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Deep Learning with R Cookbook

You're reading from   Deep Learning with R Cookbook Over 45 unique recipes to delve into neural network techniques using R 3.5.x

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Product type Paperback
Published in Feb 2020
Publisher Packt
ISBN-13 9781789805673
Length 328 pages
Edition 1st Edition
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Authors (3):
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Swarna Gupta Swarna Gupta
Author Profile Icon Swarna Gupta
Swarna Gupta
Rehan Ali Ansari Rehan Ali Ansari
Author Profile Icon Rehan Ali Ansari
Rehan Ali Ansari
Dipayan Sarkar Dipayan Sarkar
Author Profile Icon Dipayan Sarkar
Dipayan Sarkar
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Table of Contents (11) Chapters Close

Preface 1. Understanding Neural Networks and Deep Neural Networks 2. Working with Convolutional Neural Networks FREE CHAPTER 3. Recurrent Neural Networks in Action 4. Implementing Autoencoders with Keras 5. Deep Generative Models 6. Handling Big Data Using Large-Scale Deep Learning 7. Working with Text and Audio for NLP 8. Deep Learning for Computer Vision 9. Implementing Reinforcement Learning 10. Other Books You May Enjoy

Neural machine translation

Neural machine translation gained popularity when tech giants such as Google came up with this service. However, this concept has been around for years and is considered one of the most challenging tasks that deals with very sophisticated linguistic models. In this recipe, we will implement an end-to-end encoder-decoder long short-term memory (LSTM) model for translating German phrases into English. This encoder-decoder LSTM architecture is the state of the art approach of addressing sequence-to-sequence (Seq2Seq) problems such as language translation, word prediction, and so on, and is widely used in various industrial translation applications.

Sequence prediction is often framed as an architecture that involves forecasting the next value or set of values in a real-valued sequence or predicting a class label for an input sequence. In this...

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