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An Abnormal Data Detection and Correction Method Based on Numerical Correlation Model

A technology for abnormal data and data association, which is applied in electronic digital data processing, special data processing applications, instruments, etc., and can solve problems such as the accuracy of business data does not meet business needs, data analysis, data processing, and the negative impact of investment decisions. Reliable statistical analysis results, improved accuracy, and accurate statistical analysis work are achieved.

Inactive Publication Date: 2017-04-26
NORTH CHINA ELECTRIC POWER UNIV (BAODING)
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  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

In the process of business data generation, due to the differences and loopholes in data collection technology, statistical caliber, personnel quality, management mechanism, etc., a considerable part of the business data does not meet the business needs in terms of accuracy, thus affecting the data analysis and data of the enterprise. serious negative impact on processing, investment decisions, etc.

Method used

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  • An Abnormal Data Detection and Correction Method Based on Numerical Correlation Model
  • An Abnormal Data Detection and Correction Method Based on Numerical Correlation Model
  • An Abnormal Data Detection and Correction Method Based on Numerical Correlation Model

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Embodiment

[0041] Abnormal data refers to business data with large errors. Data error refers to the deviation between the acquired data and the actual data characteristics of objective phenomena. Data errors can be divided into two categories: one is registration error; the other is representative error. The so-called registration error refers to the distortion of statistical data caused by recording errors, measurement errors, calculation errors, and intentional false reporting and concealment in the process of collecting data. Registration errors are entirely caused by human factors, which may occur in both comprehensive and non-comprehensive surveys; the so-called representative errors generally refer to random errors and systematic errors. Random error is the inevitable error caused by random factors in the process of sampling survey. The systematic error is the error caused by various factors related to subjective factors in the process of survey or sampling technique application....

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Abstract

The invention discloses an abnormal data detection and modification method based on a numerical value relevance model. The method includes the following steps that first, abnormal data judgment conditions are defined by a display module and stored into a source indicator database; second, a data access layer traverses service indicator data in the source indicator database, judges whether the service indicator data meet the abnormal data judgment conditions or not and displays the service indicator data meeting the abnormal data judgment conditions in the display module, and meanwhile the third step is executed; third, the service indicator data meeting the abnormal data judgment conditions are modified by a service logic module, and the modified data are stored into the source indicator database according to needs. The abnormal data detection and modification method based on the numerical value relevance model greatly improves accuracy of service data of a power grid and accuracy for calculating statistical data groups, makes the statistical analysis result more reliable and provides favorable data support for enterprises in the respects of investment evaluation, benefit analysis and the like.

Description

technical field [0001] The invention relates to an abnormal data processing method, in particular to an abnormal data detection and correction method based on a numerical correlation model. Background technique [0002] With the comprehensive development of enterprise informatization, the dependence of enterprises on data is gradually increasing, and data information is increasingly becoming an important strategic resource for enterprises. The quality of data is directly related to the accuracy of information, and also affects the survival and development of enterprises. competitiveness. Under the background of smart grid promotion, power grid enterprises continue to establish and improve existing information systems based on their own business characteristics, which basically cover finance, marketing, production safety, collaborative office, human resources, materials, project management, comprehensive power, etc. The main business scope of the enterprise. At the same tim...

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): G06F17/30
CPCG06F16/2462
Inventor 吴克河朱亚运党芳芳
Owner NORTH CHINA ELECTRIC POWER UNIV (BAODING)
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