Data mining method for finding potential telecommunication users changing cell phones

A data mining and user technology, applied in the direction of electrical digital data processing, special data processing applications, instruments, etc., to achieve the effect of balance uniformity

Active Publication Date: 2015-07-22
NANJING UNIV
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AI Technical Summary

Problems solved by technology

[0004] The idea of ​​locating potential phone replacement users based on data mining breaks the convention of the phone replacement model based on traditional experience. Using the decision tree algorithm in data mining can dig deep into the information of user replacement, discover the characteristics of user replacement mobile phones and the characteristics of user replacement. The law of the machine overcomes the shortcomings of the traditional human experience summary that cannot be more targeted and highly accurate

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  • Data mining method for finding potential telecommunication users changing cell phones
  • Data mining method for finding potential telecommunication users changing cell phones
  • Data mining method for finding potential telecommunication users changing cell phones

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Embodiment Construction

[0059] In order to better understand the technical content of the present invention, specific examples are given and described as follows in conjunction with the accompanying drawings.

[0060] Such as figure 1 As shown, the mining of potential replacement users obtains original data such as user consumption and replacement through telecom database query and data integration, and generates training data sets and prediction training sets through relevant caliber and data preprocessing, and then generates them under KNN and clustering algorithms. A more balanced and uniform data set, and finally run a decision tree algorithm on the data set to dig out potential users who change phones.

[0061] The construction of data set for replacement and decision tree algorithm to mine replacement users are the main steps of this invention. The idea of ​​the present invention is to effectively mine potential replacement users through data set construction and decision tree algorithm, while ...

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Abstract

The invention provides a data mining method for finding potential telecommunication users changing cell phones. The data mining method comprises the following step of 1 the data set constructing stage and 2 the mining stage. The data set constructing stage comprises sub-steps of a, collecting consumption information of the users, historical information that the users change the cell phones, user information and terminal information; b, preprocessing data and generating data sets at the same time; c, processing the data sets in unbalanced categories and forming final training sets and prediction sets. The mining stage comprises the sub-steps of a, acquiring the data sets processed and generated in the step 1-c; b, finding the potential users changing the cell phones by implementing the decision tree algorithm; c, ending the stage. The potential users changing the cell phones are found in the telecommunication users based on the data mining technology. Compared with a traditional method, the data mining method is more accurate and efficient, and has the series of advantages of being easy to achieve, low in cost and the like.

Description

technical field [0001] The invention relates to a method for constructing a data set, a method for solving the problem of unbalanced categories, and a technique for digging out potential telecommunications users who switch phones by adopting a decision tree algorithm on the data set. Background technique [0002] Data mining technology can be used to intelligently analyze telecom user data and discover potential user replacement rules. One type of application in the commonly used data mining of potential telecom replacement users is the decision tree classification algorithm, which predicts the user's future replacement behavior based on the user's consumption data and replacement information. The present invention also uses the KNN algorithm and the clustering algorithm to perform under-sampling processing on the unbalanced data to construct a data set with balanced data and uniform distribution. At the same time, when the data is preprocessed, the information gain rate is...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06F17/30
Inventor 张雷张奎亮资帅彭岳蔡洋王崇骏李宁
Owner NANJING UNIV
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