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Hands-On Generative Adversarial Networks with PyTorch 1.x

You're reading from   Hands-On Generative Adversarial Networks with PyTorch 1.x Implement next-generation neural networks to build powerful GAN models using Python

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Product type Paperback
Published in Dec 2019
Publisher Packt
ISBN-13 9781789530513
Length 312 pages
Edition 1st Edition
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Authors (2):
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John Hany John Hany
Author Profile Icon John Hany
John Hany
Greg Walters Greg Walters
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Greg Walters
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Table of Contents (15) Chapters Close

Preface 1. Section 1: Introduction to GANs and PyTorch FREE CHAPTER
2. Generative Adversarial Networks Fundamentals 3. Getting Started with PyTorch 1.3 4. Best Practices for Model Design and Training 5. Section 2: Typical GAN Models for Image Synthesis
6. Building Your First GAN with PyTorch 7. Generating Images Based on Label Information 8. Image-to-Image Translation and Its Applications 9. Image Restoration with GANs 10. Training Your GANs to Break Different Models 11. Image Generation from Description Text 12. Sequence Synthesis with GANs 13. Reconstructing 3D models with GANs 14. Other Books You May Enjoy

References and useful reading list

  1. Udacity India. (2018, Mar 8). Why Python is the most popular language used for Machine Learning. Retrieved from https://medium.com/@UdacityINDIA/why-use-python-for-machine-learning-e4b0b4457a77.
  2. S Bhutani. (2018, Oct 7). PyTorch 1.0 - A brief summary of the PTDC ’18: PyTorch 1.0 Preview and Promise. Retrieved from https://hackernoon.com/pytorch-1-0-468332ba5163.
  3. C Perone. (2018, Oct 2). PyTorch 1.0 tracing JIT and LibTorch C++ API to integrate PyTorch into NodeJS. Retrieved from http://blog.christianperone.com/2018/10/pytorch-1-0-tracing-jit-and-libtorch-c-api-to-integrate-pytorch-into-nodejs.
  4. T Wolf. (2018, Oct 15). Training Neural Nets on Larger Batches: Practical Tips for 1-GPU, Multi-GPU and Distributed setups. Retrieved from https://medium.com/huggingface/training-larger-batches-practical-tips-on-1-gpu-multi-gpu-distributed-setups...
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