Improved tabu search algorithms for storage space allocation in integrated iron and steel plant

Shaohua Li, Lixin Tang
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引用次数: 1

Abstract

The fact that diversified and enormous materials are usually stored in open yards adds extra difficulty to model and solve the storage space allocation problem in material yards of iron and steel plants. This paper presents a nonlinear mathematical model for such a problem with the objective function of minimizing transportation costs and penalty trigged by the difference between materials and develops improved tabu search algorithms to solve it. These algorithms have two diversification strategies: (1) using an iterated local search strategy based on random kick moves as a method to escape from local optima and the neighborhood of descent heuristic in the iterated local search is generated by cyclic exchange moves; (2) directly using a cyclic exchange move to guide the search to a solution outside the neighborhood of a local optimum. The test with 150 random data sets proves that the tabu search with new diversification strategies is a fast and effective near optimal algorithm to solve such a practical industry problem
基于改进禁忌搜索算法的综合钢铁厂存储空间分配
由于露天堆场储存的物料种类繁多,体积庞大,这给建立和解决钢铁厂物料堆场的存储空间分配问题增加了额外的难度。本文建立了以物料差异引起的运输成本和处罚最小为目标函数的非线性数学模型,并提出了改进的禁忌搜索算法来求解该问题。这些算法有两种多样化策略:(1)采用基于随机踢步的迭代局部搜索策略作为逃避局部最优的方法,迭代局部搜索中的下降启发式邻域由循环交换步产生;(2)直接使用循环交换移动来引导搜索到局部最优邻域之外的解。150个随机数据集的测试证明了禁忌搜索新多样化策略是解决这类实际行业问题的一种快速有效的近最优算法
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