Merge pull request #925 from FunAudioLLM/dev/lyuxiang.lx

fix pitch computation
This commit is contained in:
Xiang Lyu
2025-01-23 15:45:42 +08:00
committed by GitHub
5 changed files with 19 additions and 14 deletions

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@@ -20,6 +20,7 @@ import torch
import torchaudio
from torch.nn.utils.rnn import pad_sequence
import torch.nn.functional as F
import pyworld as pw
AUDIO_FORMAT_SETS = {'flac', 'mp3', 'm4a', 'ogg', 'opus', 'wav', 'wma'}
@@ -178,7 +179,7 @@ def compute_fbank(data,
yield sample
def compute_f0(data, pitch_extractor, mode='train'):
def compute_f0(data, sample_rate, hop_size, mode='train'):
""" Extract f0
Args:
@@ -187,15 +188,19 @@ def compute_f0(data, pitch_extractor, mode='train'):
Returns:
Iterable[{key, feat, label}]
"""
frame_period = hop_size * 1000 / sample_rate
for sample in data:
assert 'sample_rate' in sample
assert 'speech' in sample
assert 'utt' in sample
assert 'text_token' in sample
waveform = sample['speech']
mat = pitch_extractor(waveform).transpose(1, 2)
mat = F.interpolate(mat, size=sample['speech_feat'].shape[0], mode='linear')
sample['pitch_feat'] = mat[0, 0]
_f0, t = pw.harvest(waveform.squeeze(dim=0).numpy().astype('double'), sample_rate, frame_period=frame_period)
if sum(_f0 != 0) < 5: # this happens when the algorithm fails
_f0, t = pw.dio(waveform.squeeze(dim=0).numpy().astype('double'), sample_rate, frame_period=frame_period) # if harvest fails, try dio
f0 = pw.stonemask(waveform.squeeze(dim=0).numpy().astype('double'), _f0, t, sample_rate)
f0 = F.interpolate(torch.from_numpy(f0).view(1, 1, -1), size=sample['speech_feat'].shape[0], mode='linear').view(-1)
sample['pitch_feat'] = f0
yield sample

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@@ -15,6 +15,7 @@
# limitations under the License.
import torch
from cosyvoice.utils.file_utils import logging
'''
def subsequent_mask(
size: int,
@@ -230,6 +231,10 @@ def add_optional_chunk_mask(xs: torch.Tensor,
chunk_masks = masks & chunk_masks # (B, L, L)
else:
chunk_masks = masks
assert chunk_masks.dtype == torch.bool
if (chunk_masks.sum(dim=-1) == 0).sum().item() != 0:
logging.warning('get chunk_masks all false at some timestep, force set to true, make sure they are masked in futuer computation!')
chunk_masks[chunk_masks.sum(dim=-1)==0] = True
return chunk_masks

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@@ -183,12 +183,9 @@ feat_extractor: !name:matcha.utils.audio.mel_spectrogram
center: False
compute_fbank: !name:cosyvoice.dataset.processor.compute_fbank
feat_extractor: !ref <feat_extractor>
pitch_extractor: !name:torchaudio.functional.compute_kaldi_pitch
sample_rate: !ref <sample_rate>
frame_length: 46.4 # match feat_extractor win_size/sampling_rate
frame_shift: 11.6 # match feat_extractor hop_size/sampling_rate
compute_f0: !name:cosyvoice.dataset.processor.compute_f0
pitch_extractor: !ref <pitch_extractor>
sample_rate: !ref <sample_rate>
hop_size: 256
parse_embedding: !name:cosyvoice.dataset.processor.parse_embedding
normalize: True
shuffle: !name:cosyvoice.dataset.processor.shuffle

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@@ -183,12 +183,9 @@ feat_extractor: !name:matcha.utils.audio.mel_spectrogram
center: False
compute_fbank: !name:cosyvoice.dataset.processor.compute_fbank
feat_extractor: !ref <feat_extractor>
pitch_extractor: !name:torchaudio.functional.compute_kaldi_pitch
sample_rate: !ref <sample_rate>
frame_length: 46.4 # match feat_extractor win_size/sampling_rate
frame_shift: 11.6 # match feat_extractor hop_size/sampling_rate
compute_f0: !name:cosyvoice.dataset.processor.compute_f0
pitch_extractor: !ref <pitch_extractor>
sample_rate: !ref <sample_rate>
hop_size: 256
parse_embedding: !name:cosyvoice.dataset.processor.parse_embedding
normalize: True
shuffle: !name:cosyvoice.dataset.processor.shuffle

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@@ -22,6 +22,7 @@ onnxruntime==1.18.0; sys_platform == 'darwin' or sys_platform == 'windows'
openai-whisper==20231117
protobuf==4.25
pydantic==2.7.0
pyworld==0.3.4
rich==13.7.1
soundfile==0.12.1
tensorboard==2.14.0