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Hi, thanks for the interest in this codebase. As a disclaimer, I haven't looked at this in a couple years.
From the original improved GAN paper, Section 3.2:
Interestingly, however, feature matching was found to work much better if the goal is to obtain a strong classifier using the approach to semi-supervised learning described in Section 5.
This project trains a GAN for classification. We want the classifier (discriminator of the GAN) to be good, so it can distinguish b/w the different classes (including the added "fake" class). You can check out Section 4 of this paper for more details on an application of this approach.
I'm not sure about your specific use case, but that is an expected result for the implementation in this codebase.
from semi-supervised-gan.
Thank you for the answer, I would like to ask as well, is there any resource regarding architectures of generators for GAN systems? I am having a lot of trouble finding something solid about it.
Thank you for your time
from semi-supervised-gan.
Image generation is probably a better direction for training generators.
from semi-supervised-gan.
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from semi-supervised-gan.