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Application of Honey Bee Mating Optimization algorithm to load profile clustering

机译:蜜蜂匹配优化算法在负荷曲线聚类中的应用

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A broad range of intelligent metering solutions in the form of Automated Meter Reading (AMR) or Advanced Metering Infrastructure (AMI) are used today in electrical networks to meet the challenges posed by the development of electricity markets. In parallel, Load Profiling (LP-ing) techniques based on intelligent software solutions, can be used to support market access of small consumers who are not equipped with digital meters. This paper proposes a new approach to the LP clustering problem based on the Honey-Bee Mating Optimization (HBMO) algorithm. The results show a good behavior of the proposed algorithm in terms of robustness and stability with respect to the structure of the database. The proposed approach requires fewer parameters to be calibrated, in comparison with other alternative methods.
机译:如今,电气网络中采用了自动抄表(AMR)或高级计量基础架构(AMI)形式的各种智能计量解决方案,以应对电力市场发展带来的挑战。同时,基于智能软件解决方案的负载剖析(LP-ing)技术可用于支持未配备数字电表的小型消费者的市场准入。本文提出了一种基于Honey-Bee交配优化(HBMO)算法的LP聚类问题的新方法。结果表明,相对于数据库结构,该算法在鲁棒性和稳定性方面表现良好。与其他替代方法相比,所提出的方法需要校准的参数更少。

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