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Neural Networks with R

You're reading from   Neural Networks with R Build smart systems by implementing popular deep learning models in R

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Product type Paperback
Published in Sep 2017
Publisher Packt
ISBN-13 9781788397872
Length 270 pages
Edition 1st Edition
Languages
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Authors (2):
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Balaji Venkateswaran Balaji Venkateswaran
Author Profile Icon Balaji Venkateswaran
Balaji Venkateswaran
Giuseppe Ciaburro Giuseppe Ciaburro
Author Profile Icon Giuseppe Ciaburro
Giuseppe Ciaburro
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Toc

Table of Contents (8) Chapters Close

Preface 1. Neural Network and Artificial Intelligence Concepts 2. Learning Process in Neural Networks FREE CHAPTER 3. Deep Learning Using Multilayer Neural Networks 4. Perceptron Neural Network Modeling – Basic Models 5. Training and Visualizing a Neural Network in R 6. Recurrent and Convolutional Neural Networks 7. Use Cases of Neural Networks – Advanced Topics

Recurrent and Convolutional Neural Networks

Until now, we have been studying feed-forward networks, where the data moves in one direction and there is no interconnection of nodes in each layer. In the presence of basic hypotheses that interact with some problems, the intrinsic unidirectional structure of feed-forward networks is strongly limiting. However, it is possible to start from it and create networks in which the results of computing one unit affect the computational process of the other. It is evident that algorithms that manage the dynamics of these networks must meet new convergence criteria.

In this chapter, we will introduce Recurrent Neural Networks (RNN), which are networks with cyclic data flows. We will also see Convolutional Neural Networks (CNN), which are standardized neural networks mainly used for image recognition. For both of these types of networks, we...

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