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Deep Belief Nets in C++ and Cuda C: Volume 1: Restricted Boltzmann Machines and Supervised Feedforward Networks
Contributor(s): Masters, Timothy (Author)
ISBN: 1484235908     ISBN-13: 9781484235904
Publisher: Apress
OUR PRICE:   $34.19  
Product Type: Paperback - Other Formats
Published: April 2018
Qty:
Additional Information
BISAC Categories:
- Computers | Neural Networks
- Computers | Computer Science
- Computers | Programming Languages - General
Dewey: 005.13
Physical Information: 0.49" H x 7" W x 10" (0.90 lbs) 219 pages
 
Descriptions, Reviews, Etc.
Publisher Description:
Discover the essential building blocks of the most common forms of deep belief networks. At each step this book provides intuitive motivation, a summary of the most important equations relevant to the topic, and concludes with highly commented code for threaded computation on modern CPUs as well as massive parallel processing on computers with CUDA-capable video display cards.
The first of three in a series on C++ and CUDA C deep learning and belief nets, Deep Belief Nets in C++ and CUDA C: Volume 1 shows you how the structure of these elegant models is much closer to that of human brains than traditional neural networks; they have a thought process that is capable of learning abstract concepts built from simpler primitives. As such, you'll see that a typical deep belief net can learn to recognize complex patterns by optimizing millions of parameters, yet this model can still be resistant to overfitting.
All the routines and algorithms presented in the book are available in the code download, which also contains some libraries of related routines.

What You Will Learn

  • Employ deep learning using C++ and CUDA C
  • Work with supervised feedforward networks
  • Implement restricted Boltzmann machines
  • Use generative samplings
  • Discover why these are important

Who This Book Is For
Those who have at least a basic knowledge of neural networks and some prior programming experience, although some C++ and CUDA C is recommended.