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test.py
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test.py
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#!/usr/bin/env python
import os
import json
import torch
import pprint
import argparse
import importlib
import numpy as np
import matplotlib
matplotlib.use("Agg")
from config import system_configs
from nnet.py_factory import NetworkFactory
from db.datasets import datasets
torch.backends.cudnn.benchmark = False
def parse_args():
parser = argparse.ArgumentParser(description="Test CornerNet")
parser.add_argument("cfg_file", help="config file", type=str)
parser.add_argument("--testiter", dest="testiter",
help="test at iteration i",
default=None, type=int)
parser.add_argument("--split", dest="split",
help="which split to use",
default="validation", type=str)
parser.add_argument("--suffix", dest="suffix", default=None, type=str)
parser.add_argument("--debug", action="store_true")
args = parser.parse_args()
return args
def make_dirs(directories):
for directory in directories:
if not os.path.exists(directory):
os.makedirs(directory)
def test(db, split, testiter, debug=False, suffix=None):
result_dir = system_configs.result_dir
result_dir = os.path.join(result_dir, str(testiter), split)
if suffix is not None:
result_dir = os.path.join(result_dir, suffix)
make_dirs([result_dir])
test_iter = system_configs.max_iter if testiter is None else testiter
print("loading parameters at iteration: {}".format(test_iter))
print("building neural network...")
nnet = NetworkFactory(db)
print("loading parameters...")
nnet.load_params(test_iter)
test_file = "test.{}".format(db.data)
testing = importlib.import_module(test_file).testing
nnet.cuda()
nnet.eval_mode()
testing(db, nnet, result_dir, debug=debug)
if __name__ == "__main__":
args = parse_args()
if args.suffix is None:
cfg_file = os.path.join(system_configs.config_dir, args.cfg_file + ".json")
else:
cfg_file = os.path.join(system_configs.config_dir, args.cfg_file + "-{}.json".format(args.suffix))
print("cfg_file: {}".format(cfg_file))
with open(cfg_file, "r") as f:
configs = json.load(f)
configs["system"]["snapshot_name"] = args.cfg_file
system_configs.update_config(configs["system"])
train_split = system_configs.train_split
val_split = system_configs.val_split
test_split = system_configs.test_split
split = {
"training": train_split,
"validation": val_split,
"testing": test_split
}[args.split]
print("loading all datasets...")
dataset = system_configs.dataset
print("split: {}".format(split))
testing_db = datasets[dataset](configs["db"], split)
print("system config...")
pprint.pprint(system_configs.full)
print("db config...")
pprint.pprint(testing_db.configs)
test(testing_db, args.split, args.testiter, args.debug, args.suffix)