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6d290cec
编写于
2月 07, 2018
作者:
Y
Yibing Liu
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Add the demo script for inference
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fluid/DeepASR/infer.py
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fluid/DeepASR/infer.py
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from
__future__
import
absolute_import
from
__future__
import
division
from
__future__
import
print_function
import
os
import
argparse
import
paddle.v2.fluid
as
fluid
import
data_utils.augmentor.trans_mean_variance_norm
as
trans_mean_variance_norm
import
data_utils.augmentor.trans_add_delta
as
trans_add_delta
import
data_utils.augmentor.trans_splice
as
trans_splice
import
data_utils.data_reader
as
reader
from
data_utils.util
import
lodtensor_to_ndarray
def
parse_args
():
parser
=
argparse
.
ArgumentParser
(
"Inference for stacked LSTMP model."
)
parser
.
add_argument
(
'--batch_size'
,
type
=
int
,
default
=
32
,
help
=
'The sequence number of a batch data. (default: %(default)d)'
)
parser
.
add_argument
(
'--device'
,
type
=
str
,
default
=
'GPU'
,
choices
=
[
'CPU'
,
'GPU'
],
help
=
'The device type. (default: %(default)s)'
)
parser
.
add_argument
(
'--mean_var'
,
type
=
str
,
default
=
'data/global_mean_var_search26kHr'
,
help
=
'mean var path'
)
parser
.
add_argument
(
'--infer_feature_lst'
,
type
=
str
,
default
=
'data/infer_feature.lst'
,
help
=
'feature list path for inference.'
)
parser
.
add_argument
(
'--infer_label_lst'
,
type
=
str
,
default
=
'data/infer_label.lst'
,
help
=
'label list path for inference.'
)
parser
.
add_argument
(
'--model_save_path'
,
type
=
str
,
default
=
'./checkpoints/deep_asr.pass_0.model/'
,
help
=
'directory to save model.'
)
args
=
parser
.
parse_args
()
return
args
def
print_arguments
(
args
):
print
(
'----------- Configuration Arguments -----------'
)
for
arg
,
value
in
sorted
(
vars
(
args
).
iteritems
()):
print
(
'%s: %s'
%
(
arg
,
value
))
print
(
'------------------------------------------------'
)
def
split_infer_result
(
infer_seq
,
lod
):
infer_batch
=
[]
for
i
in
xrange
(
0
,
len
(
lod
[
0
])
-
1
):
infer_batch
.
append
(
infer_seq
[
lod
[
0
][
i
]:
lod
[
0
][
i
+
1
]])
return
infer_batch
def
infer
(
args
):
""" Get one batch of feature data and predicts labels for each sample.
"""
if
args
.
model_save_path
is
None
or
\
not
os
.
path
.
exists
(
args
.
model_save_path
):
raise
IOError
(
"Invalid model path!"
)
place
=
fluid
.
CUDAPlace
(
0
)
if
args
.
device
==
'GPU'
else
fluid
.
CPUPlace
()
exe
=
fluid
.
Executor
(
place
)
[
infer_program
,
feed_dicts
,
fetch_targets
]
=
fluid
.
io
.
load_inference_model
(
args
.
model_save_path
,
exe
)
ltrans
=
[
trans_add_delta
.
TransAddDelta
(
2
,
2
),
trans_mean_variance_norm
.
TransMeanVarianceNorm
(
args
.
mean_var
),
trans_splice
.
TransSplice
()
]
infer_data_reader
=
reader
.
DataReader
(
args
.
infer_feature_lst
,
args
.
infer_label_lst
)
infer_data_reader
.
set_transformers
(
ltrans
)
feature_t
=
fluid
.
LoDTensor
()
one_batch
=
infer_data_reader
.
batch_iterator
(
args
.
batch_size
,
1
).
next
()
(
features
,
labels
,
lod
)
=
one_batch
feature_t
.
set
(
features
,
place
)
feature_t
.
set_lod
([
lod
])
results
=
exe
.
run
(
infer_program
,
feed
=
{
feed_dicts
[
0
]:
feature_t
},
fetch_list
=
fetch_targets
,
return_numpy
=
False
)
probs
,
lod
=
lodtensor_to_ndarray
(
results
[
0
])
preds
=
probs
.
argmax
(
axis
=
1
)
infer_batch
=
split_infer_result
(
preds
,
lod
)
for
index
,
sample
in
enumerate
(
infer_batch
):
print
(
"result %d: "
%
index
,
sample
,
'
\n
'
)
if
__name__
==
'__main__'
:
args
=
parse_args
()
print_arguments
(
args
)
infer
(
args
)
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