eval.py 4.0 KB
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# Copyright (c) 2020 PaddlePaddle Authors. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
#     http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.

from __future__ import absolute_import
from __future__ import division
from __future__ import print_function
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import os
import sys

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# add python path of PadleDetection to sys.path
parent_path = os.path.abspath(os.path.join(__file__, *(['..'] * 2)))
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sys.path.insert(0, parent_path)
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# ignore warning log
import warnings
warnings.filterwarnings('ignore')

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import paddle

from ppdet.core.workspace import load_config, merge_config
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from ppdet.utils.check import check_gpu, check_npu, check_version, check_config
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from ppdet.utils.cli import ArgsParser
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from ppdet.engine import Trainer, init_parallel_env
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from ppdet.metrics.coco_utils import json_eval_results
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from ppdet.slim import build_slim_model
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from ppdet.utils.logger import setup_logger
logger = setup_logger('eval')


def parse_args():
    parser = ArgsParser()
    parser.add_argument(
        "--output_eval",
        default=None,
        type=str,
        help="Evaluation directory, default is current directory.")

    parser.add_argument(
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        '--json_eval',
        action='store_true',
        default=False,
        help='Whether to re eval with already exists bbox.json or mask.json')
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    parser.add_argument(
        "--slim_config",
        default=None,
        type=str,
        help="Configuration file of slim method.")

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    # TODO: bias should be unified
    parser.add_argument(
        "--bias",
        action="store_true",
        help="whether add bias or not while getting w and h")

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    parser.add_argument(
        "--classwise",
        action="store_true",
        help="whether per-category AP and draw P-R Curve or not.")

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    parser.add_argument(
        '--save_prediction_only',
        action='store_true',
        default=False,
        help='Whether to save the evaluation results only')

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    args = parser.parse_args()
    return args


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def run(FLAGS, cfg):
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    if FLAGS.json_eval:
        logger.info(
            "In json_eval mode, PaddleDetection will evaluate json files in "
            "output_eval directly. And proposal.json, bbox.json and mask.json "
            "will be detected by default.")
        json_eval_results(
            cfg.metric,
            json_directory=FLAGS.output_eval,
            dataset=cfg['EvalDataset'])
        return

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    # init parallel environment if nranks > 1
    init_parallel_env()

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    # build trainer
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    trainer = Trainer(cfg, mode='eval')

    # load weights
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    trainer.load_weights(cfg.weights)
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    # training
    trainer.evaluate()
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def main():
    FLAGS = parse_args()
    cfg = load_config(FLAGS.config)
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    # TODO: bias should be unified
    cfg['bias'] = 1 if FLAGS.bias else 0
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    cfg['classwise'] = True if FLAGS.classwise else False
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    cfg['output_eval'] = FLAGS.output_eval
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    cfg['save_prediction_only'] = FLAGS.save_prediction_only
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    merge_config(FLAGS.opt)
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    # disable npu in config by default
    if 'use_npu' not in cfg:
        cfg.use_npu = False

    if cfg.use_gpu:
        place = paddle.set_device('gpu')
    elif cfg.use_npu:
        place = paddle.set_device('npu')
    else:
        place = paddle.set_device('cpu')
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    if 'norm_type' in cfg and cfg['norm_type'] == 'sync_bn' and not cfg.use_gpu:
        cfg['norm_type'] = 'bn'

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    if FLAGS.slim_config:
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        cfg = build_slim_model(cfg, FLAGS.slim_config, mode='eval')

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    check_config(cfg)
    check_gpu(cfg.use_gpu)
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    check_npu(cfg.use_npu)
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    check_version()

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    run(FLAGS, cfg)
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if __name__ == '__main__':
    main()