Machine Learning Implementation in Electronic Commerce for Churn Prediction of End User

Author:

Sharma* Neha, ,Raj Aayush,Kesireddy Vivek,Akunuri Preetham, , ,

Abstract

Client conduct can be addressed from numerous points of view. The client's conduct is distinctive in various circumstances will give his concept of client conduct. From an overall viewpoint, the conduct of the client, or rather any individual around there, is taken to be irregular. When noticed distinctly, it is regularly seen that the future conduct of an individual can rely upon different variables of the current circumstance just as the conduct in past circumstances. This examination establishes the forecast of client beat, for example regardless of whether the client will end buying from the purchaser or not, which relies upon different components. We have chipped away at two sorts of client information. To start with, that is reliant upon the current elements which don't influence the past or future buys. Second, a period arrangement information which gives us a thought of how the future buys can be identified with the buys before. Logistic Regression, Random Forest Classifier, Artificial neural organization, and Recurrent Neural Network has been carried out to find the connections of the agitate with different factors and order the client beat productively. The correlation of calculations demonstrates that the aftereffects of Logistic Regression were somewhat better for the principal Dataset. The Recurrent Neural Network model, which was applied to the time-arrangement dataset, additionally gave better outcomes.

Publisher

Blue Eyes Intelligence Engineering and Sciences Engineering and Sciences Publication - BEIESP

Subject

Computer Science Applications,History,Education

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Review on Classification Algorithm for Customer Churn Classification;International Journal of Recent Technology and Engineering (IJRTE);2024-05-30

2. Data Analysis and Prediction Modeling Based on Deep Learning in E-Commerce;Scientific Programming;2022-03-24

3. Research on E-commerce Precision Marketing Model Based on Big Data Technology;2021 2nd International Conference on Big Data Economy and Information Management (BDEIM);2021-12

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