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Solving Level Scheduling in Mixed Model Assembly Line by Simulated Annealing Method

机译:模拟退火法求解混合模型装配线的水平调度

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This paper presents an application of the simulated annealing algorithm to solve level schedules in mixed model assembly line. Solving production sequences with both number of setups and material usage rates to the minimum rate will optimize the level schedule. Miltenburg algorithm (1989) is first used to get seed sequence to optimize further. For this the utility time of the line and setup time requirement on each station is considered. This seed sequence is optimized by simulated annealing. This investigation helps to understand the importance of utility in the assembly line. Up to 15 product sequences are taken and constructed by using randomizing method and find the objective function value for this. For a sequence optimization, a meta-heuristic seems much more promising to guide the search into feasible regions of the solution space. Simulated annealing is a stochastic local search meta-heuristic, which bases the acceptance of a modified neighboring solution on a probabilistic scheme inspired by thermal processes for obtaining low-energy states in heat baths. Experimental results show that the simulated annealing approach is favorable and competitive compared to Miltenburg's constructive algorithm for the problems set considered. It is proposed to found 16,985 solutions, the time taken for computation is 23.47 to 130.35, and the simulated annealing improves 49.33% than Miltenberg.
机译:本文提出了一种模拟退火算法在混合模型装配线中求解水平进度表的应用。用最小数量的设置数量和材料使用率来解决生产顺序将优化水平进度表。首先使用Miltenburg算法(1989)获得种子序列,以进行进一步优化。为此,要考虑线路的使用时间和每个站点上的建立时间要求。通过模拟退火优化了该种子序列。该调查有助于了解装配线中实用程序的重要性。使用随机化方法最多可获取和构建15个乘积序列,并为此找到目标函数值。对于序列优化,元启发式方法似乎更有希望将搜索引导到解空间的可行区域中。模拟退火是一种随机的局部搜索元启发式算法,它以一种受热过程启发的概率方案为基础,接受一种经过改进的邻域解,以在热浴中获得低能态。实验结果表明,与Miltenburg的构造算法相比,模拟退火方法在考虑的问题集方面具有优势和竞争力。建议找到16,985个解,计算时间为23.47至130.35,模拟退火比Miltenberg改进49.33%。

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