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Hybrid multiple attribute group decision-making for power system restoration

机译:电力系统恢复的混合多属性群决策

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摘要

Due to deregulated power industry, distributed power generation, aging infrastructure and many other factors, the modern society is exposed to higher blackout risks. Decision-making optimization is indispensable for ensuring fast and secure power supply restoration to end users. As an important stage of power system restoration, backbone-network reconfiguration is necessary to re-establish the skeleton network and restore loads. Backbone-network reconfiguration after a large-scale outage is influenced by many factors about system safety and restoration speed. In order to evaluate candidate restoration schemes, multiple types of attributes including crisp data, fuzzy numbers, interval numbers and linguistic terms are employed. An extended VIKOR method is proposed to provide compromise solutions considering hybrid attributes. The method can reflect the vagueness and uncertainties in practical restoration problems, and avoid too much fuzzification. Different forms of preference relations and maximum deviation model are integrated by the minimum relative entropy to determine combined weights of attributes. Sensitivity analysis on the weights provides efficient guidelines for decision makers. Finally, an actual power system demonstrates the basic features of the developed method. It is more reasonable and creditable to consider multiple types of information and unsatisfactory attributes in decision-making. (C) 2015 Elsevier Ltd. All rights reserved.
机译:由于电力行业管制放松,分布式发电,基础设施老化以及许多其他因素,现代社会面临更高的停电风险。决策优化对于确保快速,安全地为最终用户恢复电源必不可少。作为电力系统恢复的重要阶段,骨干网的重新配置对于重建骨干网络和恢复负载非常必要。大规模中断后的骨干网重新配置受到有关系统安全性和恢复速度的许多因素的影响。为了评估候选恢复方案,采用了多种类型的属性,包括明晰数据,模糊数,区间数和语言术语。提出了一种扩展的VIKOR方法来提供考虑混合属性的折衷解决方案。该方法可以反映实际修复问题中的模糊性和不确定性,并避免过多的模糊化。最小相对熵整合了不同形式的偏好关系和最大偏差模型,以确定属性的组合权重。权重的敏感性分析为决策者提供了有效的指导。最后,实际的电源系统演示了所开发方法的基本特征。在决策中考虑多种类型的信息和不令人满意的属性是更加合理和可信的。 (C)2015 Elsevier Ltd.保留所有权利。

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