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首页> 外文期刊>International journal of mathematics in operational research >A new fuzzy multi-objective multi-mode resource-constrained project scheduling model
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A new fuzzy multi-objective multi-mode resource-constrained project scheduling model

机译:一种新的模糊多目标多模式资源受限项目调度模型

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In this paper, a new model is developed to address the so-called multi-objective multi-mode resource-constrained project scheduling problem under uncertainty conditions in the problem parameters. The two objective functions are minimising the project NPV and the project makespan, which is the first contribution of the current research. The proposed model is much more realistic one in comparison to previously developed model. This approach explicitly considers the risk acceptance level and the optimism of the project managers in the final decision, which are the main contributions of the current research. To show the efficiency of the proposed model in real applications, an efficient metaheuristic method based on memetic algorithm and cuckoo optimisation algorithm is developed to solve this problem, which is in fact, the second contribution of the paper. The algorithm embeds the cuckoo optimisation algorithm as a powerful local search method inside the genetic algorithm to improve its performance. To test the algorithm performance, a number of test problems from PSPLIB library were taken and then the proposed algorithm and the famous NSGA-1I were examined over these problems, separately. The results were compared according to three different criteria. Computational results show that the proposed memetic-cuckoo algorithm is more efficient than the NSGA-II according to three different comparison criteria.
机译:在本文中,开发了一种新模型来解决问题参数中不确定条件下的所谓多目标多模式资源受限项目调度问题。这两个目标功能是使项目净现值和项目工期最小化,这是当前研究的第一项贡献。与以前开发的模型相比,提出的模型更为现实。这种方法在最终决策中明确考虑了风险接受程度和项目经理的乐观情绪,这是当前研究的主要贡献。为了证明该模型在实际应用中的有效性,提出了一种基于模因算法和布谷鸟优化算法的高效元启发式方法来解决该问题,这实际上是本文的第二个贡献。该算法将杜鹃优化算法作为遗传算法内部强大的局部搜索方法进行嵌入,以提高其性能。为了测试算法性能,从PSPLIB库中提取了许多测试问题,然后分别针对这些问题对提出的算法和著名的NSGA-1I进行了检查。根据三个不同的标准比较了结果。计算结果表明,根据三种不同的比较标准,拟议的杜鹃算法比NSGA-II算法更有效。

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