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hyper_tune.py
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hyper_tune.py
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"""
模型调参脚本 (based on the ray[tune])
"""
import argparse
from libcity.pipeline import hyper_parameter
from libcity.utils import add_hyper_args
if __name__ == '__main__':
parser = argparse.ArgumentParser()
# 增加指定的参数
parser.add_argument('--task', type=str,
default='traffic_state_pred', help='the name of task')
parser.add_argument('--model', type=str,
default='GRU', help='the name of model')
parser.add_argument('--dataset', type=str,
default='METR_LA', help='the name of dataset')
parser.add_argument('--config_file', type=str,
default=None, help='the file name of config file')
parser.add_argument('--space_file', type=str,
default='hyper_example', help='the file which specifies the parameter search space')
parser.add_argument('--scheduler', type=str,
default='FIFO', help='the trial sheduler which will be used in ray.tune.run')
parser.add_argument('--search_alg', type=str,
default='BasicSearch', help='the search algorithm')
parser.add_argument('--num_samples', type=int,
default=5, help='the number of times to sample from hyperparameter space.')
parser.add_argument('--max_concurrent', type=int,
default=1, help='maximum number of trails running at the same time')
parser.add_argument('--cpu_per_trial', type=int,
default=1, help='the number of cpu which per trial will allocate')
parser.add_argument('--gpu_per_trial', type=int,
default=1, help='the number of gpu which per trial will allocate')
parser.add_argument('--exp_id', type=str, default=None, help='id of experiment')
parser.add_argument('--seed', type=int, default=0, help='random seed')
# 增加其他可选的参数
add_hyper_args(parser)
# 解析参数
args = parser.parse_args()
dict_args = vars(args)
other_args = {key: val for key, val in dict_args.items() if key not in [
'task', 'model', 'dataset', 'config_file', 'space_file', 'scheduler', 'search_alg',
'num_samples', 'max_concurrent', 'cpu_per_trial', 'gpu_per_trial'] and
val is not None}
hyper_parameter(task=args.task, model_name=args.model, dataset_name=args.dataset,
config_file=args.config_file, space_file=args.space_file,
scheduler=args.scheduler, search_alg=args.search_alg,
num_samples=args.num_samples, max_concurrent=args.max_concurrent,
cpu_per_trial=args.cpu_per_trial, gpu_per_trial=args.gpu_per_trial,
other_args=other_args)