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| import glob | |
| import os | |
| import shutil | |
| from tests import get_device_id, get_tests_output_path, run_cli | |
| from TTS.vocoder.configs import MelganConfig | |
| config_path = os.path.join(get_tests_output_path(), "test_vocoder_config.json") | |
| output_path = os.path.join(get_tests_output_path(), "train_outputs") | |
| config = MelganConfig( | |
| batch_size=4, | |
| eval_batch_size=4, | |
| num_loader_workers=0, | |
| num_eval_loader_workers=0, | |
| run_eval=True, | |
| test_delay_epochs=-1, | |
| epochs=1, | |
| seq_len=2048, | |
| eval_split_size=1, | |
| print_step=1, | |
| discriminator_model_params={"base_channels": 16, "max_channels": 64, "downsample_factors": [4, 4, 4]}, | |
| print_eval=True, | |
| data_path="tests/data/ljspeech", | |
| output_path=output_path, | |
| ) | |
| config.audio.do_trim_silence = True | |
| config.audio.trim_db = 60 | |
| config.save_json(config_path) | |
| # train the model for one epoch | |
| command_train = f"CUDA_VISIBLE_DEVICES='{get_device_id()}' python TTS/bin/train_vocoder.py --config_path {config_path} " | |
| run_cli(command_train) | |
| # Find latest folder | |
| continue_path = max(glob.glob(os.path.join(output_path, "*/")), key=os.path.getmtime) | |
| # restore the model and continue training for one more epoch | |
| command_train = ( | |
| f"CUDA_VISIBLE_DEVICES='{get_device_id()}' python TTS/bin/train_vocoder.py --continue_path {continue_path} " | |
| ) | |
| run_cli(command_train) | |
| shutil.rmtree(continue_path) | |