pytorch / 1.8.0 / generated / torch.nn.pixelunshuffle.html /

PixelUnshuffle

class torch.nn.PixelUnshuffle(downscale_factor) [source]

Reverses the PixelShuffle operation by rearranging elements in a tensor of shape ( , C , H × r , W × r ) (*, C, H \times r, W \times r) to a tensor of shape ( , C × r 2 , H , W ) (*, C \times r^2, H, W) , where r is a downscale factor.

See the paper: Real-Time Single Image and Video Super-Resolution Using an Efficient Sub-Pixel Convolutional Neural Network by Shi et. al (2016) for more details.

Parameters

downscale_factor (int) – factor to decrease spatial resolution by

Shape:
  • Input: ( , C i n , H i n , W i n ) (*, C_{in}, H_{in}, W_{in}) , where * is zero or more batch dimensions
  • Output: ( , C o u t , H o u t , W o u t ) (*, C_{out}, H_{out}, W_{out}) , where
C o u t = C i n × downscale_factor 2 C_{out} = C_{in} \times \text{downscale\_factor}^2
H o u t = H i n ÷ downscale_factor H_{out} = H_{in} \div \text{downscale\_factor}
W o u t = W i n ÷ downscale_factor W_{out} = W_{in} \div \text{downscale\_factor}

Examples:

>>> pixel_unshuffle = nn.PixelUnshuffle(3)
>>> input = torch.randn(1, 1, 12, 12)
>>> output = pixel_unshuffle(input)
>>> print(output.size())
torch.Size([1, 9, 4, 4])

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Licensed under the 3-clause BSD License.
https://pytorch.org/docs/1.8.0/generated/torch.nn.PixelUnshuffle.html