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A probabilistic multi-criteria decision making technique for conceptual and preliminary aerospace systems design.

机译:一种用于概念和初步航空系统设计的概率多准则决策技术。

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摘要

It has always been the intention of systems engineering to invent or produce the best product possible. Many design techniques have been introduced over the course of decades that try to fulfill this intention. Unfortunately, no technique has succeeded in combining multi-criteria decision making with probabilistic design. The design technique developed in this thesis, the Joint Probabilistic Decision Making (JPDM) technique, successfully overcomes this deficiency by generating a multivariate probability distribution that serves in conjunction with a criterion value range of interest as a universally applicable objective function for multi-criteria optimization and product selection. This new objective function constitutes a meaningful Xnetric, called Probability of Success (POS), that allows the customer or designer to make a decision based on the chance of satisfying the customer's goals. In order to incorporate a joint probabilistic formulation into the systems design process, two algorithms are created that allow for an easy implementation into a numerical design framework: the (multivariate) Empirical Distribution Function and the Joint Probability Model. The Empirical Distribution Function estimates the probability that an event occurred by counting how many times it occurred in a given sample. The Joint Probability Model on the other hand is an analytical parametric model for the multivariate joint probability. It is comprised of the product of the univariate criterion distributions, generated by the traditional probabilistic design process, multiplied with a correlation function that is based on available correlation information between pairs of random variables.; JPDM is an excellent tool for multi-objective optimization and product selection, because of its ability to transform disparate objectives into a single figure of merit, the likelihood of successfully meeting all goals or POS. The advantage of JPDM over other multi-criteria decision making techniques is that POS constitutes a single optimizable function or metric that enables a comparison of all alternative solutions on an equal basis. Hence, POS allows for the use of any standard single-objective optimization technique available and simplifies a complex multi-criteria selection problem into a simple ordering problem, where the solution with the highest POS is best. By distinguishing between controllable and uncontrollable variables in the design process, JPDM can account for the uncertain values of the uncontrollable variables that are inherent to the design problem, while facilitating an easy adjustment of the controllable ones to achieve the highest possible POS. Finally, JPDM's superiority over current multi-criteria decision making techniques is demonstrated with an optimization of a supersonic transport concept and ten contrived equations as well as a product selection example, determining an airline's best choice among Boeing's B-747, B-777, Airbus' A340, and a Supersonic Transport. The optimization examples demonstrate JPDM's ability to produce a better solution with a higher POS than an Overall Evaluation Criterion or Goal Programming approach. Similarly, the product selection example demonstrates JPDM's ability to produce a better solution with a higher POS and different ranking than the Overall Evaluation Criterion or Technique for Order Preferences by Similarity to the Ideal Solution (TOPSIS) approach.
机译:系统工程一直是发明或生产可能的最佳产品的意图。在过去的几十年中,已经引入了许多设计技术来试图达到这一目的。不幸的是,没有任何一种技术能够成功地将多准则决策与概率设计相结合。本文中开发的设计技术,即联合概率决策(JPDM)技术,通过生成与概率标准范围结合用作多准则优化的通用目标函数的多元概率分布,成功克服了这一缺陷。和产品选择。这个新的目标函数构成了一个有意义的Xnetric,称为成功概率( POS ),它使客户或设计人员可以根据满足客户目标的机会来做出决策。为了将联合概率公式合并到系统设计过程中,创建了两种算法,可以轻松实现数值设计框架:(多元)经验分布函数和联合概率模型。经验分布函数通过计算事件在给定样本中发生的次数来估计事件发生的概率。另一方面,联合概率模型是多元联合概率的解析参数模型。它由传统概率设计过程生成的单变量标准分布的乘积乘以基于随机变量对之间的可用相关性信息的相关性函数组成。 JPDM是用于多目标优化和产品选择的出色工具,因为它能够将不同的目标转化为一个优点,成功实现所有目标或 POS 的可能性。 JPDM相对于其他多准则决策技术的优势在于, POS 构成了一个单一的可优化函数或度量,可以在相等的基础上比较所有替代解决方案。因此, POS 允许使用任何可用的标准单目标优化技术,并将复杂的多条件选择问题简化为简单的排序问题,其中,解决方案具有最高的 POS 最好。通过在设计过程中区分可控变量和不可控变量,JPDM可以解决设计问题固有的不可控变量的不确定值,同时便于对可控变量进行轻松调整,以实现最高的 POS < /斜体>。最后,通过优化超音速运输概念,十个人为公式以及产品选择示例,证明了JPDM在当前多标准决策技术上的优越性,从而确定了航空公司在波音B-747,B-777,空客中的最佳选择A340和超音速运输机。优化示例证明了JPDM能够以比整体评估标准或目标规划方法更高的 POS 产生更好的解决方案。类似地,产品选择示例展示了JPDM能够通过与理想解决方案(TOPSIS)方法相似的方法,以更高的 POS 和不同的排名来生成更好的解决方案,该解决方案的总体评价标准或订单偏好技术。

著录项

  • 作者

    Bandte, Oliver.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 220 p.
  • 总页数 220
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;
  • 关键词

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