eval.py 3.8 KB
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# Copyright (c) 2022 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.

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import os
import sys
import argparse
import functools
from functools import partial

import numpy as np
import paddle
import paddle.nn as nn
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from paddle.io import DataLoader
from imagenet_reader import ImageNetDataset
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from paddleslim.common import load_config as load_slim_config
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def argsparser():
    parser = argparse.ArgumentParser(description=__doc__)
    parser.add_argument(
        '--config_path',
        type=str,
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        default='./image_classification/configs/eval.yaml',
        help="path of compression strategy config.")
    parser.add_argument(
        '--model_dir',
        type=str,
        default='./MobileNetV1_infer',
        help='model directory')
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    return parser
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def eval_reader(data_dir, batch_size, crop_size, resize_size):
    val_reader = ImageNetDataset(
        mode='val',
        data_dir=data_dir,
        crop_size=crop_size,
        resize_size=resize_size)
    val_loader = DataLoader(
        val_reader,
        batch_size=global_config['batch_size'],
        shuffle=False,
        drop_last=False,
        num_workers=0)
    return val_loader
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def eval():
    devices = paddle.device.get_device().split(':')[0]
    places = paddle.device._convert_to_place(devices)
    exe = paddle.static.Executor(places)
    val_program, feed_target_names, fetch_targets = paddle.static.load_inference_model(
        global_config["model_dir"],
        exe,
        model_filename=global_config["model_filename"],
        params_filename=global_config["params_filename"])
    print('Loaded model from: {}'.format(global_config["model_dir"]))

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    val_loader = eval_reader(
        data_dir,
        batch_size=global_config['batch_size'],
        crop_size=img_size,
        resize_size=resize_size)
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    results = []
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    print('Evaluating...')
    for batch_id, (image, label) in enumerate(val_loader):
        image = np.array(image)
        label = np.array(label).astype('int64')
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        pred = exe.run(val_program,
                       feed={feed_target_names[0]: image},
                       fetch_list=fetch_targets)
        pred = np.array(pred[0])
        label = np.array(label)
        sort_array = pred.argsort(axis=1)
        top_1_pred = sort_array[:, -1:][:, ::-1]
        top_1 = np.mean(label == top_1_pred)
        top_5_pred = sort_array[:, -5:][:, ::-1]
        acc_num = 0
        for i in range(len(label)):
            if label[i][0] in top_5_pred[i]:
                acc_num += 1
        top_5 = float(acc_num) / len(label)
        results.append([top_1, top_5])
    result = np.mean(np.array(results), axis=0)
    return result[0]


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def main(args):
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    global global_config
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    all_config = load_slim_config(args.config_path)
    global_config = all_config["Global"]
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    global data_dir
    data_dir = global_config['data_dir']
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    if args.model_dir != global_config['model_dir']:
        global_config['model_dir'] = args.model_dir
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    global img_size, resize_size
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    img_size = int(global_config[
        'img_size']) if 'img_size' in global_config else 224
    resize_size = int(global_config[
        'resize_size']) if 'resize_size' in global_config else 256
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    result = eval()
    print('Eval Top1:', result)


if __name__ == '__main__':
    paddle.enable_static()
    parser = argsparser()
    args = parser.parse_args()
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    main(args)