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A dimensionality reduction approach for many-objective Markov Decision Processes: Application to a water reservoir operation problem

机译:多目标马尔可夫决策过程的降维方法:在水库运行问题中的应用

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摘要

The operation of complex environmental systems usually accounts for multiple, conflicting objectives, whose presence imposes to explicitly consider the preference structure of the parties involved. Multi-objective Markov Decision Processes are a useful mathematical framework for the resolution of such sequential, decision-making problems. However, the computational requirements of the available optimization techniques limit their application to problems involving few objectives. In real-world applications it is therefore common practice to select few, representative objectives with respect to which the problem is solved. This paper proposes a dimensionality reduction approach, based on the Non-negative Principal Component Analysis (NPCA), to aggregate the original objectives into a reduced number of principal components, with respect to which the optimization problem is solved. The approach is evaluated on the daily operation of a multi-purpose water reservoir (Tono Dam, Japan) with 10 operating objectives, and compared against a 5-objectives formulation of the same problem. Results show that the NPCA-based approach provides a better representation of the Pareto front, especially in terms of consistency and solution diversity.
机译:复杂环境系统的运行通常会导致多个相互冲突的目标,而这些目标的存在意味着必须明确考虑有关各方的偏好结构。多目标马尔可夫决策过程是解决此类顺序决策问题的有用数学框架。但是,可用的优化技术的计算要求将它们的应用限制在涉及很少目标的问题上。因此,在实际应用中,通常的做法是选择很少有代表性的目标来解决问题。本文提出了一种基于非负主成分分析(NPCA)的降维方法,将原始目标汇总为减少数量的主成分,从而解决了优化问题。该方法是针对具有10个操作目标的多用途水库(日本Tono大坝)的日常运行进行评估的,并与相同问题的5个目标的制定方法进行了比较。结果表明,基于NPCA的方法可以更好地表示Pareto前沿,尤其是在一致性和解决方案多样性方面。

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