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U.D.C.S.WIJESOORIYA
240
Commits
b733b112
Commit
b733b112
authored
Apr 27, 2022
by
Malsha Rathnasiri
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improve train.py
parent
eb14f11a
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-20
backend/backend/cms/model/train.py
backend/backend/cms/model/train.py
+30
-20
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backend/backend/cms/model/train.py
View file @
b733b112
...
...
@@ -97,37 +97,47 @@ def train():
train_audio_path
=
r'./backend/data/train/train/audio/'
# all_wave = []
# all_label = []
# for label in labels:
# print(label)
# waves = [f for f in os.listdir(
# train_audio_path + '/' + label) if f.endswith('.wav')]
# for wav in waves:
# samples, sample_rate = librosa.load(
# train_audio_path + '/' + label + '/' + wav, sr=16000)
# samples = librosa.resample(samples, sample_rate, 8000)
# if(len(samples) == 8000):
# all_wave.append(samples)
# all_label.append(label)
# print('3')
all_wave
=
[]
all_label
=
[]
f1
=
open
(
'all_label.txt'
,
'rb'
)
all_label
=
pickle
.
load
(
f1
)
print
(
'loaded labels'
)
f2
=
open
(
'all_waves_file.txt'
,
'rb'
)
all_wave
=
pickle
.
load
(
f2
)
print
(
'loaded waves'
)
if
(
all_wave
and
all_label
):
print
(
'loaded labels and waves'
)
else
:
print
(
'Creating labels and waves files'
)
for
label
in
labels
:
print
(
label
)
waves
=
[
f
for
f
in
os
.
listdir
(
train_audio_path
+
'/'
+
label
)
if
f
.
endswith
(
'.wav'
)]
for
wav
in
waves
:
samples
,
sample_rate
=
librosa
.
load
(
train_audio_path
+
'/'
+
label
+
'/'
+
wav
,
sr
=
16000
)
samples
=
librosa
.
resample
(
samples
,
sample_rate
,
8000
)
if
(
len
(
samples
)
==
8000
):
all_wave
.
append
(
samples
)
all_label
.
append
(
label
)
# print('3')
all_labels_file
=
open
(
'all_label.txt'
,
'wb+'
)
pickle
.
dump
(
file
=
all_labels_file
,
obj
=
all_label
)
all_labels_file
.
close
()
all_waves_file
=
open
(
'all_waves_file.txt'
,
'wb+'
)
pickle
.
dump
(
file
=
all_waves_file
,
obj
=
all_wave
)
all_waves_file
.
close
()
print
(
'Done: creating labels and waves files'
)
le
=
LabelEncoder
()
y
=
le
.
fit_transform
(
all_label
)
classes
=
list
(
le
.
classes_
)
print
(
classes
)
print
(
all_wave
)
print
(
'4'
)
y
=
np_utils
.
to_categorical
(
y
,
num_classes
=
len
(
labels
))
...
...
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