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A novel case adaptation method based on an improved integrated genetic algorithm for power grid wind disaster emergencies

机译:基于改进集成遗传算法的电网风灾应急案例自适应方法

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Case adaptation is a challenging and crucial process of Case-Based Reasoning (CBR) for power grid wind disaster emergencies. The statistical adaptation method is a traditional method that is independent of domain knowledge, is easy to implement, but is not proper for the complex system problem. Therefore, the aim of this paper is to propose a novel case adaptation method to address this problem by integrating the multi-objective genetic algorithm with gray relational analysis, called the grey relational analysis-multi-objective genetic algorithms method (GRAMOGA). Compared with the traditional method, GRAMOGA is performed in terms of corresponding relations between the case similarity and emergency plan, indicating a new idea for case adaptation. To improve adaptation accuracy, this paper improved the multi-objective genetic algorithm by using a selection method based on the fitness function. Furthermore, the frame theory is expanded by combining it with the D/S evidence theory, providing a novel method for case description and retrieval with incomplete information. A practical example from the south of Jiangsu demonstrates that GRAMOGA achieves better adaptation performance for power grid wind disaster emergencies. In addition to the practical applications in case adaptation, GRAMOGA can be used as a novel method for expanding the case base. (C) 2015 Elsevier Ltd. All rights reserved.
机译:案例适应是用于电网风灾紧急情况的基于案例的推理(CBR)的具有挑战性和至关重要的过程。统计自适应方法是一种独立于领域知识的传统方法,易于实现,但不适用于复杂的系统问题。因此,本文的目的是提出一种新的案例自适应方法,通过将多目标遗传算法与灰色关联分析相结合来解决该问题,称为灰色关联分析-多目标遗传算法(GRAMOGA)。与传统方法相比,GRAMOGA在案例相似性和应急计划之间的对应关系上进行,这表明了案例适应的新思路。为了提高自适应精度,本文采用基于适应度函数的选择方法对多目标遗传算法进行了改进。此外,通过将框架理论与D / S证据理论相结合来扩展框架理论,从而提供了一种新颖的案例描述和不完整信息检索方法。苏南地区的一个实际例子表明,GRAMOGA在电网风灾紧急情况下具有更好的适应性能。除了在案例修改中的实际应用之外,GRAMOGA还可以用作扩展案例库的新方法。 (C)2015 Elsevier Ltd.保留所有权利。

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