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51786484
编写于
4月 07, 2020
作者:
M
Megvii Engine Team
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fix(mge/doc): fix batch_norm2d doc
GitOrigin-RevId: 769ddd367b7825f23a6343f13426e95aaae7f570
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python_module/megengine/functional/nn.py
python_module/megengine/functional/nn.py
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python_module/megengine/functional/nn.py
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@@ -280,27 +280,20 @@ def batch_norm2d(
)
->
Tensor
:
"""Applies batch normalization to the input.
:type inp: Tensor
:param inp: The input tensor.
:type num_features: int
:param num_features: usually the :math:`C` from an input of size
:math:`(N, C, H, W)` or the highest ranked dimension of an input with
less than 4D.
:type eps: float
:param inp: input tensor.
:param running_mean: tensor to store running mean.
:param running_var: tensor to store running variance.
:param weight: scaling tensor in the learnable affine parameters.
See :math:`\gamma` in :class:`~.BatchNorm2d`
:param bias: bias tensor in the learnable affine parameters.
See :math:`
\b
eta` in :class:`~.BatchNorm2d`
:param training: a boolean value to indicate whether batch norm is performed
in traning mode. Default: ``False``
:param momentum: the value used for the ``running_mean`` and ``running_var``
computation.
Default: 0.9
:param eps: a value added to the denominator for numerical stability.
Default: 1e-5.
:type momentum: float
:param momentum: the value used for the `running_mean` and `running_var`
computation.
Default: 0.1
:type affine: bool
:param affine: a boolean value that when set to ``True``, this module has
learnable affine parameters. Default: ``True``
:type track_running_stats: bool
:param track_running_stats: when set to ``True``, this module tracks the
running mean and variance. When set to ``False``, this module does not
track such statistics and always uses batch statistics in both training
and eval modes. Default: ``True``.
Refer to :class:`~.BatchNorm2d` and :class:`~.BatchNorm1d` for more information.
"""
...
...
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