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Multiobjective evolutionary finance-based scheduling: Individual projects within a portfolio

机译:基于多目标进化财务的计划:投资组合中的各个项目

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Under cash-constrained conditions, the fulfillment of cash demands of the ongoing projects within a contractor's portfolio constitutes a set of conflicting objectives. As the profit values of the individual projects are maximized should their cash demands be fulfilled, the profit values of the individual projects constitute a set of multiple conflicting objectives. A Strength Pareto Evolutionary Algorithm (SPEA) employing a logic-preserving crossover and mutation operators is developed to devise Pareto-optimal finance-based schedules of multiple projects. The Pareto-optimal solutions allow the decision makers select the best solution based on their own preference. The developed SPEA reproduced the same results of an existing GAs-based multi objective technique in the literature. The proposed approach has been developed and implemented on multiple projects of different sizes. The results proved the effectiveness of the SPEA to solve finance-based scheduling problems of multiple projects considering the conflict in their profit realization.
机译:在现金紧张的情况下,满足承包商投资组合中正在进行的项目的现金需求构成了一组相互矛盾的目标。如果要满足其现金需求,则各个项目的利润值将最大化,因此各个项目的利润值构成了一系列相互矛盾的目标。开发了采用保留逻辑的交叉和变异算子的强度帕累托进化算法(SPEA),以设计多个项目的基于帕累托最优财务的进度表。帕累托最优解决方案使决策者可以根据自己的偏好选择最佳解决方案。所开发的SPEA在文献中再现了与现有基于GA的多目标技术相同的结果。拟议的方法已在不同规模的多个项目中开发和实施。结果证明,SPEA解决了多个项目中考虑到其实现利润的冲突而基于财务的计划问题的有效性。

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