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基于模糊推理系统的多因素电力负荷预测
引用本文:张国江,邱家驹,李继红.基于模糊推理系统的多因素电力负荷预测[J].电力系统自动化,2002,26(5):49-53.
作者姓名:张国江  邱家驹  李继红
作者单位:1. 浙江大学电气工程学院,浙江省杭州市,310027
2. 浙江省电力局,浙江省杭州市,310007
摘    要:在多因素负荷预测的建模中,模糊推理系统是一种较为有效的方法。输入变量选择和输入空间划分是模糊建模的基础,也是难点所在。数据挖掘中的分类思想有助于解决此问题。文中采用分类和回归树(CART)算法对解决这一问题进行了尝试,并构造ANFIS网络进行参数辨识。建模过程几乎完全基于数据进行,不需要人工的过多干预,保证了模型能客观地反映相关变量与负荷值之间的复杂关系。用该方法与普通BP算法分别对浙江省多地区进行了一个月的日负荷预测实例分析,该方法较好的收敛性和预测精度说明,CART算法与ANFIS相结合,是基于数值的模糊建模的一种有效方法。

关 键 词:负荷预测    模糊推理    数据挖掘    分类和回归树算法    ANFIS
收稿时间:1/1/1900 12:00:00 AM
修稿时间:1/1/1900 12:00:00 AM

MULTI-FACTOR SHORT-TERM LOAD FORECASTING BASED ON FUZZY INFERENCE SYSTEM
Zhang Guojiang,Qiu Jiaju,L i Jihong .Zhejiang U niversity,Hangzhou ,China, .Zhejiang Electric Power Com pany,Hangzhou ,China.MULTI-FACTOR SHORT-TERM LOAD FORECASTING BASED ON FUZZY INFERENCE SYSTEM[J].Automation of Electric Power Systems,2002,26(5):49-53.
Authors:Zhang Guojiang  Qiu Jiaju  L i Jihong Zhejiang U niversity  Hangzhou  China  Zhejiang Electric Power Com pany  Hangzhou  China
Affiliation:Zhang Guojiang1,Qiu Jiaju1,L i Jihong2 1.Zhejiang U niversity,Hangzhou310 0 2 7,China,2 .Zhejiang Electric Power Com pany,Hangzhou310 0 0 7,China
Abstract:Fuzzy inference system FIS is an effective method for m ulti- factor load forecasting. Selection of input variables and space divisions is the premise and also the difficult problem for m odeling the FIS. In this paper,CART is introduced to solve the problem. And then an adaptive network is constructed to identify the param eters. The FIS is built completely based on the sam ple data,so the relationship between the input variables and the load value would be objectively reflected.The method of CART- ANFIS and BP are both used to forecast the next- day load in three areas of Zhejiang Province for a m onth. Better convergence and precision of CART- ANFIS are served for dem onstrating thatthe modeling of FIS based on the sample data can be successfully accomplished by com bining the CART and ANFIS.
Keywords:load forecasting  fuzzy inference  data m ining  classification and regression tree CART algorithm  adaptive  neural- fuzzy inference system ANFIS
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