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Statistical Learning Tools for Electricity Load Forecasting - (Statistics for Industry, Technology, and Engineering) (Hardcover)

Statistical Learning Tools for Electricity Load Forecasting - (Statistics for Industry, Technology, and Engineering) (Hardcover) - 1 of 1
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Highlights

  • Author(s): Anestis Antoniadis & Jairo Cugliari & Matteo Fasiolo & Yannig Goude & Jean-Michel Poggi
  • 231 Pages
  • Mathematics, Probability & Statistics
  • Series Name: Statistics for Industry, Technology, and Engineering

Description



From the Back Cover



This monograph explores a set of statistical and machine learning tools that can be effectively utilized for applied data analysis in the context of electricity load forecasting. Drawing on their substantial research and experience with forecasting electricity demand in industrial settings, the authors guide readers through several modern forecasting methods and tools from both industrial and applied perspectives - generalized additive models (GAMs), probabilistic GAMs, functional time series and wavelets, random forests, aggregation of experts, and mixed effects models. A collection of case studies based on sizable high-resolution datasets, together with relevant R packages, then illustrate the implementation of these techniques. Five real datasets at three different levels of aggregation (nation-wide, region-wide, or individual) from four different countries (UK, France, Ireland, and the USA) are utilized to study five problems: short-term point-wise forecasting, selection of relevant variables for prediction, construction of prediction bands, peak demand prediction, and use of individual consumer data.

This text is intended for practitioners, researchers, and post-graduate students working on electricity load forecasting; it may also be of interest to applied academics or scientists wanting to learn about cutting-edge forecasting tools for application in other areas. Readers are assumed to be familiar with standard statistical concepts such as random variables, probability density functions, and expected values, and to possess some minimal modeling experience.

Dimensions (Overall): 9.34 Inches (H) x 6.43 Inches (W) x .78 Inches (D)
Weight: 1.11 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 231
Genre: Mathematics
Sub-Genre: Probability & Statistics
Series Title: Statistics for Industry, Technology, and Engineering
Publisher: Birkhauser
Theme: General
Format: Hardcover
Author: Anestis Antoniadis & Jairo Cugliari & Matteo Fasiolo & Yannig Goude & Jean-Michel Poggi
Language: English
Street Date: August 17, 2024
TCIN: 93199541
UPC: 9783031603389
Item Number (DPCI): 247-45-6230
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 0.78 inches length x 6.43 inches width x 9.34 inches height
Estimated ship weight: 1.11 pounds
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