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Julia Programming Projects

You're reading from   Julia Programming Projects Learn Julia 1.x by building apps for data analysis, visualization, machine learning, and the web

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Product type Paperback
Published in Dec 2018
Publisher Packt
ISBN-13 9781788292740
Length 500 pages
Edition 1st Edition
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Author (1):
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Adrian Salceanu Adrian Salceanu
Author Profile Icon Adrian Salceanu
Adrian Salceanu
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Table of Contents (13) Chapters Close

Preface 1. Getting Started with Julia Programming FREE CHAPTER 2. Creating Our First Julia App 3. Setting Up the Wiki Game 4. Building the Wiki Game Web Crawler 5. Adding a Web UI for the Wiki Game 6. Implementing Recommender Systems with Julia 7. Machine Learning for Recommender Systems 8. Leveraging Unsupervised Learning Techniques 9. Working with Dates, Times, and Time Series 10. Time Series Forecasting 11. Creating Julia Packages 12. Other Books You May Enjoy

Summary

Time series are a very common type of data—they can be used to represent key business metrics such as financial prices, resource usage (energy, water, raw materials, and so on), weather patterns, or macroeconomic trends—and the list could go on and on. The particularity of time series is that the data has to be collected at regular intervals, and the key aspect of time series analysis is exploring ways that allow us to understand past values so that we can predict future ones.

One powerful approach is to decompose a time series into a combination of trend, cycle, seasonality, and irregular (also called error or noise). We learned how to do this in this chapter while we analysed the EU's unemployment data. We started by learning to compute the trend component by means of moving averages. Then, we applied multiplicative series decomposition formulas to...

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