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Scalable modeling and solution of stochastic multiobjective optimization problems

机译:随机多目标优化问题的可扩展建模和解决方案

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摘要

We present a scalable computing framework for the solution stochastic multiobjective optimization problems. The proposed framework uses a nested conditional value-at-risk (nCVaR) metric to find compromise solutions among conflicting random objectives. We prove that the associated nCVaR minimization problem can be cast as a standard stochastic programming problem with expected value (linking) constraints. We also show that these problems can be implemented in a modular and compact manner using PLASMO(a Julia-based structured modeling framework) and can be solved efficiently using PIPS-NLP (a parallel nonlinear solver). We apply the framework to a CHP design study in which we seek to find compromise solutions that trade-off cost, water, and emissions in the face of uncertainty in electricity and water demands.
机译:我们提出了一种解决随机多目标优化问题的可扩展计算框架。所提出的框架使用嵌套的条件风险价值(nCVaR)度量来找到冲突的随机目标之间的折衷解决方案。我们证明了相关的nCVaR最小化问题可以看作是具有期望值(链接)约束的标准随机规划问题。我们还表明,可以使用PLASMO(基于Julia的结构化建模框架)以模块化和紧凑的方式实现这些问题,并且可以使用PIPS-NLP(并行非线性求解器)有效地解决这些问题。我们将该框架应用于热电联产设计研究,在该研究中,我们寻求找到在电力和水需求不确定的情况下权衡成本,水和排放的折衷解决方案。

著录项

  • 来源
    《Computers & Chemical Engineering》 |2017年第6期|185-197|共13页
  • 作者单位

    Department of Chemical and Biological Engineering, University of Wisconsin-Madison, 1415 Engineering, Madison, WI 53706, USA;

    Department of Chemical Engineering, Universidad Michoacana de San Nicolas de Hidalgo, Morelia, Michoacan 58060, Mexico;

    Department of Chemical and Biological Engineering, University of Wisconsin-Madison, 1415 Engineering, Madison, WI 53706, USA;

    Department of Chemical and Biological Engineering, University of Wisconsin-Madison, 1415 Engineering, Madison, WI 53706, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Large scale; Optimization; Stochastic; Multiobjective; CVaR;

    机译:规模大;优化;随机;多目标;变异系数;

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