train.py 5.2 KB
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# copyright (c) 2020 PaddlePaddle Authors. All Rights Reserve.
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#
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# 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
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#
#    http://www.apache.org/licenses/LICENSE-2.0
#
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# 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.
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from __future__ import absolute_import
from __future__ import division
from __future__ import print_function

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import argparse
import os

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from visualdl import LogWriter
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import paddle.fluid as fluid
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from paddle.fluid.incubate.fleet.base import role_maker
from paddle.fluid.incubate.fleet.collective import fleet
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from ppcls.data import Reader
from ppcls.utils.config import get_config
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from ppcls.utils.save_load import init_model, save_model
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from ppcls.utils import logger
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import program
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def parse_args():
    parser = argparse.ArgumentParser("PaddleClas train script")
    parser.add_argument(
        '-c',
        '--config',
        type=str,
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        default='configs/ResNet/ResNet50.yaml',
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        help='config file path')
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    parser.add_argument(
        '--vdl_dir',
        type=str,
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        default=None,
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        help='VisualDL logging directory for image.')
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    parser.add_argument(
        '-o',
        '--override',
        action='append',
        default=[],
        help='config options to be overridden')
    args = parser.parse_args()
    return args


def main(args):
    role = role_maker.PaddleCloudRoleMaker(is_collective=True)
    fleet.init(role)

    config = get_config(args.config, overrides=args.override, show=True)
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    # assign the place
    gpu_id = int(os.environ.get('FLAGS_selected_gpus', 0))
    place = fluid.CUDAPlace(gpu_id)
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    # startup_prog is used to do some parameter init work,
    # and train prog is used to hold the network
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    startup_prog = fluid.Program()
    train_prog = fluid.Program()

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    best_top1_acc = 0.0  # best top1 acc record
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    train_dataloader, train_fetchs = program.build(
        config, train_prog, startup_prog, is_train=True)

    if config.validate:
        valid_prog = fluid.Program()
        valid_dataloader, valid_fetchs = program.build(
            config, valid_prog, startup_prog, is_train=False)
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        # clone to prune some content which is irrelevant in valid_prog
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        valid_prog = valid_prog.clone(for_test=True)

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    # create the "Executor" with the statement of which place
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    exe = fluid.Executor(place=place)
    # only run startup_prog once to init
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    exe.run(startup_prog)

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    # load model from checkpoint or pretrained model
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    init_model(config, train_prog, exe)

    train_reader = Reader(config, 'train')()
    train_dataloader.set_sample_list_generator(train_reader, place)

    if config.validate:
        valid_reader = Reader(config, 'valid')()
        valid_dataloader.set_sample_list_generator(valid_reader, place)
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        compiled_valid_prog = program.compile(config, valid_prog)

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    compiled_train_prog = fleet.main_program
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    vdl_writer = LogWriter(args.vdl_dir) if args.vdl_dir else None

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    for epoch_id in range(config.epochs):
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        # 1. train with train dataset
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        program.run(train_dataloader, exe, compiled_train_prog, train_fetchs,
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                    epoch_id, 'train', vdl_writer)
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        if int(os.getenv("PADDLE_TRAINER_ID", 0)) == 0:
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            # 2. validate with validate dataset
            if config.validate and epoch_id % config.valid_interval == 0:
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                if config.get('use_ema'):
                    logger.info(logger.coloring("EMA validate start..."))
                    with train_fetchs('ema').apply(exe):
                        top1_acc = program.run(valid_dataloader, exe,
                                       compiled_valid_prog, valid_fetchs,
                                       epoch_id, 'valid')
                    logger.info(logger.coloring("EMA validate over!"))

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                top1_acc = program.run(valid_dataloader, exe,
                                       compiled_valid_prog, valid_fetchs,
                                       epoch_id, 'valid')
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                if top1_acc > best_top1_acc:
                    best_top1_acc = top1_acc
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                    message = "The best top1 acc {:.5f}, in epoch: {:d}".format(
                        best_top1_acc, epoch_id)
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                    logger.info("{:s}".format(logger.coloring(message, "RED")))
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                    if epoch_id % config.save_interval == 0:
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                        model_path = os.path.join(config.model_save_dir,
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                                                  config.ARCHITECTURE["name"])
                        save_model(train_prog, model_path,
                                   "best_model_in_epoch_" + str(epoch_id))
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            # 3. save the persistable model
            if epoch_id % config.save_interval == 0:
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                model_path = os.path.join(config.model_save_dir,
                                          config.ARCHITECTURE["name"])
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                save_model(train_prog, model_path, epoch_id)
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if __name__ == '__main__':
    args = parse_args()
    main(args)