OneRestore / remove_optim.py
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import torch, argparse
from model.OneRestore import OneRestore
from model.Embedder import Embedder
parser = argparse.ArgumentParser()
parser.add_argument("--type", type=str, default = 'OneRestore')
parser.add_argument("--input-file", type=str, default = './ckpts/onerestore_cdd-11.tar')
parser.add_argument("--output-file", type=str, default = './ckpts/onerestore_cdd-11.tar')
args = parser.parse_args()
if args.type == 'OneRestore':
restorer = OneRestore().to("cuda" if torch.cuda.is_available() else "cpu")
restorer_info = torch.load(args.input_file, map_location='cuda:0')
weights_dict = {}
for k, v in restorer_info['state_dict'].items():
new_k = k.replace('module.', '') if 'module' in k else k
weights_dict[new_k] = v
restorer.load_state_dict(weights_dict)
torch.save(restorer.state_dict(), args.output_file)
elif args.type == 'Embedder':
combine_type = ['clear', 'low', 'haze', 'rain', 'snow',\
'low_haze', 'low_rain', 'low_snow', 'haze_rain',\
'haze_snow', 'low_haze_rain', 'low_haze_snow']
embedder = Embedder(combine_type).to("cuda" if torch.cuda.is_available() else "cpu")
embedder_info = torch.load(args.input_file)
embedder.load_state_dict(embedder_info['state_dict'])
torch.save(embedder.state_dict(), args.output_file)
else:
print('ERROR!')