuTrans.Tensor
Commits
04412ff1
Commit
04412ff1
authored
Mar 25, 2019
by
xiaotong
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read and predict
parent
f9cfdf9a
隐藏空白字符变更
内嵌
并排
正在显示
2 个修改的文件
包含
68 行增加
和
7 行删除
+68
-7
source/sample/transformer/T2TPredictor.cpp
+56
-0
source/sample/transformer/T2TPredictor.h
+12
-7
没有找到文件。
source/sample/transformer/T2TPredictor.cpp
查看文件 @
04412ff1
...
...
@@ -23,5 +23,61 @@
namespace
transformer
{
/* constructor */
T2TPredictor
::
T2TPredictor
()
{
}
/* de-constructor */
T2TPredictor
::~
T2TPredictor
()
{
}
/*
read a state
>> model - the t2t model that keeps the network created so far
>> current - a set of states. It keeps
1) hypotheses (states)
2) probablities of hypotheses
3) parts of the network for expanding to the next state
*/
void
T2TPredictor
::
Read
(
T2TModel
*
model
,
T2TStateBundle
*
current
)
{
m
=
model
;
cur
=
current
;
}
/*
predict the next state
>> next - next states (assuming that the current state has been read)
*/
void
T2TPredictor
::
Predict
(
T2TStateBundle
*
next
)
{
AttDecoder
&
decoder
=
*
m
->
decoder
;
/* word indices of previous positions */
XTensor
&
inputLast
=
*
(
XTensor
*
)
cur
->
decoderLayers
.
GetItem
(
0
);
/* word indices of positions up to next state */
XTensor
input
;
InitTensor2D
(
&
input
,
inputLast
.
GetDim
(
0
),
inputLast
.
GetDim
(
1
)
+
1
,
inputLast
.
dataType
,
inputLast
.
devID
,
inputLast
.
mem
);
/* concatenate the input tensors */
/* prediction probabilities */
XTensor
output
;
/* encoder output */
XTensor
&
outputEnc
=
*
(
XTensor
*
)
cur
->
encoderLayers
.
GetItem
(
-
1
);
/* empty tensors (for masking?) */
XTensor
nullMask
;
/* make the decoding network */
output
=
decoder
.
Make
(
cur
->
prediction
,
outputEnc
,
nullMask
,
nullMask
,
false
);
}
}
source/sample/transformer/T2TPredictor.h
查看文件 @
04412ff1
...
...
@@ -29,10 +29,11 @@ namespace transformer
{
/* state for search. It keeps the path (back-pointer), prediction distribution,
and etc. */
and etc.
It can be regarded as a hypothsis in translation.
*/
class
T2TState
{
/* we assume that the prediction is an integer number */
public
:
/* we assume that the prediction is an integer */
int
prediction
;
/* probability of the prediction */
...
...
@@ -41,16 +42,17 @@ class T2TState
/* probability of the path */
float
pathProb
;
/* pointer to the
last
state */
/* pointer to the
previous
state */
T2TState
*
last
;
/* pointers to the following states */
XList
*
followings
;
};
/* a bundle of states */
class
T2TStateBundle
{
public
:
/* predictions */
XTensor
prediction
;
/* distribution of every prediction (last state of the path) */
XTensor
probs
;
...
...
@@ -73,7 +75,10 @@ class T2TStateBundle
class
T2TPredictor
{
/* pointer to the transformer model */
T2TModel
*
model
;
T2TModel
*
m
;
/* current state */
T2TStateBundle
*
cur
;
public
:
/* constructor */
...
...
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