利用模糊逻辑和差分演化对静态负荷模型进行调整

W. A. Gaspar, E. D. de Oliveira, P. Garcia, M. B. do Amaral
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引用次数: 3

摘要

本文讨论了混合系统在计算智能领域的应用,以改进用于确定电力系统(EPS)静态负载模型参数的测量数据集。目的是减少测量数据集中观察到的随机负载聚集和分解对研究系统产生的自然波动的影响。具体来说,采用模糊逻辑系统对现场获得的测量数据进行滤波处理。同样重要的是要注意,所使用的方法使用称为差分进化的元启发式来调整模糊语言变量的隶属函数。因此,可以得到ZIP和指数模型的参数,其平均误差低于原始测量数据集获得的参数。该提案的验证使用了在巴西米纳斯吉拉斯州的CEMIG公用事业变电站所采取的措施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Static load model adjustment using fuzzy logic and differential evolution
This paper discusses the use of a hybrid system in the field of Computational Intelligence in order to refine the measurement dataset used for determination of the parameters for static load models in Electric Power Systems (EPS). The objective is reducing the effects of natural fluctuation observed in measurement dataset resulting from random loading aggregation and disaggregation on the system under study. Specifically, it is used a fuzzy logic system for processing the filtering of measurement data obtained in the field. It is also important to note that the used approach makes the adjustment of the membership functions of a fuzzy linguistic variables using a meta heuristic called differential evolution. As a result, it is possible to get parameters both for ZIP and Exponential models with mean errors lower than those obtained with raw measurement dataset. The validation of this proposal uses measures that have been made at a CEMIG utility substation in Minas Gerais state, Brazil.
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