Generative AI with Python and TensorFlow 2: Create images, text, and music with VAEs, GANs, LSTMs, Transformer models
Language: English
Published by Packt Publishing, 2021
- Softcover
- New

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Seller Inventory # ria9781800200883_new
- Title
- Generative AI with Python and TensorFlow 2: Create images, text, and music with VAEs, GANs, LSTMs, Transformer models
- Author
- Joseph Babcock; Raghav Bali
- Publisher
- Packt Publishing
- Publication year
- 2021
- Condition
- New
- Binding
- Soft cover
- Language
- English
- ISBN 10
- 1800200889
- ISBN 13
- 9781800200883
- Item weight
- 952 grams
This edition is heavily outdated and we have a new edition with PyTorch examples published!
Key Features
- Code examples are in TensorFlow 2, which make it easy for PyTorch users to follow along
- Look inside the most famous deep generative models, from GPT to MuseGAN
- Learn to build and adapt your own models in TensorFlow 2.x
- Explore exciting, cutting-edge use cases for deep generative AI
Book Description
Machines are excelling at creative human skills such as painting, writing, and composing music. Could you be more creative than generative AI?
In this book, you’ll explore the evolution of generative models, from restricted Boltzmann machines and deep belief networks to VAEs and GANs. You’ll learn how to implement models yourself in TensorFlow and get to grips with the latest research on deep neural networks.
There’s been an explosion in potential use cases for generative models. You’ll look at Open AI’s news generator, deepfakes, and training deep learning agents to navigate a simulated environment.
Recreate the code that’s under the hood and uncover surprising links between text, image, and music generation.
What you will learn
- Export the code from GitHub into Google Colab to see how everything works for yourself
- Compose music using LSTM models, simple GANs, and MuseGAN
- Create deepfakes using facial landmarks, autoencoders, and pix2pix GAN
- Learn how attention and transformers have changed NLP
- Build several text generation pipelines based on LSTMs, BERT, and GPT-2
- Implement paired and unpaired style transfer with networks like StyleGAN
- Discover emerging applications of generative AI like folding proteins and creating videos from images
Who this book is for
This is a book for Python programmers who are keen to create and have some fun using generative models. To make the most out of this book, you should have a basic familiarity with math and statistics for machine learning.
Table of Contents
- An Introduction to Generative AI: "Drawing" Data from Models
- Setting Up a TensorFlow Lab
- Building Blocks of Deep Neural Networks
- Teaching Networks to Generate Digits
- Painting Pictures with Neural Networks Using VAEs
- Image Generation with GANs
- Style Transfer with GANs
- Deepfakes with GANs
- The Rise of Methods for Text Generation
- NLP 2.0: Using Transformers to Generate Text
- Composing Music with Generative Models
- Play Video Games with Generative AI: GAIL
- Emerging Applications in Generative AI
"Synopsis" may belong to another edition of this title.
About the Author
Joseph Babcock has spent more than a decade working with big data and AI in the e-commerce, digital streaming, and quantitative finance domains. Through his career he has worked on recommender systems, petabyte scale cloud data pipelines, A/B testing, causal inference, and time series analysis. He completed his PhD studies at Johns Hopkins University, applying machine learning to the field of drug discovery and genomics.
Raghav Bali is an author of multiple well received books and a Senior Data Scientist at one of the world’s largest healthcare organizations. His work involves research and development of enterprise-level solutions based on Machine Learning, Deep Learning, and Natural Language Processing for Healthcare and Insurance-related use cases. His previous experiences include working at Intel and American Express. Raghav has a master’s degree (gold medalist) from the International Institute of Information Technology, Bangalore.
"About the title" may belong to another edition of this title.
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