Supply chain forecasting: Theory, practice, their gap and the future

被引:166
作者
Syntetos, Aris A. [1 ]
Babai, Zied [2 ]
Boylan, John E. [3 ]
Kolassa, Stephan [4 ]
Nikolopoulos, Konstantinos [5 ]
机构
[1] Cardiff Univ, Cardiff Business Sch, Logist & Operat Management, Cardiff CF10 3EU, S Glam, Wales
[2] Kedge Business Sch, Operat & Supply Chain Management, 680 Cours Liberat, F-33405 Talence, France
[3] Univ Lancaster, Sch Management, Dept Management Sci, Lancaster LA1 4YX, England
[4] SAP Switzerland AG, Prod & Innovat Suite Engn Consumer Ind PI SE CI, Bahnstr 1, CH-8274 Tagerwilen, Switzerland
[5] Bangor Univ, Bangor Business Sch, Coll Rd, Bangor LL57 2DG, Gwynedd, Wales
关键词
Supply chain forecasting; Forecasting software; Forecasting empirical research; Literature review; STOCK CONTROL PERFORMANCE; SKU-LEVEL FORECASTS; INTERMITTENT DEMAND; TIME-SERIES; TOP-DOWN; TEMPORAL AGGREGATION; SALES FORECASTS; SPARE PARTS; JUDGMENTAL REVISION; MANAGEMENT JUDGMENT;
D O I
10.1016/j.ejor.2015.11.010
中图分类号
C93 [管理学];
学科分类号
12 ; 1201 ; 1202 ; 120202 ;
摘要
Supply Chain Forecasting (SCF) goes beyond the operational task of extrapolating demand requirements at one echelon. It involves complex issues such as supply chain coordination and sharing of information between multiple stakeholders. Academic research in SCF has tended to neglect some issues that are important in practice. In areas of practical relevance, sound theoretical developments have rarely been translated into operational solutions or integrated in state-of-the-art decision support systems. Furthermore, many experience driven heuristics are increasingly used in everyday business practices. These heuristics are not supported by substantive scientific evidence; however, they are sometimes very hard to outperform. This can be attributed to the robustness of these simple and practical solutions such as aggregation approaches for example (across time, customers and products). This paper provides a comprehensive review of the literature and aims at bridging the gap between theory and practice in the existing knowledge base in SCF. We highlight the most promising approaches and suggest their integration in forecasting support systems. We discuss the current challenges both from a research and practitioner perspective and provide a research and application agenda for further work in this area. Finally, we make a contribution in the methodology underlying the preparation of review articles by means of involving the forecasting community in the process of deciding both the content and structure of this paper. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:1 / 26
页数:26
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