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Deep Learning with TensorFlow 2 and Keras - Second Edition

You're reading from  Deep Learning with TensorFlow 2 and Keras - Second Edition

Product type Book
Published in Dec 2019
Publisher Packt
ISBN-13 9781838823412
Pages 646 pages
Edition 2nd Edition
Languages
Authors (3):
Antonio Gulli Antonio Gulli
Profile icon Antonio Gulli
Amita Kapoor Amita Kapoor
Profile icon Amita Kapoor
Sujit Pal Sujit Pal
Profile icon Sujit Pal
View More author details

Table of Contents (19) Chapters

Preface Neural Network Foundations with TensorFlow 2.0 TensorFlow 1.x and 2.x Regression Convolutional Neural Networks Advanced Convolutional Neural Networks Generative Adversarial Networks Word Embeddings Recurrent Neural Networks Autoencoders Unsupervised Learning Reinforcement Learning TensorFlow and Cloud TensorFlow for Mobile and IoT and TensorFlow.js An introduction to AutoML The Math Behind Deep Learning Tensor Processing Unit Other Books You May Enjoy
Index

Deep convolutional GAN (DCGAN)

Proposed in 2016, DCGANs have become one of the most popular and successful GAN architectures. The main idea in the design was using convolutional layers without the use of pooling layers or the end classifier layers. The convolutional strides and transposed convolutions are employed for the downsampling and upsampling of images.

Before going into the details of the DCGAN architecture and its capabilities, let us point out the major changes that were introduced in the paper:

  • The network consisted of all convolutional layers. The pooling layers were replaced by strided convolutions in the discriminator and transposed convolutions in the generator.
  • The fully connected classifying layers after the convolutions are removed.
  • To help with the gradient flow, batch normalization is done after every convolutional layer.

The basic idea of DCGANs is same as the vanilla GAN: we have a generator that takes in noise of 100 dimensions; the...

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