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Deep Learning with Theano

You're reading from   Deep Learning with Theano Perform large-scale numerical and scientific computations efficiently

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Product type Paperback
Published in Jul 2017
Publisher Packt
ISBN-13 9781786465825
Length 300 pages
Edition 1st Edition
Tools
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Author (1):
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Christopher Bourez Christopher Bourez
Author Profile Icon Christopher Bourez
Christopher Bourez
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Table of Contents (15) Chapters Close

Preface 1. Theano Basics 2. Classifying Handwritten Digits with a Feedforward Network FREE CHAPTER 3. Encoding Word into Vector 4. Generating Text with a Recurrent Neural Net 5. Analyzing Sentiment with a Bidirectional LSTM 6. Locating with Spatial Transformer Networks 7. Classifying Images with Residual Networks 8. Translating and Explaining with Encoding – decoding Networks 9. Selecting Relevant Inputs or Memories with the Mechanism of Attention 10. Predicting Times Sequences with Advanced RNN 11. Learning from the Environment with Reinforcement 12. Learning Features with Unsupervised Generative Networks 13. Extending Deep Learning with Theano Index

Summary

This chapter concludes our overview of Deep Learning with Theano.

The first set of extensions of Theano, in Python and C for the CPU and GPU, has been exposed here to create new operators for the computation graph.

Conversion of the learned models from one framework to another is not a complicated task. Keras, a high-level library presented many times in this book as an abstraction on top of the Theano engine, offers a simple way to work with Theano and Tensorflow as well as to push the training of models in the Google ML Cloud.

Lastly, all the networks presented in this book are at the base of General Intelligence, which can use these first skills, such as vision or language understanding and generation, to learn a wider range of skills, still from experiences on real-world data or generated data.

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