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Time Series Forecasting using Machine Learning

Time Series Forecasting using Machine Learning

von Tsung-wu Ho
Hardcover - 9783031979453
149,79 €
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Beschreibung

This book uses R package, iForecast, to conduct financial economic time series forecasting with machine learning methods, especially the generation of dynamic forecasts out-of-sample. Machine learning methods cover enet, random forecast, gbm, and autoML etc., including binary economic time series. The book explains the problem about the generation of recursive forecasts in machine learning framework, under which, there are no covariates, namely, input (independent) variables. This case is pretty common in real decision environment, for example, the decision-making wants 6-month forecasts in the real future, under which there are no covariates available; therefore, practitioners use recursive or multistep, forecasts. Besides macro-econometric modelling which uses VAR (vector autoregression) to overcome the problem of multivariate regression, this book offers a Machine-Learning VAR routine, which is found to improve the performance of multistep forecasting.

Case Studies with R and iForecast

Details

Verlag Springer International Publishing
Ersterscheinung 31. August 2025
Maße 23.5 cm x 15.5 cm
Gewicht 387 Gramm
Format Hardcover
ISBN-13 9783031979453
Seiten 131

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