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A novel MILP-based objective reduction method for multi-objective optimization: Application to environmental problems

机译:一种新的基于MILP的多目标优化目标减少方法:应用于环境问题

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摘要

Multi-objective optimization has recently emerged as a useful technique in sustainability analysis, as it can assist in the study of optimal trade-off solutions that balance several criteria. The main limitation of multi-objective optimization is that its computational burden grows in size with the number of objectives. This computational barrier is critical in environmental applications in which decision-makers seek to minimize simultaneously several environmental indicators of concern. With the aim to overcome this limitation, this paper introduces a systematic method for reducing the number of objectives in multi-objective optimization with emphasis on environmental problems. The approach presented relies on a novel mixed-integer linear programming formulation that minimizes the error of omitting objectives. We test the capabilities of this technique through two environmental problems of different nature in which we attempt to minimize a set of life cycle assessment impacts. Numerical examples demonstrate that certain environmental metrics tend to behave in a non-conflicting manner, which makes it possible to reduce the dimension of the problem without losing information.
机译:最近,多目标优化已成为可持续性分析中的一种有用技术,因为它可以帮助研究平衡多个标准的最佳折衷解决方案。多目标优化的主要局限性在于其计算负担随着目标数量的增加而增加。这种计算壁垒对于环境应用至关重要,在环境应用中,决策者寻求同时最小化所关注的几个环境指标。为了克服这一局限性,本文介绍了一种减少多目标优化中目标数量的系统方法,重点是解决环境问题。提出的方法依赖于一种新颖的混合整数线性规划公式,该公式可最大程度地减少忽略目标的误差。我们通过两个性质不同的环境问题来测试此技术的功能,在这些问题中,我们试图将一组生命周期评估的影响降到最低。数值示例表明,某些环境指标倾向于以无冲突的方式运行,这使得可以在不丢失信息的情况下减小问题的范围。

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