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Running
on
Zero
# Copyright (c) 2023 Amphion. | |
# | |
# This source code is licensed under the MIT license found in the | |
# LICENSE file in the root directory of this source tree. | |
import argparse | |
import os | |
import torch | |
from models.tta.autoencoder.autoencoder_trainer import AutoencoderKLTrainer | |
from models.tta.ldm.audioldm_trainer import AudioLDMTrainer | |
from utils.util import load_config | |
def build_trainer(args, cfg): | |
supported_trainer = { | |
"AutoencoderKL": AutoencoderKLTrainer, | |
"AudioLDM": AudioLDMTrainer, | |
} | |
trainer_class = supported_trainer[cfg.model_type] | |
trainer = trainer_class(args, cfg) | |
return trainer | |
def main(): | |
parser = argparse.ArgumentParser() | |
parser.add_argument( | |
"--config", | |
default="config.json", | |
help="json files for configurations.", | |
required=True, | |
) | |
parser.add_argument( | |
"--num_workers", type=int, default=6, help="Number of dataloader workers." | |
) | |
parser.add_argument( | |
"--exp_name", | |
type=str, | |
default="exp_name", | |
help="A specific name to note the experiment", | |
required=True, | |
) | |
parser.add_argument( | |
"--resume", | |
type=str, | |
default=None, | |
# action="store_true", | |
help="The model name to restore", | |
) | |
parser.add_argument( | |
"--log_level", default="info", help="logging level (info, debug, warning)" | |
) | |
parser.add_argument("--stdout_interval", default=5, type=int) | |
parser.add_argument("--local_rank", default=-1, type=int) | |
args = parser.parse_args() | |
cfg = load_config(args.config) | |
cfg.exp_name = args.exp_name | |
# Model saving dir | |
args.log_dir = os.path.join(cfg.log_dir, args.exp_name) | |
os.makedirs(args.log_dir, exist_ok=True) | |
if not cfg.train.ddp: | |
args.local_rank = torch.device("cuda") | |
# Build trainer | |
trainer = build_trainer(args, cfg) | |
# Restore models | |
if args.resume: | |
trainer.restore() | |
trainer.train() | |
if __name__ == "__main__": | |
main() | |