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Comparative study of the classification models for prediction of bank telemarketing

  • Nazarbayev University

Результат исследований

Аннотация

This research paper has evaluated various classification models for prediction of bank telemarketing campaign results regarding the probability of the subscription of the customer to the deposit. The effectiveness of these algorithms has been evaluated by Receiving Operator Characteristic (ROC) and Cumulative Accuracy Profile (CAP) curve analysis, the accuracy of the algorithm and variance of the predictions. According to the results of the research, the best model for bank telemarketing effectiveness prediction are Random Forest and Deep Artificial Neural Network. The Logistic Regression and Naive Bayes are not as suitable as the other classification methods for this kind of problems due to the poor accuracy and overfitting issues.

Язык оригиналаEnglish
Название основной публикацииIEEE 12th International Conference on Application of Information and Communication Technologies, AICT 2018 - Proceedings
ИздательInstitute of Electrical and Electronics Engineers Inc.
ISBN (электронное издание)9781538664674
DOI
СостояниеPublished - окт. 1 2018
Событие12th IEEE International Conference on Application of Information and Communication Technologies, AICT 2018 - Almaty
Продолжительность: окт. 17 2018окт. 19 2018

Серия публикаций

НазваниеIEEE 12th International Conference on Application of Information and Communication Technologies, AICT 2018 - Proceedings

Conference

Conference12th IEEE International Conference on Application of Information and Communication Technologies, AICT 2018
Страна/TерриторияKazakhstan
ГородAlmaty
Период10/17/1810/19/18

ASJC Scopus subject areas

  • Computer Networks and Communications
  • Computer Science Applications
  • Computer Vision and Pattern Recognition
  • Information Systems and Management
  • Health Informatics
  • Information Systems

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