Dynamic cleaning method and system for abnormal power utilization data of power consumer
The invention discloses a dynamic cleaning method and system for abnormal power consumption data of a power consumer. The method comprises the following steps: calculating the sizes of abnormal factors of all input data points; carrying out clustering operation on the local abnormal factor values, a...
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creator | DU TIANSHUO LI XIAOHUI WANG CHONG LUO WENTAO LIU WEIDONG ZHANG GE LI ZHENXIANG LIU XIAOCHEN LUO BIN GE LEIJIAO ZHAO HONGWEI HAN KEXIN LYU WEIJIA |
description | The invention discloses a dynamic cleaning method and system for abnormal power consumption data of a power consumer. The method comprises the following steps: calculating the sizes of abnormal factors of all input data points; carrying out clustering operation on the local abnormal factor values, and taking the sample normal data points obtained by self-adaptive clustering and the local abnormal factor values on the boundary of the sample abnormal data points as an abnormal judgment threshold value; judging abnormal data, removing all abnormal data to form blank missing data points, and inputting the blank missing data points and the original data into a missing data dynamic filling program; taking blank missing data points as local missing types; a least square regression model prediction result is adopted to fill the data points of the local missing type data; and filling a long-term missing type data interval by adopting a random forest model prediction result. And evaluating the dynamic cleaning effect o |
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The method comprises the following steps: calculating the sizes of abnormal factors of all input data points; carrying out clustering operation on the local abnormal factor values, and taking the sample normal data points obtained by self-adaptive clustering and the local abnormal factor values on the boundary of the sample abnormal data points as an abnormal judgment threshold value; judging abnormal data, removing all abnormal data to form blank missing data points, and inputting the blank missing data points and the original data into a missing data dynamic filling program; taking blank missing data points as local missing types; a least square regression model prediction result is adopted to fill the data points of the local missing type data; and filling a long-term missing type data interval by adopting a random forest model prediction result. 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The method comprises the following steps: calculating the sizes of abnormal factors of all input data points; carrying out clustering operation on the local abnormal factor values, and taking the sample normal data points obtained by self-adaptive clustering and the local abnormal factor values on the boundary of the sample abnormal data points as an abnormal judgment threshold value; judging abnormal data, removing all abnormal data to form blank missing data points, and inputting the blank missing data points and the original data into a missing data dynamic filling program; taking blank missing data points as local missing types; a least square regression model prediction result is adopted to fill the data points of the local missing type data; and filling a long-term missing type data interval by adopting a random forest model prediction result. 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The method comprises the following steps: calculating the sizes of abnormal factors of all input data points; carrying out clustering operation on the local abnormal factor values, and taking the sample normal data points obtained by self-adaptive clustering and the local abnormal factor values on the boundary of the sample abnormal data points as an abnormal judgment threshold value; judging abnormal data, removing all abnormal data to form blank missing data points, and inputting the blank missing data points and the original data into a missing data dynamic filling program; taking blank missing data points as local missing types; a least square regression model prediction result is adopted to fill the data points of the local missing type data; and filling a long-term missing type data interval by adopting a random forest model prediction result. And evaluating the dynamic cleaning effect o</abstract><oa>free_for_read</oa></addata></record> |
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language | chi ; eng |
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subjects | CALCULATING COMPUTER SYSTEMS BASED ON SPECIFIC COMPUTATIONAL MODELS COMPUTING COUNTING DATA PROCESSING SYSTEMS OR METHODS, SPECIALLY ADAPTED FORADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL, SUPERVISORYOR FORECASTING PURPOSES ELECTRIC DIGITAL DATA PROCESSING PHYSICS SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE,COMMERCIAL, FINANCIAL, MANAGERIAL, SUPERVISORY OR FORECASTINGPURPOSES, NOT OTHERWISE PROVIDED FOR |
title | Dynamic cleaning method and system for abnormal power utilization data of power consumer |
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