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Improving the performance of artificial immune system in estimation problems with normalization technique: A case study of USA, Japan and France electricity consumption

机译:用归一化技术提高人工免疫系统在估计问题中的性能:以美国,日本和法国的用电量为例

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This paper presents an artificial immune system (AIS) for electricity consumption estimation as a common problem in estimation domain. We study the impact of data normalization on artificial immune system (AIS) performance and two hundred AIS are constructed for this. Also, fifty AIS have been constructed and tested in order to finding best AIS for electricity consumption estimation in each case. Another unique feature of this study is the utilization of AIS in estimation domain and especially in electricity consumption estimation as the first time. Two standard inputs are used in order to training and testing developed AIS. The mentioned input parameters are gross domestic product (GDP) and population (POP). All of trained AIS are then compared with respect to mean absolute percentage error (MAPE). To meet the best performance of the intelligent based approaches, data are normalized. To show the applicability and superiority of the AIS, actual electricity consumption in USA, Japan and France from 1980 to 2007 is considered.
机译:本文提出了一种用于估计耗电量的人工免疫系统(AIS),它是估计领域中的常见问题。我们研究数据标准化对人工免疫系统(AIS)性能的影响,并为此构建了200个AIS。另外,已经构造并测试了五十个AIS,以便在每种情况下找到用于功耗估算的最佳AIS。这项研究的另一个独特之处是AIS在估计领域中的应用,尤其是在首次用电量估计中。为了培训和测试已开发的AIS,使用了两个标准输入。提到的输入参数是国内生产总值(GDP)和人口(POP)。然后将所有受过训练的AIS相对于平均绝对百分比误差(MAPE)进行比较。为了满足基于智能方法的最佳性能,对数据进行了标准化。为了显示AIS的适用性和优越性,我们考虑了1980年至2007年美国,日本和法国的实际用电量。

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