Injection noise to CNN through customized training loop
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Hi there.
I am using costumized loop to train my CNN. For designing my net, I need to inject Gaussian noise per each layer. I could not find in DL toolbox about noise layer and L2 regularization. I need to know how I can put a Gaussian noise layer (if there is) in my model and where exactly would be its place in layers ordering. Then how can I define L2 regularization consist with my costumized training loop (with dlNetwork(lgraph)). I mean, for computing loss function (using cross entropy) and gradient (using dlfeval(@gradientmodel, ...) ), should I add only 0.5*norm(dlnet.learnables) to loss and dlnet.learnables(i,:), where i refers to only weights or there is other approach to do this??
Thanks for any help.
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