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Deep Learning Quick Reference

You're reading from   Deep Learning Quick Reference Useful hacks for training and optimizing deep neural networks with TensorFlow and Keras

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Product type Paperback
Published in Mar 2018
Publisher Packt
ISBN-13 9781788837996
Length 272 pages
Edition 1st Edition
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Author (1):
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Mike Bernico Mike Bernico
Author Profile Icon Mike Bernico
Mike Bernico
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Table of Contents (15) Chapters Close

Preface 1. The Building Blocks of Deep Learning FREE CHAPTER 2. Using Deep Learning to Solve Regression Problems 3. Monitoring Network Training Using TensorBoard 4. Using Deep Learning to Solve Binary Classification Problems 5. Using Keras to Solve Multiclass Classification Problems 6. Hyperparameter Optimization 7. Training a CNN from Scratch 8. Transfer Learning with Pretrained CNNs 9. Training an RNN from scratch 10. Training LSTMs with Word Embeddings from Scratch 11. Training Seq2Seq Models 12. Using Deep Reinforcement Learning 13. Generative Adversarial Networks 14. Other Books You May Enjoy

Summary

Hopefully, this chapter served to refresh your memory on deep neural network architectures and optimization algorithms. Because this is a quick reference we didn't go into much detail and I'd encourage the reader to dig deeper into any material here that might be new or unfamiliar.

We talked about the basics of Keras and TensorFlow and why we chose those frameworks for this book. We also talked about the installation and configuration of CUDA, cuDNN, Keras, and TensorFlow.

Lastly, we covered the Hold-Out validation methodology we will use throughout the remainder of the book and why we prefer it to K-Fold CV for most deep neural network applications.

We will be referring back to this chapter quite a bit as we revisit these topics in the chapters to come. In the next chapter, we will start using Keras to solve regression problems, as a first step into building deep neural networks.

You have been reading a chapter from
Deep Learning Quick Reference
Published in: Mar 2018
Publisher: Packt
ISBN-13: 9781788837996
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