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MULTI-STAGE STOCHASTIC MODELS FOR PRODUCTION PLANNING OF A FURNITURE MANUFACTURING COMPANY UNDER UNCERTAINTY

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JANUARY-DECEMBER 2020   -  Volume: 8 -  Pages: [13 p.]

DOI:

https://doi.org/10.6036/MN9702

Authors:

JOSE EMMANUEL GOMEZ ROCHA -
HECTOR RIVERA GOMEZ
-
EVA SELENE HERNANDEZ GRESS
- ANTONIO OSWALDO ORTEGA REYES

Disciplines:

  • Organization and management of enterprises (ORGANIZACIÓN DE LA PRODUCCIÓN )

Downloads:   59

How to cite this paper:  
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Received Date :   28 February 2020

Reviewing Date :   3 March 2020

Accepted Date :   13 May 2020


Key words:
Plan agregado de producción, optimización estocástica multi-etapas, árbol de escenarios, Aggregate production planning, multi-stage stochastic optimization, scenario tree.
Article type:
ARTICULO DE INVESTIGACION / RESEARCH ARTICLE
Section:
RESEARCH ARTICLES

ABSTRACT:
In this article, two multi-stage stochastic linear programming models are developed where the uncertainty of the random variable is modeled using a continuous probability distribution or a discrete probability distribution. The developed models are applied to an aggregate production plan for a furniture manufacturing company located in the state of Hidalgo, Mexico, which has important customers such as chain stores with presence throughout the country. Production capacity is defined as the random variable of the model. Uncertainty is modeled through a scenario tree in a multi-stage environment. The main purpose of this research is to determine a feasible solution to the aggregate production plan in a reasonable computational time. The Lingo software was used to find a solution of the model, using the Branch and Bound solver (B-and-B). Furthermore the two developed models were compared in terms of accuracy and computational time. The study is complemented with an extensive sensitivity analysis, where it is assessed the effect of several costs on the optimal solution. Besides, the impact of the service level constraint on the decision variables is analyzed.

Keywords: Aggregate production planning, multi-stage stochastic optimization, scenario tree.

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