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Forecasting Time Series Data with Facebook Prophet

You're reading from  Forecasting Time Series Data with Facebook Prophet

Product type Book
Published in Mar 2021
Publisher Packt
ISBN-13 9781800568532
Pages 270 pages
Edition 1st Edition
Languages
Author (1):
Greg Rafferty Greg Rafferty
Profile icon Greg Rafferty

Table of Contents (18) Chapters

Preface 1. Section 1: Getting Started
2. Chapter 1: The History and Development of Time Series Forecasting 3. Chapter 2: Getting Started with Facebook Prophet 4. Section 2: Seasonality, Tuning, and Advanced Features
5. Chapter 3: Non-Daily Data 6. Chapter 4: Seasonality 7. Chapter 5: Holidays 8. Chapter 6: Growth Modes 9. Chapter 7: Trend Changepoints 10. Chapter 8: Additional Regressors 11. Chapter 9: Outliers and Special Events 12. Chapter 10: Uncertainty Intervals 13. Section 3: Diagnostics and Evaluation
14. Chapter 11: Cross-Validation 15. Chapter 12: Performance Metrics 16. Chapter 13: Productionalizing Prophet 17. Other Books You May Enjoy

Summary

In this chapter, you learned how to use Prophet's performance metrics to extend the usefulness of cross-validation. You learned about the six metrics Prophet has out of the box, namely mean squared error, root mean squared error, mean absolute error, mean absolute percent error, median absolute percent error, and coverage. You learned many of the advantages and disadvantages of these metrics, and situations where you may want to use or avoid any one of them.

Next, you learned how to create Prophet's performance metrics DataFrame and use it to create a plot of your preferred cross-validation metric so as to be able to evaluate the performance of your model on unseen data across a range of forecast horizons. You then used this plot with the World Food Programme's rainfall data to see a situation where Prophet's automatic cut-off date selection is not ideal, and how to create custom cut-off dates.

Finally, you brought all of this together in an exhaustive...

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