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6e54a3bf
编写于
8月 30, 2022
作者:
M
Megvii Engine Team
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docs(mge): update MaxPool2d & functional.nn.max_pool2d docstring
GitOrigin-RevId: b46f227b59ef98d16e1c08a2ae3526467a79cd60
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imperative/python/megengine/functional/nn.py
imperative/python/megengine/functional/nn.py
+5
-5
imperative/python/megengine/module/pooling.py
imperative/python/megengine/module/pooling.py
+5
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未找到文件。
imperative/python/megengine/functional/nn.py
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...
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@@ -658,16 +658,16 @@ def max_pool2d(
Refer to :class:`~.MaxPool2d` for more information.
Args:
inp: input tensor of shape :math:`(N, C, H_{
in}, W_{in
})`.
inp: input tensor of shape :math:`(N, C, H_{
\text{in}}, W_{\text{in}
})`.
kernel_size: size of the window used to calculate the max value.
stride: stride of the window. If not provided, its value is set to kernel_size.
Default: ``None``
padding: implicit zero padding added on both sides. Default: :math:`0`
stride: stride of the window. Default value is ``kernel_size``.
padding: implicit zero padding added on both sides. Default: 0.
Returns:
output tensor of shape `(N, C, H_{
out}, W_{out
})`.
output tensor of shape `(N, C, H_{
\text{out}}, W_{\text{out}
})`.
Examples:
>>> import numpy as np
>>> input = tensor(np.arange(1 * 1 * 3 * 4).astype(np.float32).reshape(1, 1, 3, 4))
>>> F.nn.max_pool2d(input, 2, 1, 0)
Tensor([[[[ 5. 6. 7.]
...
...
imperative/python/megengine/module/pooling.py
浏览文件 @
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...
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@@ -32,9 +32,9 @@ class _PoolNd(Module):
class
MaxPool2d
(
_PoolNd
):
r
"""Applies a 2D max pooling over an input.
For instance, given an input of the size :
math:`(N, C, H, W
)` and
For instance, given an input of the size :
`(N, C, H_{\text{in}}, W_{\text{in}}
)` and
:attr:`kernel_size` :math:`(kH, kW)`, this layer generates the output of
the size :math:`(N, C, H_{
out}, W_{out
})` through a process described as:
the size :math:`(N, C, H_{
\text{out}}, W_{\text{out}
})` through a process described as:
.. math::
...
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@@ -48,9 +48,9 @@ class MaxPool2d(_PoolNd):
both sides for :attr:`padding` number of points.
Args:
kernel_size: the size of the window
to take a max over
.
stride: the stride of the window. Default value is
kernel_size
.
padding: implicit zero padding to be added on both sides.
kernel_size: the size of the window.
stride: the stride of the window. Default value is
``kernel_size``
.
padding: implicit zero padding to be added on both sides.
Default: 0.
Examples:
>>> import numpy as np
...
...
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