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OpenDAS
Torchaudio
Commits
70328527
"tests/vscode:/vscode.git/clone" did not exist on "dbafbe41599b48a66e14dba4589ad257d32155ac"
Unverified
Commit
70328527
authored
Dec 03, 2019
by
Vincent QB
Committed by
GitHub
Dec 03, 2019
Browse files
remove scale to interval from #319 (#360)
parent
38f1e870
Changes
2
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2 changed files
with
0 additions
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34 deletions
+0
-34
test/test_functional.py
test/test_functional.py
+0
-13
torchaudio/functional.py
torchaudio/functional.py
+0
-21
No files found.
test/test_functional.py
View file @
70328527
...
...
@@ -379,13 +379,6 @@ class TestFunctional(unittest.TestCase):
self
.
assertTrue
(
torch
.
allclose
(
waveform_gain
,
sox_gain_waveform
,
atol
=
1e-04
))
def
test_scale_to_interval
(
self
):
scaled
=
5.5
# [-5.5, 5.5]
waveform_scaled
=
F
.
_scale_to_interval
(
self
.
waveform_train
,
scaled
)
self
.
assertTrue
(
torch
.
max
(
waveform_scaled
)
<=
scaled
)
self
.
assertTrue
(
torch
.
min
(
waveform_scaled
)
>=
-
scaled
)
def
test_dither
(
self
):
waveform_dithered
=
F
.
dither
(
self
.
waveform_train
)
waveform_dithered_noiseshaped
=
F
.
dither
(
self
.
waveform_train
,
noise_shaping
=
True
)
...
...
@@ -582,12 +575,6 @@ def test_phase_vocoder(complex_specgrams, rate, hop_length):
_test_torchscript_functional
(
F
.
gain
,
tensor
,
gainDB
)
def
test_torchscript_scale_to_interval
(
self
):
tensor
=
torch
.
rand
((
1
,
1000
))
scaled
=
3.5
_test_torchscript_functional
(
F
.
_scale_to_interval
,
tensor
,
scaled
)
def
test_torchscript_dither
(
self
):
tensor
=
torch
.
rand
((
1
,
1000
))
...
...
torchaudio/functional.py
View file @
70328527
...
...
@@ -877,27 +877,6 @@ def gain(waveform, gain_db=1.0):
return
waveform
*
ratio
def
_scale_to_interval
(
waveform
,
interval_max
=
1.0
):
# type: (Tensor, float) -> Tensor
r
"""Scale the waveform to the interval [-interval_max, interval_max] across all dimensions.
Args:
waveform (torch.Tensor): Tensor of audio of dimension (channel, time).
interval_max (float): The bounds of the interval, where the float indicates
the upper bound and the negative of the float indicates the lower
bound (Default: `1.0`).
Example: interval=1.0 -> [-1.0, 1.0]
Returns:
torch.Tensor: the whole waveform scaled to interval.
"""
abs_max
=
torch
.
max
(
torch
.
abs
(
waveform
))
ratio
=
abs_max
/
interval_max
waveform
/=
ratio
return
waveform
def
_add_noise_shaping
(
dithered_waveform
,
waveform
):
r
"""Noise shaping is calculated by error:
error[n] = dithered[n] - original[n]
...
...
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