September 2026
Intermediate to advanced
431 pages
5h 58m
English

https://packt.link/EarlyAccessCommunity
Before building a reliable forecast, you must first learn to diagnose your data. The defining characteristic of a time series is temporal dependence: the value of an observation today is often a function of its value yesterday. We've discussed in Chapter 1 that many standard machine learning models are built on the assumption that data points are independent. Applying them to time series often leads to failure because this core assumption is fundamentally broken; shuffling the rows of a time series destroys the very patterns ...
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