data.py 4.7 KB
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#   Copyright (c) 2019 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.

import numpy as np
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import six
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from paddle.fluid import core
from paddle.fluid.layer_helper import LayerHelper
from paddle.fluid.data_feeder import check_dtype, check_type
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from ..utils import deprecated
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__all__ = ['data']


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@deprecated(since="2.0.0", update_to="paddle.static.data")
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def data(name, shape, dtype='float32', lod_level=0):
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    """
    **Data Layer**

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    This function creates a variable on the global block. The global variable
    can be accessed by all the following operators in the graph. The variable
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    is a placeholder that could be fed with input, such as Executor can feed
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    input into the variable.
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    Note: 
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        `paddle.fluid.layers.data` is deprecated. It will be removed in a
        future version. Please use this `paddle.fluid.data`. 
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        The `paddle.fluid.layers.data` set shape and dtype at compile time but
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        does NOT check the shape or the dtype of fed data, this
        `paddle.fluid.data` checks the shape and the dtype of data fed by
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        Executor or ParallelExecutor during run time.

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        To feed variable size inputs, users can set None or -1 on the variable
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        dimension when using :code:`paddle.fluid.data`, or feed variable size
        inputs directly to :code:`paddle.fluid.layers.data` and PaddlePaddle
        will fit the size accordingly.

        The default :code:`stop_gradient` attribute of the Variable created by
        this API is true, which means the gradient won't be passed backward
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        through the data Variable. Set :code:`var.stop_gradient = False` If
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        user would like to pass backward gradient.
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    Args:
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       name (str): The name/alias of the variable, see :ref:`api_guide_Name`
           for more details.
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       shape (list|tuple): List|Tuple of integers declaring the shape. You can
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           set "None" or -1 at a dimension to indicate the dimension can be of any
           size. For example, it is useful to set changeable batch size as "None" or -1.
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       dtype (np.dtype|VarType|str, optional): The type of the data. Supported
           dtype: bool, float16, float32, float64, int8, int16, int32, int64,
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           uint8. Default: float32.
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       lod_level (int, optional): The LoD level of the LoDTensor. Usually users
           don't have to set this value. For more details about when and how to
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           use LoD level, see :ref:`user_guide_lod_tensor` . Default: 0.
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    Returns:
        Variable: The global variable that gives access to the data.

    Examples:
        .. code-block:: python

          import paddle.fluid as fluid
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          import numpy as np
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          # Creates a variable with fixed size [3, 2, 1]
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          # User can only feed data of the same shape to x
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          x = fluid.data(name='x', shape=[3, 2, 1], dtype='float32')
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          # Creates a variable with changeable batch size -1.
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          # Users can feed data of any batch size into y,
          # but size of each data sample has to be [2, 1]
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          y = fluid.data(name='y', shape=[-1, 2, 1], dtype='float32')
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          z = x + y

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          # In this example, we will feed x and y with np-ndarray "1"
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          # and fetch z, like implementing "1 + 1 = 2" in PaddlePaddle
          feed_data = np.ones(shape=[3, 2, 1], dtype=np.float32)

          exe = fluid.Executor(fluid.CPUPlace())
          out = exe.run(fluid.default_main_program(),
                        feed={
                            'x': feed_data,
                            'y': feed_data
                        },
                        fetch_list=[z.name])

          # np-ndarray of shape=[3, 2, 1], dtype=float32, whose elements are 2
          print(out)
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    """
    helper = LayerHelper('data', **locals())
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    check_type(name, 'name', (six.binary_type, six.text_type), 'data')
    check_type(shape, 'shape', (list, tuple), 'data')

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    shape = list(shape)
    for i in six.moves.range(len(shape)):
        if shape[i] is None:
            shape[i] = -1

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    return helper.create_global_variable(
        name=name,
        shape=shape,
        dtype=dtype,
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        type=core.VarDesc.VarType.LOD_TENSOR,
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        stop_gradient=True,
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        lod_level=lod_level,
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        is_data=True,
        need_check_feed=True)