Most of the literature published regarding the performance of lot‐sizing algorithms has been in a deterministic environment. The first objective of this article is to propose a way to incorporate fuzzy sets theory into lotsizing algorithms for the case of uncertain demand in a fuzzy master production schedule. Triangular fuzzy numbers are used to represent uncertainty in the master production schedule. It is shown that the fuzzy sets theory approach provides a better representation of fuzzy demand and more information to aid the determination of lot size. The second objective is to evaluate three lot sizing methods:part‐period balancing, Silver‐Meal, and Wagner‐Whitin. The performance of each lot‐sizing algorithm was calculated over nine examples. The results indicate that the part‐period balancing algorithm may be a better overall choice to determine lot sizes.
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1 July 1991
Research Article|
July 01 1991
A Comparative Study of Three Lot‐sizing Methods for the Case of Fuzzy Demand
Y.Y. Lee;
Y.Y. Lee
Kansas State University, USA Professor Lee is from the National Cheng Chi University, Taiwan.
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C.L. Hwang
C.L. Hwang
Kansas State University, USA
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Publisher: Emerald Publishing
Online ISSN: 1758-6593
Print ISSN: 0144-3577
© MCB UP Limited
1991
International Journal of Operations & Production Management (1991) 11 (7): 72–80.
Citation
Lee Y, Kramer B, Hwang C (1991), "A Comparative Study of Three Lot‐sizing Methods for the Case of Fuzzy Demand". International Journal of Operations & Production Management, Vol. 11 No. 7 pp. 72–80, doi: https://doi.org/10.1108/EUM0000000001276
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