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from fish_diffusion.datasets.hifisinger import HiFiSVCDataset | |
from fish_diffusion.datasets.utils import get_datasets_from_subfolder | |
_base_ = [ | |
"./_base_/archs/hifi_svc.py", | |
"./_base_/trainers/base.py", | |
"./_base_/schedulers/exponential.py", | |
"./_base_/datasets/hifi_svc.py", | |
] | |
speaker_mapping = { | |
"azure": 0, | |
} | |
model = dict( | |
type="HiFiSVC", | |
speaker_encoder=dict( | |
input_size=len(speaker_mapping), | |
), | |
) | |
preprocessing = dict( | |
text_features_extractor=dict( | |
type="ContentVec", | |
), | |
pitch_extractor=dict( | |
type="CrepePitchExtractor", | |
keep_zeros=False, | |
f0_min=40.0, | |
f0_max=2000.0, | |
), | |
energy_extractor=dict( | |
type="RMSEnergyExtractor", | |
), | |
augmentations=[ | |
dict( | |
type="FixedPitchShifting", | |
key_shifts=[-5.0, 5.0], | |
probability=0.75, | |
), | |
], | |
) | |
trainer = dict( | |
# Disable gradient clipping, which is not supported by custom optimization | |
gradient_clip_val=None, | |
max_steps=1000000, | |
) | |