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import os
import yaml
import logging
import torch
def parse_configs(config: str):
""" Parse the config file and return a dictionary of configs
:param config: path to the config file
:returns:
"""
if not os.path.exists(config):
logging.error('Cannot find the config file: {}'.format(config))
exit()
with open(config, 'r') as stream:
try:
configs=yaml.safe_load(stream)
return configs
except yaml.YAMLError as exc:
logging.error(exc)
return {}
def load_model(config: str, weight: str, model_def, device):
""" Load the model from the config file and the weight file
:param config: path to the config file
:param weight: path to the weight file
:param model_def: model class definition
:param device: pytorch device
:returns:
"""
assert os.path.exists(weight), 'Cannot find the weight file: {}'.format(weight)
assert os.path.exists(config), 'Cannot find the config file: {}'.format(config)
opt = parse_configs(config)
model = model_def(opt)
cp = torch.load(weight)
models = model.get_models()
for k, m in models.items():
m.load_state_dict(cp[k])
m.to(device)
model.set_models(models)
return model