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import os | |
from coqpit import Coqpit | |
from trainer import Trainer, TrainerArgs | |
from TTS.tts.configs.shared_configs import BaseAudioConfig | |
from TTS.utils.audio import AudioProcessor | |
from TTS.vocoder.configs.hifigan_config import * | |
from TTS.vocoder.datasets.preprocess import load_wav_data | |
from TTS.vocoder.models.gan import GAN | |
output_path = "/storage/output-hifigan/" | |
audio_config = BaseAudioConfig( | |
mel_fmin=50, | |
mel_fmax=8000, | |
hop_length=256, | |
stats_path="/storage/TTS/scale_stats.npy", | |
) | |
config = HifiganConfig( | |
batch_size=74, | |
eval_batch_size=16, | |
num_loader_workers=8, | |
num_eval_loader_workers=8, | |
lr_disc=0.0002, | |
lr_gen=0.0002, | |
run_eval=True, | |
test_delay_epochs=5, | |
epochs=1000, | |
use_noise_augment=True, | |
seq_len=8192, | |
pad_short=2000, | |
save_step=5000, | |
print_step=50, | |
print_eval=True, | |
mixed_precision=False, | |
eval_split_size=30, | |
save_n_checkpoints=2, | |
save_best_after=5000, | |
data_path="/storage/filtered_dataset", | |
output_path=output_path, | |
audio=audio_config, | |
) | |
# init audio processor | |
ap = AudioProcessor.init_from_config(config) | |
# load training samples | |
print("config.eval_split_size = ", config.eval_split_size) | |
eval_samples, train_samples = load_wav_data(config.data_path, config.eval_split_size) | |
# init model | |
model = GAN(config, ap) | |
# init the trainer and π | |
trainer = Trainer( | |
TrainerArgs(), config, output_path, model=model, train_samples=train_samples, eval_samples=eval_samples | |
) | |
trainer.fit() | |