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Hands-On Time Series Analysis with R

You're reading from   Hands-On Time Series Analysis with R Perform time series analysis and forecasting using R

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Product type Paperback
Published in May 2019
Publisher Packt
ISBN-13 9781788629157
Length 448 pages
Edition 1st Edition
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Author (1):
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Rami Krispin Rami Krispin
Author Profile Icon Rami Krispin
Rami Krispin
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Table of Contents (14) Chapters Close

Preface 1. Introduction to Time Series Analysis and R 2. Working with Date and Time Objects FREE CHAPTER 3. The Time Series Object 4. Working with zoo and xts Objects 5. Decomposition of Time Series Data 6. Seasonality Analysis 7. Correlation Analysis 8. Forecasting Strategies 9. Forecasting with Linear Regression 10. Forecasting with Exponential Smoothing Models 11. Forecasting with ARIMA Models 12. Forecasting with Machine Learning Models 13. Other Books You May Enjoy

Creating a date or time index

So far, our focus in this chapter was mainly on the attributes of the date and time classes. Let's now connect the dots and see some useful applications of time series data. As introduced in Chapter 1, Introduction to Time Series Analysis and R, the main characteristic of time series data is its time index (or timestamp), an equally spaced time interval. The base package provides two pairs of functions, seq.Date and seq.POSIXt, to create a time index vector with Date or POSIX objects respectively. The main difference between the two functions (besides the class of the output) is the units of the time interval. It will make sense to use the seq.Date function to generate a time sequence with daily frequency or lower (for example, weekly, monthly, and so on) and as.POSIXt in other instances (for higher frequencies than daily, such as hourly, half...

You have been reading a chapter from
Hands-On Time Series Analysis with R
Published in: May 2019
Publisher: Packt
ISBN-13: 9781788629157
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