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Hands-On Neural Networks

You're reading from   Hands-On Neural Networks Learn how to build and train your first neural network model using Python

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Product type Paperback
Published in May 2019
Publisher Packt
ISBN-13 9781788992596
Length 280 pages
Edition 1st Edition
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Authors (2):
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Leonardo De Marchi Leonardo De Marchi
Author Profile Icon Leonardo De Marchi
Leonardo De Marchi
Laura Mitchell Laura Mitchell
Author Profile Icon Laura Mitchell
Laura Mitchell
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Toc

Table of Contents (16) Chapters Close

Preface 1. Section 1: Getting Started FREE CHAPTER
2. Getting Started with Supervised Learning 3. Neural Network Fundamentals 4. Section 2: Deep Learning Applications
5. Convolutional Neural Networks for Image Processing 6. Exploiting Text Embedding 7. Working with RNNs 8. Reusing Neural Networks with Transfer Learning 9. Section 3: Advanced Applications
10. Working with Generative Algorithms 11. Implementing Autoencoders 12. Deep Belief Networks 13. Reinforcement Learning 14. Whats Next? 15. Other Books You May Enjoy

BigGAN

The BigGAN model is arguably the current state-of-the-art model in ImageNet generation (at the time of writing). Modifications incorporated into the model focus on the following:

  • Scalability: The two architectural changes to improve scalability were introduced in order to improve the performance of the GAN, while at the same time improving conditioning by applying orthogonal regularization to the generator.
  • Robustness: The orthogonal regularization that is applied to the generator makes the model responsive to the truncation trick, so that fine control of the fidelity and variety tradeoffs is possible by truncating the latent space.
  • Stability: Devised solutions in order to minimize the instabilities.

Samples of photos generated by the BigGAN model at a 512 x 512 resolution are as follows:

The source for this image can be found at: https://arxiv.org/pdf/1809.11096.pdf...
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