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Risk assessment modeling for knowledge based and startup projects based on feasibility studies: A Bayesian network approach

机译:基于可行性研究的知识和启动项目风险评估建模:贝叶斯网络方法

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The start of any business requires investment. The risks involved in this pathway are one of the biggest barriers in each investment. Feasibility studies are one of the most common methods in analyzing an investment plan, but this method does not respond to the risk value of any plan. Therefore the present study aims to calculate the risk of a project through a feasibility study. To this end, Bayesian networks have attracted much attention as a powerful method for modeling decision making under uncertainty conditions in different domains. This paper presents a Bayesian network modeling framework that obtains the project risk by calculating uncertainty in net present value of projects. This model provides a powerful method for analyzing risk scenarios and their impact on the project success. This model can be used as a basis for assessing the risks of innovative projects whose feasibility study has been performed. (C) 2021 Elsevier B.V. All rights reserved.
机译:任何业务的开始都需要投资。 该途径所涉及的风险是每笔投资中最大的障碍之一。 可行性研究是分析投资计划中最常见的方法之一,但这种方法没有响应任何计划的风险价值。 因此,本研究旨在通过可行性研究计算项目的风险。 为此,贝叶斯网络引起了许多关注,以强大的方法在不同领域的不确定性条件下建模决策。 本文介绍了一个贝叶斯网络建模框架,通过计算项目的净目前的不确定性来获得项目风险。 该模型提供了一种强大的方法,用于分析风险场景及其对项目成功的影响。 该模型可作为评估可行性研究已经进行的创新项目风险的基础。 (c)2021 elestvier b.v.保留所有权利。

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