cifar.py 4.1 KB
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# Copyright (c) 2016 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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"""
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CIFAR dataset.

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This module will download dataset from
https://www.cs.toronto.edu/~kriz/cifar.html and parse train/test set into
paddle reader creators.
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The CIFAR-10 dataset consists of 60000 32x32 colour images in 10 classes,
with 6000 images per class. There are 50000 training images and 10000 test
images.
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The CIFAR-100 dataset is just like the CIFAR-10, except it has 100 classes
containing 600 images each. There are 500 training images and 100 testing
images per class.
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"""
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import cPickle
import itertools
import numpy
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import paddle.v2.dataset.common
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import tarfile
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__all__ = ['train100', 'test100', 'train10', 'test10', 'convert']
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URL_PREFIX = 'https://www.cs.toronto.edu/~kriz/'
CIFAR10_URL = URL_PREFIX + 'cifar-10-python.tar.gz'
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CIFAR10_MD5 = 'c58f30108f718f92721af3b95e74349a'
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CIFAR100_URL = URL_PREFIX + 'cifar-100-python.tar.gz'
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CIFAR100_MD5 = 'eb9058c3a382ffc7106e4002c42a8d85'


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def reader_creator(filename, sub_name):
    def read_batch(batch):
        data = batch['data']
        labels = batch.get('labels', batch.get('fine_labels', None))
        assert labels is not None
        for sample, label in itertools.izip(data, labels):
            yield (sample / 255.0).astype(numpy.float32), int(label)
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    def reader():
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        with tarfile.open(filename, mode='r') as f:
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            names = (each_item.name for each_item in f
                     if sub_name in each_item.name)

            for name in names:
                batch = cPickle.load(f.extractfile(name))
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                for item in read_batch(batch):
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                    yield item

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    return reader
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def train100():
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    """
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    CIFAR-100 training set creator.
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    It returns a reader creator, each sample in the reader is image pixels in
    [0, 1] and label in [0, 99].

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    :return: Training reader creator
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    :rtype: callable
    """
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    return reader_creator(
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        paddle.v2.dataset.common.download(CIFAR100_URL, 'cifar', CIFAR100_MD5),
        'train')
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def test100():
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    """
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    CIFAR-100 test set creator.
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    It returns a reader creator, each sample in the reader is image pixels in
    [0, 1] and label in [0, 9].

    :return: Test reader creator.
    :rtype: callable
    """
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    return reader_creator(
        paddle.v2.dataset.common.download(CIFAR100_URL, 'cifar', CIFAR100_MD5),
        'test')
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def train10():
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    """
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    CIFAR-10 training set creator.
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    It returns a reader creator, each sample in the reader is image pixels in
    [0, 1] and label in [0, 9].

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    :return: Training reader creator
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    :rtype: callable
    """
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    return reader_creator(
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        paddle.v2.dataset.common.download(CIFAR10_URL, 'cifar', CIFAR10_MD5),
        'data_batch')
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def test10():
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    """
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    CIFAR-10 test set creator.
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    It returns a reader creator, each sample in the reader is image pixels in
    [0, 1] and label in [0, 9].

    :return: Test reader creator.
    :rtype: callable
    """
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    return reader_creator(
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        paddle.v2.dataset.common.download(CIFAR10_URL, 'cifar', CIFAR10_MD5),
        'test_batch')
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def fetch():
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    paddle.v2.dataset.common.download(CIFAR10_URL, 'cifar', CIFAR10_MD5)
    paddle.v2.dataset.common.download(CIFAR100_URL, 'cifar', CIFAR100_MD5)


def convert(path):
    """
    Converts dataset to recordio format
    """
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    paddle.v2.dataset.common.convert(path, train100(), 1000, "cifar_train100")
    paddle.v2.dataset.common.convert(path, test100(), 1000, "cifar_test100")
    paddle.v2.dataset.common.convert(path, train10(), 1000, "cifar_train10")
    paddle.v2.dataset.common.convert(path, test10(), 1000, "cifar_test10")