Data Science for Supply Chain Forecasting
eBook - ePub

Data Science for Supply Chain Forecasting

Nicolas Vandeput

  1. 310 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Data Science for Supply Chain Forecasting

Nicolas Vandeput

Book details
Table of contents
Citations

About This Book

Using data science in order to solve a problem requires a scientific mindset more than coding skills. Data Science for Supply Chain Forecasting, Second Edition contends that a true scientific method which includes experimentation, observation, and constant questioning must be applied to supply chains to achieve excellence in demand forecasting.

This second edition adds more than 45 percent extra content with four new chapters including an introduction to neural networks and the forecast value added framework. Part I focuses on statistical "traditional" models, Part II, on machine learning, and the all-new Part III discusses demand forecasting process management. The various chapters focus on both forecast models and new concepts such as metrics, underfitting, overfitting, outliers, feature optimization, and external demand drivers. The book is replete with do-it-yourself sections with implementations provided in Python (and Excel for the statistical models) to show the readers how to apply these models themselves.

This hands-on book, covering the entire range of forecastingā€”from the basics all the way to leading-edge modelsā€”will benefit supply chain practitioners, forecasters, and analysts looking to go the extra mile with demand forecasting.

Events around the book

Link to a De Gruyter Online Event in which the author Nicolas Vandeput together with Stefan de Kok, supply chain innovator and CEO of Wahupa; Spyros Makridakis, professor at the University of Nicosia and director of the Institute For the Future (IFF); and Edouard Thieuleux, founder of AbcSupplyChain, discuss the general issues and challenges of demand forecasting and provide insights into best practices (process, models) and discussing how data science and machine learning impact those forecasts.
The event will be moderated by Michael Gilliland, marketing manager for SAS forecasting software:
https://youtu.be/1rXjXcabW2s

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Information

Publisher
De Gruyter
Year
2021
ISBN
9783110671209
Edition
1
Subtopic
Operaciones

Table of contents

  1. Title Page
  2. Copyright
  3. Contents
  4. Part Iā€‚Statistical Forecasting
  5. Part IIā€‚Machine Learning
  6. Part IIIā€‚Data-Driven Forecasting Process Management
  7. Subject Index
Citation styles for Data Science for Supply Chain Forecasting

APA 6 Citation

Vandeput, N. (2021). Data Science for Supply Chain Forecasting (1st ed.). De Gruyter. Retrieved from https://www.perlego.com/book/2367839 (Original work published 2021)

Chicago Citation

Vandeput, Nicolas. (2021) 2021. Data Science for Supply Chain Forecasting. 1st ed. De Gruyter. https://www.perlego.com/book/2367839.

Harvard Citation

Vandeput, N. (2021) Data Science for Supply Chain Forecasting. 1st edn. De Gruyter. Available at: https://www.perlego.com/book/2367839 (Accessed: 24 June 2024).

MLA 7 Citation

Vandeput, Nicolas. Data Science for Supply Chain Forecasting. 1st ed. De Gruyter, 2021. Web. 24 June 2024.