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This article proposes two dual‐ascent algorithms and uses each in combination with a primal drop heuristic embedded within a branch and bound framework to solve the uncapacitated production assembly distribution system (i.e., supply chain) design problem, which is formulated as a mixed integer program. Computational results indicate that one approach, which combines primal drop and dual‐ascent heuristics, can solve instances within reasonable time and prescribes solutions with gaps between the primal and dual solution values that are less than 0.15%, an efficacy suiting it for actual large‐scale applications. © 2012 Wiley Periodicals, Inc. Naval Research Logistics, 2013  相似文献   
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Throughout the Cold War Sweden pursued a declared policy of non-alignment. Sweden nevertheless established security links with a number of Western powers, first of all Britain and the US. The most extensive links were developed in two areas – military technology and intelligence. Intelligence liaison was of crucial importance for the security of non-aligned Sweden, but also significant for the major Western powers in filling gaps in intelligence collection. But intelligence liaison also served as an instrument in a closed policy arena where Sweden could receive or pay back favours, according to a pattern established already during World War II. However, intelligence liaison contained policy dilemmas, some of a more general nature, some specific for a country with an overt policy of non-alignment.  相似文献   
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The kitting problem in multiechelon assembly systems is to allocate on-hand stock and anticipated future deliveries to kits so that cost is minimized. This article structures the kitting problem and describes several preprocessing methods that are effective in refining the formulation. The model is resolved using an optimizing approach based on Lagrangian relaxation, which yields a separable problem that decomposes into a subproblem for each job. The resulting subproblems are resolved using a specialized dynamic programming algorithm, and computational efficiency is enhanced by dominance properties devised for that purpose. The Lagrangian problem is resolved effectively using subgradient optimization and a specialized branching method incorporated in the branch-and-bound procedure. Computational experience demonstrates that the specialized approach outperforms the general-purpose optimizer OSL. The new solution approach facilitates time-managed flow control, prescribing kitting decisions that promote cost-effective performance to schedule. © 1994 John Wiley & Sons. Inc.  相似文献   
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