7) Layers can create losses during the forward pass. This is especially useful for regularization losses. The losses created by sublayers are recursively tracked by the parent layers.pic.twitter.com/TcsfyBqilg
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This is the end of this thread. Play with these code examples in this Colab notebook: https://colab.research.google.com/drive/17u-pRZJnKN0gO5XZmq8n5A2bKGrfKEUg … 

can we just make subclass the main API. people love pytorch style consistency, if TF 2.0 has pytorch's API plus all the extra stuff TF has to offer such as TFhub and TFserving, then it's gonna get all pytorch users.
Hi new to Keras so I might be making a mistake... The VAE model does not learn anything with the kl_loss component. Now if I remove it, everything seems to be fine.
Sorry I got it. The Kl_loss is a regularizer. It was simply too high. I lowered the value 0.5 in the notebook to 0.005
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