Identification and Correction Method of Power Load Abnormal Data Based on Nonparametric Regression Analysis
A non-parametric regression, power load technology, applied in data processing applications, instruments, calculations, etc., can solve problems such as complex methods and models, and achieve the effect of improving accuracy and degree of accuracy
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[0015] The present invention will be further described below in conjunction with accompanying drawing. But the content of the present invention is not limited thereto. Such as figure 1 Shown, the specific steps of the proposed method of the present invention are as follows:
[0016] Step 1: Statistical fuzzy matrix technology is used to classify the power load data, and the power load data is divided into two categories: common power consumption mode data set and special power consumption mode data set. Specifically, it includes the following 4 steps:
[0017] 1) The daily load data of electric power is regarded as a load vector, and the load vector is divided by the maximum load of the day to realize the normalization of the load vector;
[0018] 2) Calculate the approximate coefficient between the daily load vectors, the calculation method is shown in formula (1); the approximate coefficient between the daily load vectors constitutes the approximate coefficient matrix W; ...
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