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import argparse | |
import os | |
os.environ["CUDA_VISIBLE_DEVICES"] = "-1" | |
from pathlib import Path | |
from toolbox import Toolbox | |
from utils.argutils import print_args | |
from utils.default_models import ensure_default_models | |
if __name__ == '__main__': | |
parser = argparse.ArgumentParser( | |
description="Runs the toolbox.", | |
formatter_class=argparse.ArgumentDefaultsHelpFormatter | |
) | |
parser.add_argument("--run_id", type=str, default="20230609", help= \ | |
"Name for this model. By default, training outputs will be stored to saved_models/<run_id>/. If a model state " | |
"from the same run ID was previously saved, the training will restart from there. Pass -f to overwrite saved " | |
"states and restart from scratch.") | |
parser.add_argument("-d", "--datasets_root", type=Path, help= \ | |
"Path to the directory containing your datasets. See toolbox/__init__.py for a list of " | |
"supported datasets.", default=None) | |
parser.add_argument("-m", "--models_dir", type=Path, default="saved_models", | |
help="Directory containing all saved models") | |
parser.add_argument("--cpu", action="store_true", help=\ | |
"If True, all inference will be done on CPU") | |
parser.add_argument("--seed", type=int, default=None, help=\ | |
"Optional random number seed value to make toolbox deterministic.") | |
args = parser.parse_args() | |
arg_dict = vars(args) | |
print_args(args, parser) | |
# Hide GPUs from Pytorch to force CPU processing | |
if arg_dict.pop("cpu"): | |
os.environ["CUDA_VISIBLE_DEVICES"] = "-1" | |
# Remind the user to download pretrained models if needed | |
ensure_default_models(args.run_id, args.models_dir) | |
# Launch the toolbox | |
Toolbox(**arg_dict) | |