Deep Neural Networks in a Mathematical Framework

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This SpringerBrief describes how to build a rigorous end-to-end mathematical framework for deep neural networks. In particular, the authors derive gradient descent algorithms in a unified way for several neural network structures, including multilayer perceptrons, convolutional neural networks, deep autoencoders and recurrent neural networks.

Specificaties
ISBN/EAN 9783319753034
Auteur Caterini, Anthony L.
Uitgever Van Ditmar Boekenimport B.V.
Taal Engels
Uitvoering Paperback / gebrocheerd
Pagina's 84
Lengte 241.0 mm
Breedte 159.0 mm

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