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Fuzzy resource-constrained project scheduling with multiple routes: A heuristic solution

机译:多路径模糊资源受限项目调度:一种启发式解决方案

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摘要

The resource-constrained project scheduling problem (RCPSP) with multiple routes by considering flexible activities is one of important subjects in project scheduling problems. The ability to select an appropriate route for implementing the flexible activities is a rational reason for indicating more complexity of the problem relative to common RCPSP that attracted the attention of the researchers in the recent decade. On the other hand, due to lack of access to project crisp information, the needs to consider uncertainty concepts in the RCPSP will be significant. Hence, in this paper, a new fuzzy mixed integer nonlinear programming (MINLP) model is presented under uncertain conditions. A hybrid meta-heuristic approach is also proposed to minimize costs of project completion. In this approach, to generate high quality initial solutions, a heuristic algorithm is designed based on distribution rules. Then, to change and assign an appropriate route from available routes for flexible activities, a meta-heuristic algorithm is presented based on binary particle swarm optimization (PSO). Finally, to generate best solution from routes assigned by the binary PSO, a meta-heuristic based on genetic algorithm (GA) is proposed. To appraise the effectiveness of presented model, different test problems are solved by the proposed approach, and comparisons are provided with results obtained by the GA and PSO.
机译:考虑柔性活动的多路径资源受限项目调度问题(RCPSP)是项目调度问题中的重要课题之一。选择合适的路线来实施灵活活动的能力是一个合理的理由,表明相对于普通RCPSP而言,该问题更加复杂,这引起了研究人员近十年来的关注。另一方面,由于无法获得项目的清晰信息,在RCPSP中考虑不确定性概念的需求将非常重要。因此,在不确定条件下,提出了一种新的模糊混合整数非线性规划(MINLP)模型。还提出了一种混合元启发式方法,以最大程度地减少项目完成的成本。在这种方法中,为了生成高质量的初始解,基于分布规则设计了一种启发式算法。然后,为了从可用路由中更改和分配适当的路由以进行灵活的活动,提出了一种基于二进制粒子群优化(PSO)的元启发式算法。最后,为了从二进制PSO分配的路由中生成最佳解决方案,提出了一种基于遗传算法(GA)的元启发式算法。为了评估所提出模型的有效性,所提出的方法解决了不同的测试问题,并与GA和PSO获得的结果进行了比较。

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