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Hands-On Deep Learning with R

You're reading from   Hands-On Deep Learning with R A practical guide to designing, building, and improving neural network models using R

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Product type Paperback
Published in Apr 2020
Publisher Packt
ISBN-13 9781788996839
Length 330 pages
Edition 1st Edition
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Authors (2):
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Rodger Devine Rodger Devine
Author Profile Icon Rodger Devine
Rodger Devine
Michael Pawlus Michael Pawlus
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Michael Pawlus
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Table of Contents (16) Chapters Close

Preface 1. Section 1: Deep Learning Basics
2. Machine Learning Basics FREE CHAPTER 3. Setting Up R for Deep Learning 4. Artificial Neural Networks 5. Section 2: Deep Learning Applications
6. CNNs for Image Recognition 7. Multilayer Perceptron for Signal Detection 8. Neural Collaborative Filtering Using Embeddings 9. Deep Learning for Natural Language Processing 10. Long Short-Term Memory Networks for Stock Forecasting 11. Generative Adversarial Networks for Faces 12. Section 3: Reinforcement Learning
13. Reinforcement Learning for Gaming 14. Deep Q-Learning for Maze Solving 15. Other Books You May Enjoy

Preparing and preprocessing data

When working with time-series data, there are a number of data type formats to choose from and use for conversion. We have already used two of these formats, of which there are three that are most widely used. Let's briefly review these data types before moving on to our deep learning model.

When we wanted to add actual data as an overlay to our ARIMA model plot, we used the ts function to create a time-series data object. For this object, the index values must be integers. In the case of using the autolayer function with the arima plot, a time-series data object is required. This is one of the more simple time-series data types and it will look like a vector in your Environment tab. However, this only works with regular time series.

Another data type is zoo. The zoo data type will work with regular and irregular time series, and...

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