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  4. Review and analysis of artificial intelligence methods for demand forecasting in supply chain management
 
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2022
Journal Article
Title

Review and analysis of artificial intelligence methods for demand forecasting in supply chain management

Abstract
The proper selection of a demand forecasting method is directly linked to the success of supply chain management (SCM). However, today's manufacturing companies are confronted with uncertain and dynamic markets. Consequently, classical statistical methods are not always appropriate for accurate and reliable forecasting. Algorithms of Artificial intelligence (AI) are currently used to improve statistical methods. Existing literature only gives a very general overview of the AI methods used in combination with demand forecasting. This paper provides an analysis of the AI methods published in the last five years (2017-2021). Furthermore, a classification is presented by clustering the AI methods in order to define the trend of the methods applied. Finally, a classification of the different AI methods according to the dimensionality of data, volume of data, and time horizon of the forecast is presented. The goal is to support the selection of the appropriate AI method to optimize demand forecasting.
Author(s)
Mediavilla, Mario Angos
Hochschule Reutlingen
Dietrich, Fabian
Hochschule Reutlingen
Palm, Daniel  
Hochschule Reutlingen  
Journal
Procedia CIRP  
Conference
Conference on Manufacturing Systems 2022  
Open Access
DOI
10.1016/j.procir.2022.05.119
Additional link
Full text
Language
English
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Keyword(s)
  • Analysis

  • Artificial Intelligence

  • Deep Learning

  • Demand Forecasting

  • Machine Learning

  • Review

  • Supply Chain Management

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