Improvement to an existing multi-level capacitated lot sizing problem considering setup carryover, backlogging, and emission control

被引:1
|
作者
Bin Hasan, Rifat [1 ]
Osman, Hany [1 ]
Azab, Ahmed [1 ]
Baki, Fazle [2 ]
机构
[1] Univ Windsor, Dept Mech Automot & Mat Engn, Prod & Operat Management Res Lab, Fac Engn, 401 Sunset Ave, Windsor, ON N9B 3P4, Canada
[2] Univ Windsor, Odette Sch Business, 401 Sunset Ave, Windsor, ON N9B 3P4, Canada
关键词
Capacitated Lot Sizing; Multi-level capacitated lot-sizing; Emission control; Dantzig-Wolfe decomposition; Artificial Variable; FIX-AND-OPTIMIZE; ALGORITHM; DECOMPOSITION; FRAMEWORK; INVENTORY;
D O I
10.1016/j.mfglet.2023.07.012
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper presents a multi-level, multi-item, multi-period capacitated lot-sizing problem. The lot-sizing problem studies can obtain production quantities, setup decisions and inventory levels in each period fulfilling the demand requirements with limited capacity resources, considering the Bill of Material (BOM) structure while simultaneously minimizing the production, inventory, and machine setup costs. The paper proposes an exact solution to Chowdhury et al. (2018)'s[1] developed model, which considers the backlogging cost, setup carryover & greenhouse gas emission control to its model complexity. The problem contemplates the Dantzig-Wolfe (D.W.) decomposition to decompose the multi-level capacitated problem into a single-item uncapacitated lot-sizing sub-problem. To avoid the infeasibilities of the weighted problem (WP), an artificial variable is introduced, and the Big-M method is employed in the D.W. decomposition to produce an always feasible master problem. In addition, Wagner & Whitin's[ 2] forward recursion algorithm is also incorporated in the solution approach for both end and component items to provide the minimum cost production plan. Introducing artificial variables in the D.W. decomposition method is a novel approach to solving the MLCLSP model. A better performance was achieved regarding reduced computational time (reduced by 50%) and optimality gap (reduced by 97.3%) in comparison to Chowdhury et al. (2018)'s[1] developed model. (c) 2023 The Authors. Published by ELSEVIER Ltd.
引用
收藏
页码:28 / 39
页数:12
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