October 2024
Intermediate to advanced
660 pages
18h 51m
English
In the previous chapter, we started looking at machine learning (ML) as a tool to solve the problem of time series forecasting. We also discussed a few techniques, such as time delay embedding and temporal embedding, which cast time series forecasting problems as classical regression problems from the ML paradigm. In this chapter, we’ll look at those techniques in detail and go through them in a practical sense, using the dataset we have worked with throughout this book.
In this chapter, we will cover the following topics:
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