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Deep Learning with TensorFlow

You're reading from   Deep Learning with TensorFlow Explore neural networks with Python

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Product type Paperback
Published in Apr 2017
Publisher Packt
ISBN-13 9781786469786
Length 320 pages
Edition 1st Edition
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Authors (4):
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 Zaccone Zaccone
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Zaccone
 Milo Milo
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Milo
 Karim Karim
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Karim
 Menshawy Menshawy
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Menshawy
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Table of Contents (17) Chapters Close

Title Page
Credits
About the Authors
About the Reviewers
www.PacktPub.com
Customer Feedback
Preface
1. Getting Started with Deep Learning FREE CHAPTER 2. First Look at TensorFlow 3. Using TensorFlow on a Feed-Forward Neural Network 4. TensorFlow on a Convolutional Neural Network 5. Optimizing TensorFlow Autoencoders 6. Recurrent Neural Networks 7. GPU Computing 8. Advanced TensorFlow Programming 9. Advanced Multimedia Programming with TensorFlow 10. Reinforcement Learning

TensorFlow and Keras


In this section we are going to address a very important feature for all data scientists and machine learning enthusiasts which is the integration of TensorFlow and Keras. Having this feature on board, you will be able to build a very complex deep learning systems with very few lines of code.

Figure 5: TensorFlow and Keras Integration (Source: https://blog.keras.io/img/keras-tensorflow-logo.jpg)

What is Keras?

Keras is an API that makes using and building deep learning models easier and faster. So it's a deep learning toolbox that's all about:

  • Ease of use
  • Reducing complexity
  • Reducing cognitive load

And by making deep learning easier to use what happens is that you are making it accessible to more people. So the key design concept behind Keras is that to put deep learning into the hands of everyone.

So Keras is more like an API that has several different implementations. There's the Theano implementation which was originally released with Keras and you also have the TensorFlow...

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