I can't understand the generator network of the Train Generative Adversarial Network (GAN) example
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In the first layer of transposed convolution, why does it not use 'Stride',2,'Cropping','same' like the following layers? I think the width and height of the input is 4x4 so it needs to be enlarged by a factor of 2 for 4 times to get a size of 64x64. But in this code, I think it only enlarges the input by a factor of 2 for 3 times. Could you please help me understand this?
By the way, why it says 'Converts the random vectors of size 100 to 7-by-7-by-128 arrays using a project and reshape layer' but the projection size in the code is [4 4 512]?
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Answers (1)
Ben
on 9 Apr 2024
The documentation for transposedConv2dLayer states in the Algorithms section that the input is padded with zeros up to "filter edge size minus 1". I think this explains why the 4x4 input becomes 8x8. To see this, call analyzeNetwork(netG) on the generator in the example.
The statement "Converts the random vectors of size 100 to 7-by-7-by-128 arrays using a project and reshape layer" isn't in the current version of the example, perhaps it was a typo in an old version.
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