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Event-based Two-stage Non-intrusive Load Monitoring Method Involving Multi-dimensional Features

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摘要 This paper proposes an event-based two-stage Nonintrusive load monitoring(NILM)method involving multidimensional features,which is an essential technology for energy savings and management.First,capture appliance events using a goodness of fit test and then pair the on-off events.Then the multi-dimensional features are extracted to establish a feature library.In the first stage identification,several groups of events for the appliance have been divided,according to three features,including phase,steady active power and power peak.In the second stage identification,a“one against the rest”support vector machine(SVM)model for each group is established to precisely identify the appliances.The proposed method is verified by using a public available dataset;the results show that the proposed method contains high generalization ability,less computation,and less training samples.
出处 《CSEE Journal of Power and Energy Systems》 SCIE EI CSCD 2023年第3期1119-1128,共10页 中国电机工程学会电力与能源系统学报(英文)
基金 supported by the National Science Foundation of China(U2166209,52007126) the Science and Technology Project of State Grid Tibet Electric Power Company(52311020009X)。
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