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Fuzzy R&D portfolio selection of interdependent projects

机译:相互依赖项目的模糊研发项目组合选择

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摘要

Global competition of markets has forced firms to invest in targeted R&D projects so that resources can be focused on successful outcomes. A number of options are encountered to select the most appropriate projects in an R&D project portfolio selection problem. The selection is complicated by many factors, such as uncertainty, interdependences between projects, risk and long lead time, that are difficult to measure. Our main concern is how to deal with the uncertainty and interdependences in project portfolio selection when evaluating or estimating future cash flows. This paper presents a fuzzy multi-objective programming approach to facilitate decision making in the selection of R&D projects. Here, we present a fuzzy tri-objective R&D portfolio selection problem which maximizes the outcome and minimizes the cost and risk involved in the problem under the constraints on resources, budget, interdependences, outcome, projects occurring only once, and discuss how our methodology can be used to make decision support tools for optimal R&D project selection in a corporate environment. A case study is provided to illustrate the proposed method where the solution is done by genetic algorithm (GA) as well as by multiple objective genetic algorithm (MOGA).
机译:全球市场竞争迫使企业投资于有针对性的研发项目,以便将资源集中在成功的成果上。在研发项目组合选择问题中,遇到了许多选择最合适项目的选择。选择过程因许多因素而变得复杂,例如不确定性,项目之间的相互依赖性,风险和较长的交付时间,这些因素难以衡量。我们主要关心的是在评估或估计未来现金流量时如何处理项目组合选择中的不确定性和相互依赖性。本文提出了一种模糊的多目标规划方法,以促进研发项目选择中的决策。在这里,我们提出了一个模糊的三目标R&D投资组合选择问题,该问题在资源,预算,相互依存,结果,项目仅发生一次的约束下最大化了结果,并将问题中涉及的成本和风险最小化,并讨论了我们的方法如何用于为企业环境中的最佳R&D项目选择提供决策支持工具。提供了一个案例研究来说明所提出的方法,其中解决方案是通过遗传算法(GA)以及多目标遗传算法(MOGA)完成的。

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