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A combined interactive procedure using preference-based evolutionary multiobjective optimization. Application to the efficiency improvement of the auxiliary services of power plants

机译:使用基于偏好的进化多目标优化的组合交互式过程。在发电厂辅助服务效率提高中的应用

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While the auxiliary services required for the operation of power plants are not the main components of the plant, their energy consumption is often significant, and it can be reduced by implementing a series of improvement strategies. However, the cost of implementing these changes can be very high, and has to be evaluated. Indeed, a further economic analysis should be considered in order to maximize the profitability of the investment. In this paper, we propose a multiobjective optimization problem to determine the most suitable strategies to maximize the energy saving, to minimize the economic investment and to maximize the Internal Rate of Return of the investment. Solving this real-life multiobjective optimization problem with a decision maker presents several challenges and difficulties and we have developed a novel interactive procedure which combines three different approaches in order to make use of the main advantages of each method. The idea is to start with the approximation of the Pareto optimal set, in order to gain a global understanding of the trade-offs among the objectives, using evolutionary multiobjective optimization; next step is aiding the decision maker to explore the efficient set and to identify the subset of solutions which fits her/his preferences, for which interactive multiple criteria decision making methodologies are used; and finally we concentrate the search for new solutions into the most interesting part of the efficient set with the help of a preference-based evolutionary algorithm. This allows us to build a flexible scheme that is progressively adapted to the decision maker's reactions until (s)he finds the most preferred solution. The interactive combined procedure proposed is applied in practice for solving the problem of the auxiliary services with a real decision maker, extracting interesting insights about the efficiency improvement of the auxiliary services. With this practical application, we show the usefulness of the interactive procedure proposed, and we highlight the importance of an understandable feedback and an adaptive process. (C) 2015 Elsevier Ltd. All rights reserved.
机译:尽管发电厂运行所需的辅助服务不是发电厂的主要组成部分,但它们的能源消耗通常很可观,可以通过实施一系列改进策略来降低其能耗。但是,实施这些更改的成本可能很高,必须进行评估。实际上,应该考虑进行进一步的经济分析,以使投资的利润最大化。在本文中,我们提出了一个多目标优化问题,以确定最合适的策略来最大程度地节能,最小化经济投资并最大化投资的内部收益率。与决策者一起解决这个现实生活中的多目标优化问题带来了一些挑战和困难,并且我们开发了一种新颖的交互式程序,该程序结合了三种不同的方法,以便利用每种方法的主要优点。这个想法是从帕累托最优集的逼近开始的,以便使用进化多目标优化获得对目标之间权衡取舍的全局理解。下一步是帮助决策者探索有效集并确定适合其偏好的解决方案子集,并为此使用交互式多准则决策方法;最后,借助基于首选项的进化算法,将对新解决方案的搜索集中到效率集的最有趣部分。这使我们能够建立一种灵活的方案,使其逐渐适应决策者的反应,直到找到最可取的解决方案为止。所提出的交互式组合过程在实践中用于与真正的决策者一起解决辅助服务的问题,从而提取了有关辅助服务效率提高的有趣见解。通过此实际应用,我们展示了所提出的交互式程序的有用性,并且强调了可理解的反馈和自适应过程的重要性。 (C)2015 Elsevier Ltd.保留所有权利。

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