LEARN HOW TO APPLY THE PRINCIPLES OF MACHINE LEARNING TO TIME SERIES
MODELING WITH THIS INDISPENSABLE RESOURCE
_Machine Learning for Time Series Forecasting with Python_ is an
incisive and straightforward examination of one of the most crucial
elements of decision-making in finance, marketing, education, and
healthcare: time series modeling.
Despite the centrality of time series forecasting, few business
analysts are familiar with the power or utility of applying machine
learning to time series modeling. Author Francesca Lazzeri, a
distinguished machine learning scientist and economist, corrects
that deficiency by providing readers with comprehensive and
approachable explanation and treatment of the application of
machine learning to time series forecasting.
Written for readers who have little to no experience in time
series forecasting or machine learning, the book comprehensively
covers all the topics necessary to:
* Understand time series forecasting concepts, such
as stationarity, horizon, trend, and seasonality
* Prepare time series data for modeling
* Evaluate time series forecasting models’ performance and
accuracy
* Understand when to use neural networks instead of traditional time
series models in time series forecasting
_Machine Learning for Time Series Forecasting with Python _is
full real-world examples, resources and concrete strategies to help
readers explore and transform data and develop usable, practical time
series forecasts.
Perfect for entry-level data scientists, business
analysts, developers, and researchers, this book is an invaluable and
indispensable guide to the fundamental and advanced concepts of
machine learning applied to time series modeling.
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Produktdetaljer
ISBN
9781119682387
Publisert
2020
Utgave
1. utgave
Utgiver
Wiley Professional Development (P&T)
Språk
Product language
Engelsk
Format
Product format
Digital bok
Forfatter