Content preview from Hands-On Unsupervised Learning with Python
- No, they don't. Both the encoder and decoder must be functionally symmetric, but their internal structures can also be different.
- No; a part of the input information is lost during the transformation, while the remaining one is split between the code output Y and the autoencoder variables, which, along with the underlying model, encode all of the transformations.
- As min(sum(zi)) = 0 and min(sum(zi)) = 128, a sum equal to 36 can imply both sparseness (if the standard deviation is large) and a uniform distribution with small values (when the standard deviation is close to zero).
- As sum(zi) = 36, a std(zi) = 0.03 implies that the majority of values are centered around 0.28 (0.25 ÷ 0.31), the code can be considered dense.
- No; a Sanger ...
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ISBN: 9781789348279