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Generative Deep Learning: Teaching Machines to Paint, Write, Compose, and Play

0DAYDDL

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pdf | 73.64 MB | English | Isbn:‎ 978-1492041948 | Author: David Foster | Year: 2019


Description:
Generative modeling is one of the hottest topics in AI. It's now possible to teach a machine to excel at human endeavors such as painting, writing, and composing music. With this practical book, machine-learning engineers and data scientists will discover how to re-create some of the most impressive examples of generative deep learning models, such as variational autoencoders,generative adversarial networks (GANs), encoder-decoder models, and world models.
Author David Foster demonstrates the inner workings of each technique, starting with the basics of deep learning before advancing to some of the most cutting-edge algorithms in the field. Through tips and tricks, you'll understand how to make your models learn more efficiently and become more creative.

[*] Discover how variational autoencoders can change facial expressions in photos
[*] Build practical GAN examples from scratch, including CycleGAN for style transfer and MuseGAN for music generation
[*] Create recurrent generative models for text generation and learn how to improve the models using attention
[*] Understand how generative models can help agents to accomplish tasks within a reinforcement learning setting
[*] Explore the architecture of the Transformer (BERT, GPT-2) and image generation models such as ProGAN and StyleGAN

Category:Computer Vision & Pattern Recognition, Machine Theory, Artificial Intelligence & Semantics

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